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History of television
History of television
from Wikipedia

Family watching TV, 1958

The concept of television is the work of many individuals in the late 19th and early 20th centuries. Constantin Perskyi had coined the word television in a paper read to the International Electricity Congress at the World's Fair in Paris on August 24, 1900.[1]

The first practical transmissions of moving images over a radio system used mechanical rotating perforated disks to scan a scene into a time-varying signal that could be reconstructed at a receiver back into an approximation of the original image. Development of television was interrupted by the Second World War. After the end of the war, all-electronic methods of scanning and displaying images became standard. Several different standards for addition of color to transmitted images were developed with different regions using technically incompatible signal standards. Television broadcasting expanded rapidly after World War II, becoming an important mass medium for advertising, propaganda, and entertainment.[2]

Television broadcasts can be distributed over the air by very high frequency (VHF) and ultra high frequency (UHF) radio signals from terrestrial transmitting stations, by microwave signals from Earth-orbiting satellites, or by wired transmission to individual consumers by cable television. Many countries have moved away from the original analog radio transmission methods and now use digital television standards, providing additional operating features and conserving radio spectrum bandwidth for more profitable uses. Television programming can also be distributed over the Internet.

Television broadcasting may be funded by advertising revenue, by private or governmental organizations prepared to underwrite the cost, or in some countries, by television license fees paid by owners of receivers. Some services, especially carried by cable or satellite, are paid by subscriptions.

Television broadcasting is supported by continuing technical developments such as long-haul microwave networks, which allow distribution of programming over a wide geographic area. Video recording methods allow programming to be edited and replayed for later use. Three-dimensional television has been used commercially but has not received wide consumer acceptance owing to the limitations of display methods.

Mechanical television

[edit]

Facsimile transmission systems pioneered methods of mechanically scanning graphics in the early 19th century. The Scottish inventor Alexander Bain introduced the facsimile machine between 1843 and 1846. The English physicist Frederick Bakewell demonstrated a working laboratory version in 1851. The first practical facsimile system, working on telegraph lines, was developed and put into service by the Italian priest Giovanni Caselli from 1856 onward.[3][4][5]

Willoughby Smith, an English electrical engineer, discovered the photoconductivity of the element selenium in 1873. This led, among other technologies, towards telephotography, a way to send still images through phone lines, as early as in 1895, as well as any kind of electronic image scanning devices, both still and in motion, and ultimately to TV cameras.

The Nipkow disk. This schematic shows the circular paths traced by the holes, which may also be square for greater precision. The area of the disk outlined in black shows the region scanned.

Maurice Leblanc

[edit]

In 1880, French physicist Maurice Leblanc published an article "Etude sur la transmission électrique des impressions lumineuses" ("Study on the electric transmission of light impressions"). Amongst various proposals, it included the idea of using oscillating mirrors. This idea will be tested by various inventors, including the Austro-Hungarian Wilhelm von Szygarto (1894), the French Emile Desbeaux (1891), the Polish Jan Szczepanik (1897), the Austrian Bendict Schöffler (1898), the US engineer Alexander McLean Nicolson and the Ungarese Denes von Mihaly.[6]

Nipkow

[edit]

As a 23-year-old German university student, Paul Julius Gottlieb Nipkow proposed and patented the Nipkow disk in 1884 in Berlin.[7] This was a spinning disk with a spiral pattern of holes in it, so each hole scanned a line of the image.

Although he never built a working model of the system, variations of Nipkow's spinning-disk "image rasterizer" became exceedingly common.[7] In a paper presented at the International Electricity Congress at the World's Fair in Paris in August 1900, Constantin Perskyi reviewed the existing electromechanical technologies, mentioning the work of Nipkow and others, and coining the word "television".[8] However, it was not until 1907 that developments in amplification tube technology, by Lee de Forest and Arthur Korn among others, made the design practical.[9]

Rignoux and Fournier

[edit]

The first demonstration of instantaneous transmission of images was by Georges Rignoux and A. Fournier in Paris in 1909. A matrix of 64 selenium cells, individually wired to a mechanical commutator, served as an electronic retina. In the receiver, a type of Kerr cell modulated the light and a series of variously angled mirrors attached to the edge of a rotating disc scanned the modulated beam onto the display screen. A separate circuit regulated synchronization. The 8×8 pixel resolution in this proof-of-concept demonstration was just sufficient to clearly transmit individual letters of the alphabet. An updated image was transmitted "several times" each second.[10]

Rosing

[edit]

In 1911, Boris Rosing and his student Vladimir Zworykin created a system that used a mechanical mirror-drum scanner to transmit, in Zworykin's words, "very crude images" over wires to the "Braun tube" (cathode-ray tube or "CRT") in the receiver. Moving images were not possible because, in the scanner, "the sensitivity was not enough and the selenium cell was very laggy".[11]

Low's Televista

[edit]

In May 1914, Archibald Low gave the first demonstration of his television system at the Institute of Automobile Engineers in London. He called his system 'Televista'. The events were widely reported worldwide and were generally entitled Seeing By Wireless. The demonstrations had so impressed Harry Gordon Selfridge that he included Televista in his 1914 Scientific and Electrical Exhibition at his store.[12][13] It also interested Deputy Consul General Carl Raymond Loop, who filled a US consular report from London containing considerable detail about Low's system.[14][15]

Low's invention employed a matrix detector (camera) and a mosaic screen (receiver/viewer) with an electro-mechanical scanning mechanism that moved a rotating roller over the cell contacts providing a multiplex signal to the camera/viewer data link. The receiver employed a similar roller and the two rollers were synchronised. It was unlike any other TV system of the 20th Century and in some respects, Low had a digital TV system 80 years before modern digital TV.

World War I began shortly after these demonstrations in London and Low became involved in sensitive military work on UAVs, so did not apply for a patent until 1917. His "Televista" Patent No. 191,405 titled "Improved Apparatus for the Electrical Transmission of Optical Images" was finally published in 1923; delayed possibly for security reasons. The patent states that the scanning roller had a row of conductive contacts corresponding to the cells in each row of the array and arranged to sample each cell in turn as the roller rotated. The receiver's roller was similarly constructed and each revolution addressed a row of cells as the rollers traversed over their array of cells.

Loop's report tells us that, "The receiver is made up of a series of cells operated by the passage of polarized light through thin slats of steel, and at the receiver the object before the transmitter is reproduced as a flickering image" and "The roller is driven by a motor of 3,000 revolutions per minute, and the resulting variations of light are transmitted along an ordinary conducting wire." and the patent states "into each... space I place a selenium cell". Low covered the cells with a liquid dielectric and the roller connected with each cell in turn through this medium as it rotated and traveled over the array. The receiver used bimetallic elements that acted as shutters "transmitting more or less light according to the current passing through them..." as stated in the patent. Low said the main deficiency of the system was the selenium cells used for converting light waves into electric impulses, which responded too slowly thus spoiling the effect. Loop reported that "The system has been tested through a resistance equivalent to a distance of four miles, but in the opinion of Doctor Low there is no reason why it should not be equally effective over far greater distances. The patent states that this connection could be either wired or wireless. The cost of the apparatus is considerable because the conductive sections of the roller are made of platinum..."

In 1914, the demonstrations certainly garnered a lot of media interest, with The Times reporting on 30 May:

An inventor, Dr. A. M. Low, has discovered a means of transmitting visual images by wire. If all goes well with this invention, we shall soon be able, it seems, to see people at a distance.

On 29 May, the Daily Chronicle reported:

Dr. Low gave a demonstration for the first time in public, with a new apparatus that he has invented, for seeing, he claims by electricity, by which it is possible for persons using a telephone to see each other at the same time

In 1927, Ronald Frank Tiltman asked Low to write the introduction to his book in which he acknowledged Low's work, referring to Low's related patents with an apology that they were of 'too technical a nature for inclusion'.[16] Later in his 1938 patent Low envisioned a much larger 'camera' cell density achieved by a deposition process of cesium alloy on an insulated substrate that was subsequently sectioned to divide it into cells, the essence of today's technology. Low's system failed for various reasons, mostly due to its inability to reproduce an image by reflected light and simultaneously depict gradations of light and shade. It can be added to the list of systems, like that of Boris Rosing, that predominantly reproduced shadows. With subsequent technological advances, many such ideas could be made viable decades later, but at the time they were impractical.

Baird

[edit]
John Logie Baird in 1925 with his televisor equipment and dummies "James" and "Stooky Bill" (right)

In 1923, Scottish inventor John Logie Baird envisaged a complete television system that employed the Nipkow disk. Nipkow's was an obscure, forgotten patent and not at all obvious at the time. He created his first prototypes in Hastings, where he was recovering from a serious illness. In late 1924, Baird returned to London to continue his experiments there. On March 25, 1925, Baird gave the first public demonstration of televised silhouette images in motion at Selfridges department store in London.[17] Since human faces had inadequate contrast to show up on his system at this time, he televised cut-outs and by mid-1925 the head of a ventriloquist's dummy he later named "Stooky Bill", whose face was painted to highlight its contrast. "Stooky Bill" also did not complain about the long hours of staying still in front of the blinding level of light used in these experiments. On October 2, 1925, suddenly the dummy's head came through on the screen with incredible clarity. On January 26, 1926, he demonstrated the transmission of images of real human faces for 40 distinguished scientists of the Royal Institution. This is widely regarded as being the world's first public television demonstration. Baird's system used Nipkow disks for both scanning the image and displaying it. A brightly illuminated subject was placed in front of a spinning Nipkow disk set with lenses that swept images across a static photocell. At this time, it is believed that it was a thallium sulfide (thalofide) cell, developed by Theodore Case in the US, that detected the light reflected from the subject. This was transmitted by radio to a receiver unit, where the video signal was applied to a neon bulb behind a similar Nipkow disk synchronized with the first. The brightness of the neon lamp was varied in proportion to the brightness of each spot on the image. As each lens in the disk passed by, one scan line of the image was reproduced. With this early apparatus, Baird's disks had 16 lenses, yet in conjunction with the other discs used produced moving images with 32 scan lines, just enough to recognize a human face. He began with a frame rate of five per second, which was soon increased to a rate of 1212 frames per second and 30 scan lines.

The earliest photograph of a television picture, showing the face of Oliver Hutchinson in June 1926. The television picture was projected using Baird's television camera.

In 1927, Baird transmitted a signal over 438 miles (705 km) of telephone line between London and Glasgow. In 1928, Baird's company (Baird Television Development Company/Cinema Television) broadcast the first transatlantic television signal, between London and New York, and the first shore-to-ship transmission. In 1929, he became involved in the first experimental mechanical television service in Germany. In November of the same year, Baird and Bernard Natan of Pathé established France's first television company, Télévision-Baird-Natan. In 1931, he made the first outdoor remote broadcast, of the Derby.[18] In 1932, he demonstrated ultra-short wave television. Baird Television Limited's mechanical systems reached a peak of 240 lines of resolution at the company's Crystal Palace studios, and later on BBC television broadcasts in 1936, though for action shots (as opposed to a seated presenter) the mechanical system did not scan the televised scene directly. Instead, a 17.5mm film was shot, rapidly developed, and then scanned while the film was still wet.

The Scophony Company's success with their mechanical system in the 1930s enabled them to take their operations to the US when World War II curtailed their business in Britain.

C. Francis Jenkins

[edit]

An American inventor, Charles Francis Jenkins, also pioneered the television. He published an article on "Motion Pictures by Wireless" in 1913, but it was not until December 1923 that he transmitted moving silhouette images for witnesses. On June 13, 1925, Jenkins publicly demonstrated the synchronized transmission of silhouette pictures. Jenkins used a Nipkow disk and transmitted the silhouette image of a toy windmill in motion, over a distance of 5 mi (8.0 km) (from a naval radio station in Maryland to his laboratory in Washington, D.C.), using a lensed disk scanner with a 48-line resolution.[19][20] He was granted U.S. patent 1,544,156 (Transmitting Pictures over Wireless) on June 30, 1925 (filed March 13, 1922).[21]

Takayanagi

[edit]

On December 25, 1926, Kenjiro Takayanagi demonstrated a television system with a 40-line resolution that employed a Nipkow disk scanner and CRT display at Hamamatsu Industrial High School in Japan. This prototype is still on display at the Takayanagi Memorial Museum at Shizuoka University, Hamamatsu Campus.[22] By 1927, Takayanagi improved the resolution to 100 lines, which was not surpassed until 1931.[23] He is the man who completed the first all-electronic television.[24] His research toward creating a production model was halted by the US after Japan lost World War II.[22]

Bell Labs

[edit]

On April 7, 1927, a team from Bell Telephone Laboratories demonstrated television transmission from Washington, D.C. to New York City, using a prototype array of 50 lines containing 50 individual neon lights each against a gold-appearing background, as a display to make the images visible to an audience.[25] The display measured approximately two feet by three feet and had 2500 total pixels (50x50).

Herbert E. Ives and Frank Gray of Bell Telephone Laboratories gave a dramatic demonstration of mechanical television on April 7, 1927. The reflected-light television system included both small and large viewing screens. The small receiver had a 2 in (51 mm)-wide by 2.5 in (64 mm)-high screen. The large receiver had a screen 24 in (610 mm) wide by 30 in (760 mm) high. Both sets were capable of reproducing reasonably accurate, monochromatic moving images. Along with the pictures, the sets also received synchronized sound. The system transmitted images over two paths: first, a copper wire link from Washington, D.C. to New York City, then a radio link from Whippany, New Jersey. Comparing the two transmission methods, viewers noted no difference in quality. Subjects of the telecast included Secretary of Commerce Herbert Hoover. A flying-spot scanner beam illuminated these subjects. The scanner that produced the beam had a 50-aperture disk. The disc revolved at a rate of 18 frames per second, capturing one frame about every 56 milliseconds. (Today's systems typically transmit 30 or 60 frames per second, or one frame every 33.3 or 16.7 milliseconds respectively.) Television historian Albert Abramson underscored the significance of the Bell Labs demonstration: "It was in fact the best demonstration of a mechanical television system ever made to this time. It would be several years before any other system could even begin to compare with it in picture quality."[26]

In 1928, WRGB (then W2XCW) was started as the world's first television station. It broadcast from the General Electric facility in Schenectady, New York. It was popularly known as "WGY Television".

Theremin

[edit]

Meanwhile, in the Soviet Union, Léon Theremin had been developing a mirror drum-based television, starting with 16-line resolution in 1925, then 32 lines and eventually 64 using interlacing in 1926. As part of his thesis on May 7, 1926, Theremin electrically transmitted and then projected near-simultaneous moving images on a five-foot square screen.[20] By 1927 he achieved an image of 100 lines, a resolution that was not surpassed until 1931 by RCA, with 120 lines.[citation needed]

Because only a limited number of holes could be made in the disks, and disks beyond a certain diameter became impractical, image resolution in mechanical television broadcasts was relatively low, ranging from about 30 lines up to about 120. Nevertheless, the image quality of 30-line transmissions steadily improved with technical advances, and by 1933 the UK broadcasts using the Baird system were remarkably clear.[27] A few systems ranging into the 200-line region also went on the air. Two of these were the 180-line system that Compagnie des Compteurs (CDC) installed in Paris in 1935, and the 180-line system that Peck Television Corp. started in 1935 at station VE9AK in Montreal.[28][29]

Codelli

[edit]

Anton Codelli (22 March 1875 – 28 April 1954), a Slovenian nobleman, was a passionate inventor. Among other things, he had devised a miniature refrigerator for cars and a new rotary engine design. Intrigued by television, he decided to apply his technical skills to the new medium. At the time, the biggest challenge in television technology was to transmit images with sufficient resolution to reproduce recognizable figures. As recounted by media historian Melita Zajc, most inventors were determined to increase the number of lines used by their systems – some were approaching what was then the magic number of 100 lines. But Codelli had a different idea. In 1929, he developed a television device with a single line – but one that formed a continuous spiral on the screen. Codelli based his design on his understanding of the human eye. He knew that objects seen in peripheral vision don't need to be as sharp as those in the center. Codelli's mechanical television system, whose image was sharpest in the middle, worked well, and he was soon able to transmit images of his wife, Ilona von Drasche-Lazar, over the air.

Despite the backing of the German electronics giant Telefunken, however, Codelli's television system never became a commercial reality. Electronic television ultimately emerged as the dominant system, and Codelli moved on to other projects. His invention was largely forgotten.[30][31]

Footnote

[edit]

The advancement of all-electronic television (including image dissectors and other camera tubes and cathode ray tubes for the reproducer) marked the beginning of the end for mechanical systems as the dominant form of television. Mechanical TV usually only produced small images with poor resolution. It was the main type of TV until the 1930s. The last mechanical television broadcasts ended in 1939 at stations run by a handful of public universities in the United States.

Electronic television

[edit]
Ferdinand Braun
Tihanyi' Radioskop patent (1926) was recognized as Document of Universal Significance by the UNESCO

In 1897, J. J. Thomson, an English physicist, in his three famous experiments was able to deflect cathode rays, a fundamental function of the modern cathode-ray tube (CRT). The earliest version of the CRT was invented by the German physicist Karl Ferdinand Braun in 1897 and is also known as the Braun tube.[32][33] Braun was the first to conceive the use of a CRT as a display device.[34] It was a cold-cathode diode, a modification of the Crookes tube with a phosphor-coated screen. The Braun tube became the foundation of 20th century television.[35] A cathode ray tube was successfully demonstrated as a displaying device by the German Professor Max Dieckmann in 1906, his experimental results were published by the journal Scientific American in 1909.[36] In 1908 Alan Archibald Campbell-Swinton, fellow of the UK Royal Society, published a letter in the scientific journal Nature in which he described how "distant electric vision" could be achieved by using a cathode ray tube (or "Braun" tube) as both a transmitting and receiving device.[37][38] He expanded on his vision in a speech given in London in 1911 and reported in The Times[39] and the Journal of the Röntgen Society.[40][41] In a letter to Nature published in October 1926, Campbell-Swinton also announced the results of some "not very successful experiments" he had conducted with G. M. Minchin and J. C. M. Stanton. They had attempted to generate an electrical signal by projecting an image onto a selenium-coated metal plate that was simultaneously scanned by a cathode ray beam.[42][43] These experiments were conducted before March 1914, when Minchin died.[44] They were later repeated in 1937 by two different teams, H. Miller and J. W. Strange from EMI,[45] and H. Iams and A. Rose from RCA.[46] Both teams succeeded in transmitting "very faint" images with the original Campbell-Swinton's selenium-coated plate. Although others had experimented with using a cathode ray tube as a receiver, the concept of using one as a transmitter was novel.[47] The first cathode ray tube to use a hot cathode was developed by John B. Johnson (who gave his name to the term Johnson noise) and Harry Weiner Weinhart of Western Electric, and became a commercial product in 1922.[citation needed]

These early electronic camera tubes (like the image dissector) suffered from a very disappointing and fatal flaw: They scanned the subject and what was seen at each point was only the tiny piece of light viewed at the instant that the scanning system passed over it. A practical functional camera tube needed a different technological approach, which later became known as Charge - Storage camera tube. It was based on a new physical phenomenon that was discovered and patented in Hungary in 1926, but it became widely understood and recognized only from around 1930.[48]

The problem of low sensitivity to light resulting in low electrical output from transmitting or "camera" tubes would be solved with the introduction of charge-storage technology by the Hungarian engineer Kálmán Tihanyi in the beginning of 1924.[49] In 1926, Tihanyi designed a television system utilizing fully electronic scanning and display elements and employing the principle of "charge storage" within the scanning (or "camera") tube.[50][51][52][53] His solution was a camera tube that accumulated and stored electrical charges ("photoelectrons") within the tube throughout each scanning cycle. The device was first described in a patent application he filed in Hungary in March 1926 for a television system he dubbed "Radioskop".[50] After further refinements included in a 1928 patent application,[49] Tihanyi's patent was declared void in Great Britain in 1930,[54] and so he applied for patents in the United States. Although his breakthrough would be incorporated into the design of RCA's "iconoscope" in 1931, the U.S. patent for Tihanyi's transmitting tube would not be granted until May 1939. The patent for his receiving tube had been granted the previous October. Both patents had been purchased by RCA prior to their approval.[51][52] Tihanyi's charge storage idea remains a basic principle in the design of imaging devices for television to the present day.[50] His Radioskop patent was recognized as a Document of Universal Significance by the UNESCO, and thus became part of the Memory of the World Programme on September 4, 2001.[50]

Philo Farnsworth in 1924

On December 25, 1926, Kenjiro Takayanagi demonstrated a TV system with a 40-line resolution that employed a CRT display at Hamamatsu Industrial High School in Japan.[22] Takayanagi did not apply for a patent.[55]

On September 7, 1927, Philo Farnsworth's image dissector camera tube transmitted its first image, a simple straight line, at his laboratory at 202 Green Street in San Francisco.[56][57] By September 3, 1928, Farnsworth had developed the system sufficiently to hold a demonstration for the press. This is widely regarded as the first electronic television demonstration.[57] In 1929, the system was further improved by elimination of a motor generator, so that his television system now had no mechanical parts.[58] That year, Farnsworth transmitted the first live human images with his system, including a 3.5 in (89 mm) image of his wife Elma ("Pem") with her eyes closed (possibly due to the bright lighting required).[59]

Vladimir Zworykin demonstrates electronic television (1929).

Meanwhile, Vladimir Zworykin was also experimenting with the cathode ray tube to create and show images. While working for Westinghouse Electric in 1923, he began to develop an electronic camera tube. But in a 1925 demonstration, the image was dim, had low contrast and poor definition, and was stationary.[60] Zworykin's imaging tube never got beyond the laboratory stage. But RCA, which acquired the Westinghouse patent, asserted that the patent for Farnsworth's 1927 image dissector was written so broadly that it would exclude any other electronic imaging device. Thus RCA, on the basis of Zworykin's 1923 patent application, filed a patent interference suit against Farnsworth. The U.S. Patent Office examiner disagreed in a 1935 decision, finding priority of invention for Farnsworth against Zworykin. Farnsworth claimed that Zworykin's 1923 system would be unable to produce an electrical image of the type to challenge his patent. Zworykin received a patent in 1928 for a color transmission version of his 1923 patent application,[61] he also divided his original application in 1931.[62] Zworykin was unable or unwilling to introduce evidence of a working model of his tube that was based on his 1923 patent application. In September 1939, after losing an appeal in the courts and determined to go forward with the commercial manufacturing of television equipment, RCA agreed to pay Farnsworth US$1 million over a ten-year period, in addition to license payments, to use Farnsworth's patents.[63][64]

In 1933 RCA introduced an improved camera tube that relied on Tihanyi's charge storage principle.[65][66] Dubbed the Iconoscope by Zworykin, the new tube had a light sensitivity of about 75,000 lux, and thus was claimed to be much more sensitive than Farnsworth's image dissector.[citation needed] However, Farnsworth had overcome his power problems with his Image Dissector through the invention of a unique multipactor device that he began work on in 1930, and demonstrated in 1931.[67][68] This small tube could amplify a signal reportedly to the 60th power or better[69] and showed great promise in all fields of electronics. A problem with the multipactor, unfortunately, was that it wore out at an unsatisfactory rate.[70]

Manfred von Ardenne in 1933

At the Berlin Radio Show in August 1931 in Berlin, Manfred von Ardenne gave a public demonstration of a television system using a CRT for both transmission and reception, the first completely electronic television transmission.[71] However, Ardenne had not developed a camera tube, using the CRT instead as a flying-spot scanner to scan slides and film.[72] Ardenne achieved his first transmission of television pictures on 24 December 1933, followed by test runs for a public television service in 1934. The world's first electronically scanned television service then started in Berlin in 1935, the Fernsehsender Paul Nipkow, culminating in the live broadcast of the 1936 Summer Olympic Games from Berlin to public places all over Germany.[73][74]

Philo Farnsworth gave the world's first public demonstration of an all-electronic television system, using a live camera, at the Franklin Institute of Philadelphia on August 25, 1934, and for ten days afterwards.[75][76]

In Britain the EMI engineering team led by Isaac Shoenberg applied in 1932 for a patent for a new device they dubbed "the Emitron",[77][78] which formed the heart of the cameras they designed for the BBC. A joint company EMI-Marconi was created in 1934 to lead the work, and for the Marconi Company, Simeon Aisenstein lead the team developing the VHF transmission system. In November 1936, a 405-line broadcasting service employing the Emitron began at studios in Alexandra Palace and transmitted from a specially built mast atop one of the Victorian building's towers. It alternated for a short time with Baird's mechanical system in adjoining studios, but it was more reliable and visibly superior. This was the world's first regular high-definition television service.[79] The EMI patent was given in May 1932 to Australian James Dwyer McGee and William Francis Tedham (1902–2000).

The original American iconoscope, was an early electronic camera tube used to scan an image for the transmission of television. No other practical television scanning device prior to it was completely electronic, although some, such as the Nipkow disc, combined electronic elements with mechanical ones. The iconoscope had a high ratio of interference to signal, and ultimately gave disappointing results, especially when compared to the high-definition mechanical scanning systems then becoming available.[80][81] The EMI team under the supervision of Isaac Shoenberg analyzed how the iconoscope (or Emitron) produces an electronic signal and concluded that its real efficiency was only about 5% of the theoretical maximum.[82][83] They solved this problem by developing and patenting in 1934 two new camera tubes dubbed super-Emitron and CPS Emitron.[84][85][86] The super-Emitron was between ten and fifteen times more sensitive than the original Emitron and iconoscope tubes and, in some cases, this ratio was considerably greater.[82] It was used for an outside broadcasting by the BBC, for the first time, on Armistice Day 1937, when the general public could watch on a television set how the King laid a wreath at the Cenotaph.[87] This was the first time that anyone could broadcast a live street scene from cameras installed on the roof of neighbouring buildings, because neither Farnsworth nor RCA could do the same before the 1939 New York World's Fair.

Ad for the beginning of experimental television broadcasting in New York City by RCA in 1939

On the other hand, in 1934, Zworykin shared some patent rights with the German licensee company Telefunken.[88] The "image iconoscope" ("Superikonoskop" in Germany) was produced as a result of the collaboration. This tube is essentially identical to the super-Emitron.[citation needed] The production and commercialization of the super-Emitron and image iconoscope in Europe were not affected by the patent war between Zworykin and Farnsworth, because Dieckmann and Hell had priority in Germany for the invention of the image dissector, having submitted a patent application for their Lichtelektrische Bildzerlegerröhre für Fernseher (Photoelectric Image Dissector Tube for Television) in Germany in 1925,[89] two years before Farnsworth did the same in the United States.[90] The image iconoscope (Superikonoskop) became the industrial standard for public broadcasting in Europe from 1936 until 1960, when it was replaced by the vidicon and plumbicon tubes. Indeed, it was the representative of the European tradition in electronic tubes competing against the American tradition represented by the image orthicon.[91][92] The German company Heimann produced the Superikonoskop for the 1936 Berlin Olympic Games,[93][94] later Heimann also produced and commercialized it from 1940 to 1955,[95] finally the Dutch company Philips produced and commercialized the image iconoscope and multicon from 1952 to 1958.[92][96]

American television broadcasting at the time consisted of a variety of markets in a wide range of sizes, each competing for programming and dominance with separate technology, until deals were made and standards agreed upon in 1941.[97] RCA, for example, used only Iconoscopes in the New York area, but Farnsworth Image Dissectors in Philadelphia and San Francisco.[98] In September 1939, RCA agreed to pay the Farnsworth Television and Radio Corporation royalties over the next ten years for access to Farnsworth's patents.[99] With this historic agreement in place, RCA integrated much of what was best about the Farnsworth Technology into their systems.[98] In 1941, the United States implemented 525-line television.[100][101]

The world's first 625-line television standard was designed in the Soviet Union in 1944, and became a national standard in 1946.[102] The first broadcast in 625-line standard occurred in 1948 in Moscow.[103] The concept of 625 lines per frame was subsequently implemented in the European CCIR standard.[104]

In 1936, Kálmán Tihanyi described the principle of plasma display, the first flat panel display system.[105][106]

In 1978, James P. Mitchell described, prototyped and demonstrated what was perhaps the earliest monochromatic flat panel LED display targeted at replacing the CRT.

Color television

[edit]

The basic idea of using three monochrome images to produce a color image had been experimented with almost as soon as black-and-white televisions had first been built. Among the earliest published proposals for television was one by Maurice Le Blanc in 1880 for a color system, including the first mentions in television literature of line and frame scanning, although he gave no practical details.[107] Polish inventor Jan Szczepanik patented a color television system in 1897, using a selenium photoelectric cell at the transmitter and an electromagnet controlling an oscillating mirror and a moving prism at the receiver. But his system contained no means of analyzing the spectrum of colors at the transmitting end, and could not have worked as he described it.[108] Another inventor, Hovannes Adamian, also experimented with color television as early as 1907. The first color television project is claimed by him,[109] and was patented in Germany on March 31, 1908, patent No. 197183, then in Britain, on April 1, 1908, patent No. 7219,[110] in France (patent No. 390326) and in Russia in 1910 (patent No. 17912).[111]

Scottish inventor John Logie Baird demonstrated the world's first color transmission on July 3, 1928, using scanning discs at the transmitting and receiving ends with three spirals of apertures, each spiral with filters of a different primary color; and three light sources at the receiving end, with a commutator to alternate their illumination.[112] Baird also made the world's first color broadcast on February 4, 1938, sending a mechanically scanned 120-line image from Baird's Crystal Palace studios to a projection screen at London's Dominion Theatre.[113]

Mechanically scanned color television was also demonstrated by Bell Laboratories in June 1929 using three complete systems of photoelectric cells, amplifiers, glow-tubes and color filters, with a series of mirrors to superimpose the red, green and blue images into one full-color image.

The first practical, hybrid, electro-mechanical, Field-sequential color system was again pioneered by John Logie Baird, with the initial demonstration made in July 1939.[114] His system incorporated synchronized, two color, red and blue-green, rotating filters, placed in front of both the camera, and CRT, to add false colour to the monochromatic television broadcasts. By December 1940 he had publicly demonstrated a 600-line, hybrid, field-sequential, color television system.[115] This device was very "deep", but was later improved with a mirror folding the light path into an entirely practical device resembling a large conventional console.[116] However, Baird was not happy with the design, and as early as 1944 had commented to a British government committee that a fully electronic device would be better.

In 1939, Hungarian engineer Peter Carl Goldmark introduced an electro-mechanical system while at CBS, which contained an Iconoscope sensor. The CBS field-sequential color system was partly mechanical, with a disc made of red, blue, and green filters spinning inside the television camera at 1,200 rpm, and a similar disc spinning in synchronization in front of the cathode ray tube inside the receiver set.[117] The system was first demonstrated to the Federal Communications Commission (FCC) on August 29, 1940, and shown to the press on September 4.[118][119][120][121]

CBS began experimental color field tests using film as early as August 28, 1940, and live cameras by November 12.[122] NBC (owned by RCA) made its first field test of color television on February 20, 1941. CBS began daily color field tests on June 1, 1941.[123] These color systems were not compatible with existing black-and-white television sets, and as no color television sets were available to the public at this time, viewing of the color field tests was restricted to RCA and CBS engineers and the invited press. The War Production Board halted the manufacture of television and radio equipment for civilian use from April 22, 1942, to August 20, 1945, limiting any opportunity to introduce color television to the general public.[124][125]

Mexican inventor Guillermo González Camarena also experimented with hybrid field-sequential color TV (known as telectroescopía at first). His efforts began in 1931 and led to a Mexican patent for the "trichromatic field sequential system" color television being filed in August 1940.[126]

As early as 1940 Baird had started work on a fully electronic system he called the "Telechrome". Early Telechrome devices used two electron guns aimed at either side of a phosphor plate. Using cyan and magenta phosphors, a reasonable limited-color image could be obtained. He also demonstrated the same system using monochrome signals to produce a 3D image (called "stereoscopic" at the time). A demonstration on August 16, 1944, was the first example of a practical color television system. Work on the Telechrome continued and plans were made to introduce a three-gun version for full color. This used a patterned version of the phosphor plate, with the guns aimed at ridges on one side of the plate. However, Baird's untimely death in 1946 ended development of the Telechrome system.[127][116]

Similar concepts were common through the 1940s and 1950s, differing primarily in the way they re-combined the colors generated by the three guns. The Geer tube was similar to Baird's concept but used small pyramids with the phosphors deposited on their outside faces, instead of Baird's 3D patterning on a flat surface. The penetron used three layers of phosphor on top of each other and increased the power of the beam to reach the upper layers when drawing those colors. The chromatron used a set of focusing wires to select the colored phosphors arranged in vertical stripes on the tube.

One of the great technical challenges of introducing color broadcast television was the desire to conserve bandwidth, potentially three times that of the existing black-and-white standards, and not use an excessive amount of radio spectrum. In the United States, after considerable research, the National Television Systems Committee[128] approved an all-electronic Compatible color system developed by RCA, which encoded the color information separately from the brightness information and greatly reduced the resolution of the color information in order to conserve bandwidth. The brightness image remained compatible with existing black-and-white television sets at slightly reduced resolution, while color televisions could decode the extra information in the signal and produce a limited-resolution color display. The higher-resolution black-and-white and lower-resolution color images combine in the brain to produce a seemingly high-resolution color image. The NTSC standard represented a major technical achievement.

Color bars used in a test pattern, sometimes used when no program material is available

Although all-electronic color was introduced in the U.S. in 1953,[129] high prices and the scarcity of color programming greatly slowed its acceptance in the marketplace. The first national color broadcast (the 1954 Tournament of Roses Parade) occurred on January 1, 1954, but during the following ten years most network broadcasts, and nearly all local programming, continued to be in black-and-white. It was not until the mid-1960s that color sets started selling in large numbers, due in part to the color transition of 1965 in which it was announced that over half of all network prime-time programming would be broadcast in color that fall. The first all-color prime-time season came just one year later. In 1972, the last holdout among daytime network programs converted to color, resulting in the first completely all-color network season.

Early color sets were either floor-standing console models or tabletop versions nearly as bulky and heavy, so in practice, they remained firmly anchored in one place. The introduction of GE's relatively compact and lightweight Porta-Color set in the spring of 1966 made watching color television a more flexible and convenient proposition. In 1972, sales of color sets finally surpassed sales of black-and-white sets.

Color broadcasting in Europe was also not standardized on the PAL format until the 1960s.

By the mid-1970s, the only stations broadcasting in black-and-white were a few high-numbered UHF stations in small markets and a handful of low-power repeater stations in even smaller markets, such as vacation spots. By 1979, even the last of these had converted to color and by the early 1980s, black-and-white sets had been pushed into niche markets, notably low-power uses, small portable sets, or use as video monitor screens in lower-cost consumer equipment. By the late 1980s, even these areas switched to color sets.

Digital television

[edit]

Digital television (DTV) is the transmission of audio and video by digitally processed and multiplexed signal, in contrast to the totally analog and channel-separated signals used by analog television. Digital TV can support more than one program in the same channel bandwidth.[130] It is an innovative service that represents the first significant evolution in television technology since color television in the 1950s.[131]

Digital TV's roots have been tied very closely to the availability of inexpensive, high-performance computers. It wasn't until the 1990s that digital TV became a real possibility.[132]

In the mid-1980s Japanese consumer electronics firm Sony Corporation developed HDTV technology and the equipment to record at such resolution, and the MUSE analog format proposed by NHK, a Japanese broadcaster, was seen as a pacesetter that threatened to eclipse U.S. electronics companies. Sony's system produced images at 1125-line resolution (or in digital terms, 1875x1125, close to the resolution of Full HD video[133]) Until June 1990, the Japanese MUSE standard—based on an analog system—was the front-runner among the more than 23 different technical concepts under consideration. Then, an American company, General Instrument, demonstrated the feasibility of a digital television signal. This breakthrough was of such significance that the FCC was persuaded to delay its decision on an ATV standard until a digitally based standard could be developed.

In March 1990, when it became clear that a digital standard was feasible, the FCC made a number of critical decisions. First, the Commission declared that the new ATV standard must be more than an enhanced analog signal, but be able to provide a genuine HDTV signal with at least twice the resolution of existing television images. Then, to ensure that viewers who did not wish to buy a new digital television set could continue to receive conventional television broadcasts, it dictated that the new ATV standard must be capable of being "simulcast" on different channels. The new ATV standard also allowed the new DTV signal to be based on entirely new design principles. Although incompatible with the existing NTSC standard, the new DTV standard would be able to incorporate many improvements.

The final standard adopted by the FCC did not require a single standard for scanning formats, aspect ratios, or lines of resolution. This outcome resulted from a dispute between the consumer electronics industry (joined by some broadcasters) and the computer industry (joined by the film industry and some public interest groups) over which of the two scanning processes—interlaced or progressive—is superior. Interlaced scanning, which is used in televisions worldwide, scans even-numbered lines first, then odd-numbered ones. Progressive scanning, which is the format used in computers, scans lines in sequences, from top to bottom. The computer industry argued that progressive scanning is superior because it does not "flicker" in the manner of interlaced scanning. It also argued that progressive scanning enables easier connections with the Internet, and is more cheaply converted to interlaced formats than vice versa. The film industry also supported progressive scanning because it offers a more efficient means of converting filmed programming into digital formats. For their part, the consumer electronics industry and broadcasters argued that interlaced scanning was the only technology that could transmit the highest quality pictures then feasible, that is, 1080 lines per picture and 1920 pixels per line. William F. Schreiber, who was a director of the Advanced Television Research Program at the Massachusetts Institute of Technology from 1983 until his retirement in 1990, thought that the continued advocacy of interlaced equipment originated from consumer electronics companies that were trying to get back the substantial investments they made in the interlaced technology.[134]

Digital television transition started in the late 2000s. All the governments across the world set the deadline for analog shutdown by the 2010s. Initially, the adoption rate was low. But soon, more and more households were converting to digital televisions. The transition was expected to be complete worldwide by the mid to late 2010s.

Smart television

[edit]
An early Smart TV from 2012 running the discontinued Orsay platform

Advent of digital television allowed innovations like smart TVs. A smart television, sometimes referred to as connected TV or hybrid television, is a television set with integrated Internet and Web 2.0 features, and is an example of technological convergence between computers and television sets and set-top boxes. Besides the traditional functions of television sets and set-top boxes provided through traditional broadcasting media, these devices can also provide Internet TV, online interactive media, over-the-top content, as well as on-demand streaming media, and home networking access. These TVs come pre-loaded with an operating system, including Android or a derivative of it, Tizen, webOS, Roku OS, and SmartCast.[135][136][137][138]

Smart TV is not to be confused with Internet TV, IPTV or with Web TV. Internet television refers to the receiving of television content over the Internet instead of traditional systems (terrestrial, cable and satellite) (although the Tnternet itself may be received by these methods). Internet Protocol television (IPTV) is one of the emerging Internet television technology standards for use by television broadcasters. Web television (WebTV) is a term used for programs created by a wide variety of companies and individuals for broadcast on Internet TV.

A first patent was filed in 1994[139] (and extended the following year)[140] for an "intelligent" television system, linked with data processing systems, by means of a digital or analog network. Apart from being linked to data networks, one key point is its ability to automatically download necessary software routines, according to a user's demand, and process their needs.

Major TV manufacturers have announced production of smart TVs only, for middle-end and high-end TVs in 2015.[141][142][143]

3D television

[edit]

Stereoscopic 3D television was demonstrated for the first time on August 10, 1928, by John Logie Baird in his company's premises at 133 Long Acre, London.[144] Baird pioneered a variety of 3D television systems using electro-mechanical and cathode-ray tube techniques. The first 3D TV was produced in 1935. The advent of digital television in the 2000s greatly improved 3D TVs.

Although 3D TV sets are somewhat prevalent for watching 3D home media such as on Blu-ray discs, 3D programming has largely failed to make inroads among the public. Many 3D television channels that started in the early 2010s were shut down by the mid-2010s.[citation needed]

Terrestrial television

[edit]

Overview

[edit]

Programming is broadcast by television stations, sometimes called "channels", as stations are licensed by their governments to broadcast only over assigned channels in the television band. At first, terrestrial broadcasting was the only way television could be widely distributed, and because bandwidth was limited, i.e., there were only a small number of channels available, government regulation was the norm.

Canada

[edit]

The Canadian Broadcasting Corporation (CBC) adopted the American NTSC 525-line B/W 60 field per second system as its broadcast standard. It began television broadcasting in Canada in September 1952. The first broadcast was on September 6, 1952, from its Montreal station CBFT. The premiere broadcast was bilingual, spoken in English and French. Two days later, on September 8, 1952, the Toronto station CBLT went on the air. This became the English-speaking flagship station for the country, while CBFT became the French-language flagship after a second English-language station was licensed to CBC in Montreal later in the decade. The CBC's first privately owned affiliate television station, CKSO in Sudbury, Ontario, launched in October 1953 (at the time, all private stations were expected to affiliate with the CBC, a condition that was relaxed in 1960–61 when CTV, Canada's second national English-language network, was formed).

Czechoslovakia

[edit]
The first mass-produced Czechoslovak TV-set Tesla 4001A (1953–57)

In former Czechoslovakia (now the Czech Republic and Slovakia) the first experimental television sets were produced in 1948. In the same year, the first test television transmission was performed. Regular television broadcasts in Prague area started on May 1, 1953. Television service expanded in the following years as new studios were built in Ostrava, Bratislava, Brno and Košice. By 1961 more than a million citizens owned a television set. The second channel of the state-owned Czechoslovak Television started broadcasting in 1970.

Preparations for color transmissions in the PAL color system started in the second half of the 1960s. However, due to the Warsaw Pact invasion of Czechoslovakia and the following normalization period, the broadcaster was ultimately forced to adopt the SECAM color system used by the rest of the Eastern Bloc. Regular color transmissions eventually started in 1973, with television studios using PAL equipment and the output signal only being transcoded to SECAM at transmitter sites.

After the Velvet Revolution, it was decided to switch to the PAL standard. The new OK3 channel was launched by Czechoslovak Television in May 1990 and broadcast in the format from the very start. The remaining channels switched to PAL by July 1, 1992. Commercial television didn't start broadcasting until after the dissolution of Czechoslovakia.

France

[edit]

The first experiments in television broadcasting began in France in the 1930s, although the French did not immediately employ the new technology.

In November 1929, Bernard Natan established France's first television company, Télévision-Baird-Natan. On April 14, 1931, there took place the first transmission with a thirty-line standard by René Barthélemy. On December 6, 1931, Henri de France created the Compagnie Générale de Télévision (CGT). In December 1932, Barthélemy carried out an experimental program in black and white (definition: 60 lines) one hour per week, "Paris Télévision", which gradually became daily from early 1933.

The first official channel of French television appeared on February 13, 1935, the date of the official inauguration of television in France, which was broadcast in 60 lines from 8:15 to 8:30 pm. The program showed the actress Béatrice Bretty in the studio of Radio-PTT Vision at 103 rue de Grenelle in Paris. The broadcast had a range of 100 km (62 mi). On November 10, George Mandel, Minister of Posts, inaugurated the first broadcast in 180 lines from the transmitter of the Eiffel Tower. On the 18th, Susy Wincker, the first announcer since the previous June, carried out a demonstration for the press from 5:30 to 7:30 pm. Broadcasts became regular from January 4, 1937, from 11:00 to 11:30 am and 8:00 to 8:30 pm during the week, and from 5:30 to 7:30 pm on Sundays. In July 1938, a decree defined for three years a standard of 455 lines VHF (whereas three standards were used for the experiments: 441 lines for Gramont, 450 lines for the Compagnie des Compteurs and 455 for Thomson). In 1939, there were about only 200 to 300 individual television sets, some of which were also available in a few public places.

With the entry of France into World War II the same year, broadcasts ceased and the transmitter of the Eiffel Tower was sabotaged. On September 3, 1940, French television was seized by the German occupation forces. A technical agreement was signed by the Compagnie des Compteurs and Telefunken, and a financing agreement for the resuming of the service is signed by German Ministry of Post and Radiodiffusion Nationale (Vichy's radio). On May 7, 1943, at 3:00 evening broadcasts. The first broadcast of Fernsehsender Paris (Paris Télévision) was transmitted from rue Cognac-Jay. These regular broadcasts (514 hours a day) lasted until August 16, 1944. One thousand 441-line sets, most of which were installed in soldiers' hospitals, picked up the broadcasts. These German-controlled television broadcasts from the Eiffel Tower in Paris were able to be received on the south coast of England by Royal Air Force and BBC engineers,[145] who photographed the station identification image direct from the screen.

In 1944, René Barthélemy developed an 819-line television standard. During the years of occupation, Barthélemy reached 1015 and even 1042 lines. On October 1, 1944, television service resumed after the liberation of Paris. The broadcasts were transmitted from the Cognacq-Jay studios. In October 1945, after repairs, the transmitter of the Eiffel Tower was back in service. On November 20, 1948, François Mitterrand decreed a broadcast standard of 819 lines; broadcasting began at the end of 1949 in this definition. Besides France, this standard was later adopted by Algeria, Monaco, and Morocco. Belgium and Luxembourg used a modified version of this standard with bandwidth narrowed to 7 MHz.[146]

Development of color coding standard SECAM began in 1956, by a team led by Henri de France working at Compagnie Française de Télévision; NTSC was considered undesirable in Europe because of its tint problem, requiring an additional control, which SECAM, and later PAL, solved. Some have argued that the primary motivation for the development of SECAM in France was to protect French television equipment manufacturers.[147] However, incompatibility had started with the earlier unusual decision to adopt positive video modulation for 819-line French broadcast signals (only the UK's 405-line was similar; widely adopted 525- and 625-line systems used negative video). Nonetheless, SECAM was partly developed for reasons of national pride. Henri de France's personal charisma and ambition may have been a contributing factor; PAL was developed by Telefunken, a German company.

The first proposed system was called SECAM I and tested in December 1961, followed by other studies to improve compatibility and image quality,[148] but it was too soon for a wide introduction. A version of SECAM for the French 819-line television standard was devised and tested, but never introduced.[149]

Germany

[edit]

Electromechanical broadcasts began in Germany in 1929, but were without sound until 1934. Network electronic service started on March 22, 1935, on 180 lines using telecine transmission of film, intermediate film system, or cameras using the Nipkow Disk. Transmissions using cameras based on the iconoscope began on January 15, 1936. The Berlin Summer Olympic Games were televised, using both all-electronic iconoscope-based cameras and intermediate film cameras, to Berlin and Hamburg in August 1936. Twenty-eight public television rooms were opened for anybody who did not own a television set. The Germans had a 441-line system on the air in February 1937, and during World War II brought it to France, where they broadcast from the Eiffel Tower.

After the end of World War II, the victorious Allies imposed a general ban on all radio and television broadcasting in Germany. Radio broadcasts for information purposes were soon permitted again, but television broadcasting was allowed to resume only in 1948.

In East Germany, the head of broadcasting in the Soviet occupation zone, Hans Mahler, predicted in 1948 that in the near future 'a new and important technical step forward in the field of broadcasting in Germany will begin its triumphant march: television.' In 1950, the plans for a nationwide television service got off the ground, and a Television Centre in Berlin was approved. Transmissions began on December 21, 1952, using the 625-line standard developed in the Soviet Union in 1944, although at that time there were probably no more than 75 television receivers capable of receiving the programming.[150][151]

In West Germany, the British occupation forces as well as NWDR (Nordwestdeutscher Rundfunk), which had started work in the British zone straight after the war, agreed to the launch of a television station. Even before this, German television specialists had agreed on 625 lines as the future standard.[152] This standard had a narrower channel bandwidth (7 MHz) compared to the Soviet specification (8 MHz), allowing three television channels to fit into the VHF I band. In 1963 a second broadcaster (ZDF) started. Commercial stations began programming in the 1980s.

When color was introduced, West Germany (1967) chose a variant of the NTSC color system, modified by Walter Bruch and called PAL. East Germany (1969) accepted the French SECAM system, which was used in Eastern European countries. With the reunification of Germany, it was decided to switch to the PAL color system. The system was changed in December 1990.

Italy

[edit]

In Italy, the first experimental tests on television broadcasts were made in Turin since 1934. The city already hosted the Center for Management of the EIAR (lately renamed as RAI) at the premises of the Theatre of Turin. Subsequently, the EAIR established offices in Rome and Milan. On July 22, 1939, comes into operation in Rome the first television transmitter at the EIAR station, which performed a regular broadcast for about a year using a 441-line system that was developed in Germany. In September of the same year, a second television transmitter was installed in Milan, making experimental broadcasts during major events in the city.

The broadcasts were suddenly ended on May 31, 1940, by order of the government, allegedly because of interferences encountered in the first air navigation systems. Also, the imminent participation in the war is believed to have played a role in this decision. EIAR transmitting equipment was relocated to Germany by the German troops. Lately, it was returned to Italy.

The first official television broadcast began on January 3, 1954, by the RAI.

Japan

[edit]
First television test broadcast transmitted by the NHK Broadcasting Technology Research Institute in May 1939

Television broadcasting in Japan started on May 13, 1939,[153] making the country one of the first in the world with an experimental television service. The broadcasts were in 441-lines with 25 frames/second and 4.5 MHz video bandwidth.[153] The first television tests were conducted as early as 1926 using a combined mechanical Nipkow disk and electronic Braun tube system, later switching to an all-electronic system in 1935 using a domestically developed iconoscope system.[154] In spite of that, because of the beginning of World War II in the Pacific region, this first full-fledged TV broadcast experimentation lasted only a few months. Regular television broadcasts would eventually start in 1953.

In 1979, NHK first developed a consumer high-definition television with a 5:3 display aspect ratio.[155] The system, known as Hi-Vision or MUSE after its Multiple sub-Nyquist sampling encoding for encoding the signal, required about twice the bandwidth of the existing NTSC system but provided about four times the resolution (1080i/1125 lines). Satellite test broadcasts started in 1989, with regular testing starting in 1991 and regular broadcasting of BS-9ch commenced on November 25, 1994, which featured commercial and NHK television programming.

Sony first demonstrated a wideband analog high-definition television system HDTV capable video camera, monitor and video tape recorder (VTR) in April 1981 at an international meeting of television engineers in Algiers. The Sony HDVS range was launched in April 1984, with the HDC-100 camera, HDV-100 video recorder and HDS-100 video switcher all working in the 1125-line component video format with interlaced video and a 5:3 aspect ratio.

Mexico

[edit]

The first testing television station in Mexico signed on in 1935. When KFMB-TV in San Diego signed on in 1949, Baja California became the first state to receive a commercial television station over the air. Within a year, the Mexican government would adopt the U.S. NTSC 525-line B/W 60-field-per-second system as the country's broadcast standard. In 1950, the first commercial television station within Mexico, XHTV in Mexico City, signed on the air, followed by XEW-TV in 1951 and XHGC in 1952. Those three were not only the first television stations in the country, but also the flagship stations of Telesistema Mexicano, which was formed in 1955. That year, Emilio Azcárraga Vidaurreta, who had signed on XEW-TV, entered into a partnership with Rómulo O'Farrill who had signed on XHTV, and Guillermo González Camarena, who had signed on XHGC. The earliest 3D television broadcasts in the world were broadcast over XHGC in 1954. Color television was introduced in 1962, also over XHGC-TV. One of Telesistema Mexicano's earliest broadcasts as a network, over XEW-TV, on June 25, 1955, was the first international North American broadcast in the medium's history, and was jointly aired with NBC in the United States, where it aired as the premiere episode of Wide Wide World, and the Canadian Broadcasting Corporation. Except for a brief period between 1969 and 1973, nearly every commercial television station in Mexico, with exceptions in the border cities, was expected to affiliate with a subnetwork of Telesistema Mexicano or its successor, Televisa (formed by the 1973 merger of Telesistema Mexicano and Television Independiente de Mexico). This condition would not be relaxed for good until 1993 when Imevision was privatized to become TV Azteca.

Soviet Union (USSR)

[edit]

The Soviet Union began offering 30-line electromechanical test broadcasts in Moscow on October 31, 1931, and a commercially manufactured television set in 1932.

First electronic television system on 180 lines at 25 fps was created in the beginning of 1935 in Leningrad (St. Petersburg). In September 1937 the experimental Leningrad TV Center (OLTC) was put in action. OLTC worked with 240 lines at 25 fps progressive scan.[156]

In Moscow, experimental transmissions of electronic television took place on March 9, 1937, using equipment manufactured by RCA. Regular broadcasting began on December 31, 1938. It was quickly realized that 343 lines of resolution offered by this format would have become insufficient in the long run, thus a specification for a 441-line format at 25 fps interlaced was developed in 1940.[156]

Television broadcasts were suspended during Great Patriotic War. In 1944, while the war was still raging, a new standard, offering 625 lines of vertical resolution was prepared. This format was ultimately accepted as a national standard.[156]

The transmissions in 625-line format started in Moscow on November 4, 1948. Regular broadcasting began on June 16, 1949. Details for this standard were formalized in 1955 specification called GOST 7845-55, basic parameters for black-and-white television broadcast. In particular, frame size was set to 625 lines, frame rate to 25 frames/s interlaced, and video bandwidth to 6 MHz. These basic parameters were accepted by most countries having 50 Hz mains frequency and became the foundation of television systems presently known as PAL and SECAM.

Starting in 1951, broadcasting in the 625-line standard was introduced in other major cities of the Soviet Union.

Color television broadcast started in 1967, using SECAM color system.[102]

Turkey

[edit]

The first Turkish television channel, ITU TV, was launched in 1952. The first national television is TRT 1 and was launched in 1968.[citation needed] Color television was introduced in 1981. Before 1989 there was the only channel, the state broadcasting company TRT, and it broadcast in several times of the dateline. Turkey's first private television channel Star started it broadcast on 26 May 1989. Until then there was only one television channel controlled by the state, but with the wave of liberalization, privately owned broadcasting began. Turkey's television market is defined by a handful of big channels, led by Kanal D, ATV and Show, with 14%, 10% and 9.6% market share, respectively. The most important reception platforms are terrestrial and satellite, with almost 50% of homes using satellite (of these 15% were pay services) at the end of 2009. Three services dominate the multi-channel market: the satellite platforms Digitürk and D-Smart and the cable TV service Türksat.

United Kingdom

[edit]

The first British television broadcast was made by Baird Television's electromechanical system over the BBC radio transmitter in September 1929. Baird provided a limited amount of programming five days a week by 1930. During this time, Southampton earned the distinction of broadcasting the first-ever live television interview, which featured Peggy O'Neil, an actress and singer from Buffalo, New York.[157] On August 22, 1932, BBC launched its own regular service using Baird's 30-line electromechanical system, continuing until September 11, 1935.

On November 2, 1936, the BBC began transmitting the world's first public regular high-definition service from the Victorian Alexandra Palace in north London.[158][159][160] It therefore claims to be the birthplace of TV broadcasting as we know it today. It was a dual-system service, alternating between Marconi-EMI's 405-line standard and Baird's improved 240-line standard, from Alexandra Palace in London. The BBC Television Service continues to this day.

The government, on advice from a special advisory committee, decided that Marconi-EMI's electronic system gave the superior picture, and the Baird system was dropped in February 1937. TV broadcasts in London were on the air an average of four hours daily from 1936 to 1939. There were 12,000 to 15,000 receivers. Some sets in restaurants or bars might have 100 viewers for sport events (Dunlap, p56). The outbreak of the Second World War caused the BBC service to be abruptly suspended on September 1, 1939, at 12:35 pm, after a Mickey Mouse cartoon and test signals were broadcast,[161] so that transmissions could not be used as a beacon to guide enemy aircraft to London.[citation needed] It resumed, again from Alexandra Palace on June 7, 1946, after the end of the war, began with a live programme that opened with the line "Good afternoon everybody. How are you? Do you remember me, Jasmine Bligh?" and was followed by the same Mickey Mouse cartoon broadcast on the last day before the war.[161] At the end of 1947 there were 54,000 licensed television receivers, compared with 44,000 television sets in the United States at that time.[162]

The first transatlantic television signal was sent in 1928 from London to New York[163] by the Baird Television Development Company/Cinema Television, although this signal was not broadcast to the public. The first live satellite signal to Britain from the United States was broadcast via the Telstar satellite on July 23, 1962.

The first live broadcast from the European continent was made on August 27, 1950.

United States

[edit]
WNBT (later WNBC) schedule for first week of commercial TV programming in the United States, July 1941

WRGB claims to be the world's oldest television station, tracing its roots to an experimental station founded on January 13, 1928, broadcasting from the General Electric factory in Schenectady, New York, under the call letters W2XB.[164] It was popularly known as "WGY Television" after its sister radio station. Later in 1928, General Electric started a second facility, this one in New York City, which had the call letters W2XBS and which today is known as WNBC. The two stations were experimental in nature and had no regular programming, as receivers were operated by engineers within the company. The image of a Felix the Cat doll rotating on a turntable was broadcast for 2 hours every day for several years as new technology was being tested by the engineers.

The first regularly scheduled television service in the United States began on July 2, 1928, fifteen months before the United Kingdom. The Federal Radio Commission authorized C. F. Jenkins to broadcast from experimental station W3XK in Wheaton, Maryland, a suburb of Washington, D.C.[citation needed] For at least the first eighteen months, 48-line silhouette images from motion picture film were broadcast, although beginning in the summer of 1929 he occasionally broadcast in halftones.[165][166]

Hugo Gernsback's New York City radio station, WRNY, began a regular, if limited, schedule of live television broadcasts on August 14, 1928, using 48-line images. Working with only one transmitter, the station alternated radio broadcasts with silent television images of the station's call sign, faces in motion, and wind-up toys in motion.[167][168] Speaking later that month, Gernsback downplayed the broadcasts, intended for amateur experimenters. "In six months we may have television for the public, but so far we have not got it."[169] Gernsback also published Television, the world's first magazine about the medium.

General Electric's experimental station in Schenectady, New York, on the air sporadically since January 13, 1928, was able to broadcast reflected-light, 48-line images via shortwave as far as Los Angeles, and by September was making four television broadcasts weekly. It is considered to be the direct predecessor of current television station WRGB. The Queen's Messenger, a one-act play broadcast on September 11, 1928, was the world's first live drama on television.[170]

Radio giant RCA began daily experimental television broadcasts in New York City in March 1929 over station W2XBS, the predecessor of current television station WNBC. The 60-line transmissions consisted of pictures, signs, and views of persons and objects.[171] Experimental broadcasts continued to 1931.[172]

General Broadcasting System's WGBS radio and W2XCR television aired their regular broadcasting debut in New York City on April 26, 1931, with a special demonstration set up in Aeolian Hall at Fifth Avenue and Fifty-fourth Street. Thousands waited to catch a glimpse of the Broadway stars who appeared on the 6 in (150 mm) square image, in an evening event to publicize a weekday programming schedule offering films and live entertainers during the four-hour daily broadcasts. Appearing were boxer Primo Carnera, actors Gertrude Lawrence, Louis Calhern, Frances Upton and Lionel Atwill, WHN announcer Nils Granlund, the Forman Sisters, and a host of others.[173]

CBS's New York City station W2XAB began broadcasting their first regular seven-day-a-week television schedule on July 21, 1931, with a 60-line electromechanical system. The first broadcast included Mayor Jimmy Walker, the Boswell Sisters, Kate Smith, and George Gershwin. The service ended in February 1933.[a] Don Lee Broadcasting's station W6XAO in Los Angeles went on the air in December 1931. Using the UHF spectrum, it broadcast a regular schedule of filmed images every day except Sundays and holidays for several years.[b]

By 1935, low-definition electromechanical television broadcasting had ceased in the United States except for a handful of stations run by public universities that continued to 1939. The Federal Communications Commission (FCC) saw television in the continual flux of development with no consistent technical standards, hence all such stations in the U.S. were granted only experimental and non-commercial licenses, hampering television's economic development. Just as importantly, Philo Farnsworth's August 1934 demonstration of an all-electronic system at the Franklin Institute in Philadelphia pointed out the direction of television's future.

On June 15, 1936, Don Lee Broadcasting began a one-month-long demonstration of high definition (240+ line) television in Los Angeles on W6XAO (later KTSL, then KNXT, now KCBS-TV) with a 300-line image from motion picture film. By October, W6XAO was making daily television broadcasts of films. By 1934 RCA increased the definition to 343 interlaced lines and the frame rate to 30 per second.[174] On July 7, 1936, RCA and its subsidiary NBC demonstrated in New York City a 343-line electronic television broadcast with live and film segments to its licensees, and made its first public demonstration to the press on November 6. Irregularly scheduled broadcasts continued through 1937 and 1938.[175] Regularly scheduled electronic broadcasts began in April 1938 in New York (to the second week of June, and resuming in August) and Los Angeles.[176][177][178][179] NBC officially began regularly scheduled television broadcasts in New York on April 30, 1939, with a broadcast of the opening of the 1939 New York World's Fair.

In 1937 RCA raised the frame definition to 441 lines, and its executives petitioned the FCC for approval of the standard.[174] By June 1939, regularly scheduled 441-line electronic television broadcasts were available in New York City and Los Angeles, and by November on General Electric's station in Schenectady. From May through December 1939, the New York City NBC station (W2XBS) of RCA broadcast twenty to fifty-eight hours of programming per month, Wednesday through Sunday of each week. The programming was 33% news, 29% drama, and 17% educational programming, with an estimated 2,000 receiving sets by the end of the year, and an estimated audience of five to eight thousand. A remote truck could cover outdoor events from up to 10 miles (16 km) away from the transmitter, which was located atop the Empire State Building. Coaxial cable was used to cover events at Madison Square Garden. The coverage area for reliable reception was a radius of 40 to 50 miles (80 km) from the Empire State Building, an area populated by more than 10,000,000 people.[180]

The FCC adopted NTSC television engineering standards on May 2, 1941, calling for 525 lines of vertical resolution, 30 frames per second with interlaced scanning, 60 fields per second, and sound carried by frequency modulation. Sets sold since 1939 that were built for slightly lower resolution could still be adjusted to receive the new standard. (Dunlap, p31). The FCC saw television ready for commercial licensing, and the first such licenses were issued to NBC- and CBS-owned stations in New York on July 1, 1941, followed by Philco's station WPTZ in Philadelphia.

In the U.S., the Federal Communications Commission (FCC) allowed stations to broadcast advertisements beginning in July 1941 but required public service programming commitments as a requirement for a license. By contrast, the United Kingdom chose a different route, imposing a television license fee on owners of television reception equipment to fund the British Broadcasting Corporation (BBC), which had public service as part of its royal charter.

The first official, paid advertising to appear on American commercial television occurred on the afternoon of July 1, 1941, over New York station WNBT (now WNBC) before a baseball game between the Brooklyn Dodgers and Philadelphia Phillies. The announcement for Bulova watches, for which the company paid anywhere from $4.00 to $9.00 (reports vary), displayed a WNBT test pattern modified to look like a clock with the hands showing the time. The Bulova logo, with the phrase "Bulova Watch Time", was shown in the lower right-hand quadrant of the test pattern while the second hand swept around the dial for one minute.[181][182]

After the U.S. entry into World War II, the FCC reduced the required minimum air time for commercial television stations from 15 hours per week to 4 hours. Most TV stations suspended broadcasting; of the ten original television stations only six continued through the war.[183] On the few that remained, programs included entertainment such as boxing and plays, events at Madison Square Garden, and illustrated war news as well as training for air raid wardens and first aid providers. In 1942, there were 5,000 sets in operation, but production of new TVs, radios, and other broadcasting equipment for civilian purposes was suspended from April 1942 to August 1945 (Dunlap).

The Philco Predicta, 1958. In the collection of The Children's Museum of Indianapolis

By 1947, when there were 40 million radios in the U.S., there were about 44,000 television sets (with probably 30,000 in the New York area).[162] Regular network television broadcasts began on NBC on a three-station network linking New York with the Capital District and Philadelphia in 1944; on the DuMont Television Network in 1946, and on CBS and ABC in 1948.

Following the rapid rise of television after the war, the Federal Communications Commission was flooded with applications for television station licenses. With more applications than available television channels, the FCC ordered a freeze on processing station applications in 1948 that remained in effect until April 14, 1952.[183]

By 1949, the networks stretched from New York to the Mississippi River, and by 1951 to the West Coast. Commercial color television broadcasts began on CBS in 1951 with a field-sequential color system that was suspended four months later for technical and economic reasons. The television industry's National Television System Committee (NTSC) developed a color television system based on RCA technology that was compatible with existing black and white receivers, and commercial color broadcasts reappeared in 1953.

With the widespread adoption of cable across the United States in the 1970s and the 1980s, terrestrial television broadcasts have been in decline; in 2013 it was estimated that about 7% of US households used an antenna.[184][185] A slight increase in use began around 2010 due to a switchover to digital terrestrial television broadcasts, which offer pristine image quality over very large areas, and offered an alternate to CATV for cord cutters.

Cable television

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Cable television is a system of broadcasting television programming to paying subscribers via radio frequency (RF) signals transmitted through coaxial cables or light pulses through fiber-optic cables. This contrasts with traditional terrestrial television, in which the television signal is transmitted over the air by radio waves and received by a television antenna attached to the television. FM radio programming, high-speed Internet, telephone service, and similar non-television services may also be provided through these cables.

The abbreviation CATV is often used for cable television. It originally stood for "community access television" or "community antenna television", from cable television's origins in 1948: in areas where over-the-air reception was limited by distance from transmitters or mountainous terrain, large "community antennas" were constructed, and cable was run from them to individual homes. The origins of cable broadcasting are even older as radio programming was distributed by cable in some European cities as far back as 1924.

Early cable television was analog, but since the 2000s all cable operators have switched to, or are in the process of switching to, digital cable television.

Satellite television

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Overview

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Satellite television is a system of supplying television programming using broadcast signals relayed from communication satellites. The signals are received via an outdoor parabolic reflector antenna usually referred to as a satellite dish and a low-noise block downconverter (LNB). A satellite receiver then decodes the desired television program for viewing on a television set. Receivers can be external set-top boxes, or a built-in television tuner. Satellite television provides a wide range of channels and services, especially to geographic areas without terrestrial television or cable television.

The most common method of reception is direct-broadcast satellite television (DBSTV), also known as "direct to home" (DTH).[186] In DBSTV systems, signals are relayed from a direct broadcast satellite on the Ku wavelength and are completely digital.[187] Satellite TV systems formerly used systems known as television receive-only. These systems received analog signals transmitted in the C-band spectrum from FSS type satellites and required the use of large dishes. Consequently, these systems were nicknamed big dish systems, and were more expensive and less popular.[188]

The direct-broadcast satellite television signals were earlier analog signals and later digital signals, both of which require a compatible receiver. Digital signals may include high-definition television (HDTV). Some transmissions and channels are free-to-air or free-to-view, while many other channels are pay television requiring a subscription.[189] In 1945 British science fiction writer Arthur C. Clarke proposed a worldwide communications system that would function by means of three satellites equally spaced apart in earth orbit.[190][191] This was published in the October 1945 issue of the Wireless World magazine and won him the Franklin Institute's Stuart Ballantine Medal in 1963.[192][193]

The first satellite television signals from Europe to North America were relayed via the Telstar satellite over the Atlantic ocean on July 23, 1962.[194] The signals were received and broadcast in North American and European countries and watched by over 100 million.[194] Launched in 1962, the Relay 1 satellite was the first satellite to transmit television signals from the US to Japan.[195] The first geosynchronous communication satellite, Syncom 2, was launched on July 26, 1963.[196]

The world's first commercial communications satellite, called Intelsat I and nicknamed "Early Bird", was launched into geosynchronous orbit on April 6, 1965.[197] The first national network of television satellites, called Orbita, was created by the Soviet Union in October 1967, and was based on the principle of using the highly elliptical Molniya satellite for rebroadcasting and delivering of television signals to a network of twenty ground downlink stations each equipped with a parabolic antenna 39 feet (12 m) in diameter.[198][199] The first commercial North American satellite to carry television transmissions was Canada's geostationary Anik 1, which was launched on 9 November 1972.[200] ATS-6, the world's first experimental educational and Direct Broadcast Satellite (DBS), was launched on May 30, 1974.[201] It transmitted at 860 MHz using wideband FM modulation and had two sound channels. The transmissions were focused on the Indian subcontinent but experimenters were able to receive the signal in Western Europe using home-constructed equipment that drew on UHF television design techniques already in use.[202]

In the Soviet Union, the Moskva (or Moscow) system of broadcasting and delivering of TV signals via satellites was launched in 1979. Stationary and mobile downlink stations with parabolic antennas 13.1 and 8.2 feet (4 and 2.5 m)[203] in diameter were receiving signal from Gorizont communication satellites deployed to geostationary orbits.[199] The first in a series of Soviet geostationary satellites to carry Direct-To-Home television, Ekran 1, was launched on October 26, 1976.[204] It used a 714 MHz UHF downlink frequency so that the transmissions could be received with existing UHF television technology rather than microwave technology.[205]

Beginning of the satellite TV industry

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In the United States, the satellite television industry developed from the cable television industry as communication satellites were being used to distribute television programming to remote cable television headends. Home Box Office (HBO), Turner Broadcasting System (TBS), and Christian Broadcasting Network (CBN, later The Family Channel) were among the first to use satellite television to deliver programming. Taylor Howard of San Andreas, California became the first person to receive C-band satellite signals with his home-built system in 1976.[206] PBS, a non-profit public broadcasting service, began to distribute its television programming by satellite in 1978.[207] On October 18, 1979, the Federal Communications Commission (FCC) began allowing people to have home satellite earth stations without a federal government license.[208] The front cover of the 1979 Neiman-Marcus Christmas catalogue featured the first home satellite TV stations on sale for $36,500.[209] The dishes were nearly 20 feet (6.1 m) in diameter[210] and were remote-controlled.[211] The price went down by half soon after that, but there were only eight more channels.[212] The Society for Private and Commercial Earth Stations (SPACE), an organisation that represented consumers and satellite TV system owners was established in 1980.[213]

Early satellite television systems were not very popular due to their expense and large dish size.[214] The satellite television dishes of the systems in the late 1970s and early 1980s were 10 to 16 feet (3.0 to 4.9 m) in diameter,[215] made of fibreglass or solid aluminum or steel,[216] and in the United States cost more than $5,000, sometimes as much as $10,000.[217] Programming sent from ground stations was relayed from eighteen satellites in geostationary orbit located 22,300 miles (35,900 km) above the Earth.[218][219]

TVRO/C-band satellite era

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By 1980, satellite television was well established in the US and Europe. On April 26, 1982, the first satellite channel in the UK, Satellite Television Ltd, (later Sky1) was launched.[220] Its signals were transmitted from the ESA's Orbital Test Satellites.[220] Between 1981 and 1985, TVRO systems' sales rates increased as prices fell. Advances in receiver technology and the use of Gallium Arsenide FET technology enabled the use of smaller dishes. 500,000 systems, some costing as little as $2000, were sold in the US in 1984.[217][221] Dishes pointing to one satellite were even cheaper.[222] People in areas without local broadcast stations or cable television service could obtain good-quality reception with no monthly fees.[217][219] The large dishes were a subject of much consternation, as many people considered them eyesores, and in the US most condominiums, neighborhoods, and other homeowner associations tightly restricted their use, except in areas where such restrictions were illegal.[188] These restrictions were altered in 1986 when the Federal Communications Commission ruled all of them illegal.[214] A municipality could require a property owner to relocate the dish if it violated other zoning restrictions, such as a setback requirement, but could not outlaw their use.[214] The necessity of these restrictions would slowly decline as the dishes got smaller.[214]

Originally, all channels were broadcast in the clear (ITC) because the equipment necessary to receive the programming was too expensive for consumers. With the growing number of TVRO systems, the program providers and broadcasters had to scramble their signal and develop subscription systems.

In October 1984, the U.S. Congress passed the Cable Communications Policy Act of 1984, which gave those using TVRO systems the right to receive signals for free unless they were scrambled, and required those who did scramble to make their signals available for a reasonable fee.[219][223] Since cable channels could prevent reception by big dishes, other companies had an incentive to offer competition.[224] In January 1986, HBO began using the now-obsolete VideoCipher II system to encrypt their channels.[215] Other channels uses less secure television encryption systems. The scrambling of HBO was met with much protest from owners of big-dish systems, most of which had no other option at the time for receiving such channels, claiming that clear signals from cable channels would be difficult to receive.[225] Eventually HBO allowed dish owners to subscribe directly to their service for $12.95 per month, a price equal to or higher than what cable subscribers were paying, and required a descrambler to be purchased for $395.[225] This led to the attack on HBO's transponder Galaxy 1 by John R. MacDougall in April 1986.[225] One by one, all commercial channels followed HBO's lead and began scrambling their channels.[226] The Satellite Broadcasting and Communications Association SBCA was founded on December 2, 1986, as the result of a merger between SPACE and the Direct Broadcast Satellite Association (DBSA).[221]

Videocipher II used analog scrambling on its video signal and Data Encryption Standard based encryption on its audio signal. VideoCipher II was defeated, and there was a black market for descrambler devices, which were initially sold as "test" devices.[226]

Late 1980s and 1990s to present

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DBS satellite dishes

By 1987, nine channels were scrambled, but 99 others were available free-to-air.[223] While HBO initially charged a monthly fee of $19.95, soon it became possible to unscramble all channels for $200 a year.[223] Dish sales went down from 600,000 in 1985 to 350,000 in 1986, but pay television services were seeing dishes as something positive since some people would never have cable service, and the industry was starting to recover as a result.[223] Scrambling also led to the development of pay-per-view events.[223] On November 1, 1988, NBC began scrambling its C-band signal but left its Ku band signal unencrypted in order for affiliates to not lose viewers who could not see their advertising.[227] Most of the two million satellite dish users in the United States still used C-band.[227] ABC and CBS were considering scrambling, though CBS was reluctant due to the number of people unable to receive local network affiliates.[227] The piracy on satellite television networks in the US led to the introduction of the Cable Television Consumer Protection and Competition Act of 1992. This legislation enabled anyone caught engaging in signal theft to be fined up to $50,000 and to be sentenced to a maximum of two years in prison.[228] A repeat offender can be fined up to $100,000 and be imprisoned for up to five years.[228]

Satellite television had also developed in Europe but it initially used low-power communication satellites and it required dish sizes of over 1.7 m (5 ft 7 in). On December 11, 1988 Luxembourg launched Astra 1A, the first satellite to provide medium power satellite coverage to Western Europe.[229] This was one of the first medium-powered satellites, transmitting signals in Ku band and allowing reception with small dishes (90 cm).[229] The launch of Astra beat the winner of the UK's state Direct Broadcast Satellite licence holder, British Satellite Broadcasting, to the market.

In the US in the early 1990s, four large cable companies launched PrimeStar, a direct broadcasting company using medium power satellite. The relatively strong transmissions allowed the use of smaller (90 cm) dishes. Its popularity declined with the 1994 launch of the Hughes DirecTV and Dish Network satellite television systems.

On March 4, 1996, EchoStar introduced Digital Sky Highway (Dish Network) using the EchoStar 1 satellite.[230] EchoStar launched a second satellite in September 1996 to increase the number of channels available on Dish Network to 170.[230] These systems provided better pictures and stereo sound on 150-200 video and audio channels, and allowed small dishes to be used. This greatly reduced the popularity of TVRO systems. In the mid-1990s, channels began moving their broadcasts to digital television transmission using the DigiCipher conditional access system.[231]

In addition to encryption, the widespread availability, in the US, of DBS services such as PrimeStar and DirecTV had been reducing the popularity of TVRO systems since the early 1990s. Signals from DBS satellites (operating in the more recent Ku band) are higher in both frequency and power (due to improvements in the solar panels and energy efficiency of modern satellites) and therefore require much smaller dishes than C-band, and the digital modulation methods now used require less signal strength at the receiver than analog modulation methods.[232] Each satellite also can carry up to 32 transponders in the Ku band, but only 24 in the C band, and several digital subchannels can be multiplexed (MCPC) or carried separately (SCPC) on a single transponder.[233] Advances in noise reduction due to improved microwave technology and semiconductor materials have also had an effect.[233] However, one consequence of the higher frequencies used for DBS services is rain fade where viewers lose signal during a heavy downpour. C-band satellite television signals are less prone to rain fade.[234]

Internet television

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Internet television (Internet TV), (online television) or IPTV (Internet Protocol Television) is the digital distribution of television content via the Internet as opposed to traditional systems like terrestrial, cable and satellite, although internet itself is received by terrestrial, cable or satellite methods. Internet television is a general term that covers the delivery of television shows and other video content over the Internet by video streaming technology, typically by major traditional television broadcasters.

Internet television is not to be confused with Smart TV, IPTV or with Web TV. Smart television refers to the TV set that has an inbuilt operating system. Internet Protocol television (IPTV) is one of the emerging Internet television technology standards for use by television broadcasters. Web television is a term used for programs created by a wide variety of companies and individuals for broadcast on Internet TV.

Television sets

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A television set, also called a television receiver, television, TV set, TV, or telly, is a device that combines a tuner, display, and speakers for the purpose of viewing television. Introduced in the late 1920s in mechanical form, television sets became a popular consumer product after World War II in electronic form, using cathode ray tubes. The addition of color to broadcast television after 1953 further increased the popularity of television sets in the 1960s, and an outdoor antenna became a common feature of suburban homes. The ubiquitous television set became the display device for the first recorded media in the 1970s, such as VHS and later DVD, as well as for early home computers and videogame consoles. Since the late 2000s, flat panel television incorporating liquid-crystal displays largely replaced cathode ray tubes. Modern flat panel TVs are typically capable of high-definition display (720p, 1080p or 2160p) and can also play content from a USB device.

RCA 630-TS, the first mass-produced television set, which sold in 1946–1947

Mechanical televisions were commercially sold from 1928 to 1934 in the United Kingdom,[235] United States, and Soviet Union.[236] The earliest commercially made televisions sold by Baird called Televisors in the UK in 1928 were radios with the addition of a television device consisting of a neon tube behind a mechanically spinning disk (patented by German engineer Paul Nipkow in 1884) with a spiral of apertures first mass-produced television set, selling about a thousand units.[237]

The first commercially made electronic televisions with cathode ray tubes were manufactured by Telefunken in Germany in 1934,[238][239] followed by other makers in France (1936),[240] Britain (1936),[241] and the United States (1938).[242][243] The cheapest model with a 12-inch (30 cm) screen was $445 (equivalent to $9,940 in 2024).[244] An estimated 19,000 electronic televisions were manufactured in Britain, and about 1,600 in Germany, before World War II. About 7,000–8,000 electronic sets were made in the U.S.[245] before the War Production Board halted manufacture in April 1942, production resuming in August 1945. Television usage in the western world skyrocketed after World War II with the lifting of the manufacturing freeze, war-related technological advances, the drop in television prices caused by mass production, increased leisure time, and additional disposable income. While only 0.5% of U.S. households had a television in 1946, 55.7% had one in 1954, and 90% by 1962.[246] In Britain, there were 15,000 television households in 1947, 1.4 million in 1952, and 15.1 million by 1968.[citation needed] By the late 1960s and early 1970s, color television had come into wide use. In Britain, BBC1, BBC2 and ITV were regularly broadcasting in color by 1969.[citation needed]

By the late 2000s, CRT display technology was largely supplanted worldwide by flat-panel displays such as LCD. Flat-panel television, especially LCD, has become the dominant form of television since the early 2010s.[247] was about the largest size of a CRT.[248]

Technological innovations

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The first national live television broadcast in the U.S. took place on September 4, 1951, when President Harry Truman's speech at the Japanese Peace Treaty Conference in San Francisco was transmitted over AT&T's transcontinental cable and microwave radio relay system to broadcast stations in local markets.[249][250][251]

The first live coast-to-coast commercial television broadcast in the U.S. took place on November 18, 1951, during the premiere of CBS's See It Now, which showed a split-screen view of the Brooklyn Bridge in New York City and the Golden Gate Bridge in San Francisco.

The Eurovision Song Contest held yearly from 1956 by the European Broadcasting Union was launched, among other goals, with the aim to make technical improvements in the field of simultaneous sharing of TV signals across main national European broadcasters, a technical challenge by that time. It is the longest-running annual international televised music competition.

In 1958, the CBC completed the longest television network in the world, from Sydney, Nova Scotia to Victoria, British Columbia.

Reportedly, the first continuous live broadcast of a "breaking" news story in the world was conducted by the CBC during the Springhill mining disaster, which began on October 23, 1958.

The development of cable television and satellite television in the 1970s allowed for more channels and encouraged companies to target programming toward specific audiences. It also enabled the rise of subscription television channels, such as HBO and Showtime in the U.S., and Sky Television in the U.K.

Television pioneers

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Important people in the development and contributions of TV technology.

Television museums

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See also

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Notes

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References

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Bibliography

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Further reading

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[edit]
Revisions and contributorsEdit on WikipediaRead on Wikipedia
from Grokipedia
The history of television spans over a century of technological innovation and cultural transformation, beginning with mechanical experiments in the late 19th century and evolving into a dominant global medium through electronic systems, color broadcasting, cable distribution, satellite transmission, and digital streaming. Key milestones include the invention of core components like the cathode ray tube and mechanical disk system in the 1880s, which laid the groundwork for visual transmission. Early developments in the 1920s marked the transition to practical demonstrations, with inventors such as transmitting the first radio images in 1923 using a mechanical system called "radiovision," followed by Philo Taylor Farnsworth's 1927 patent for the electronic "" tube, enabling all-electronic television. conducted the first public demonstration of a true television system in in 1926, while Vladimir Zworykin advanced electronic imaging with the "" at RCA by 1929, sparking patent disputes that shaped commercial standards. Experimental broadcasts began soon after, including General Electric's 1928 transmission of 24-line mechanical images from New York and the first television drama, , aired by station WGY in Schenectady in 1928. The 1930s and 1940s saw regulatory and infrastructural growth, with the U.S. (FCC) established in 1934 to oversee airwaves, leading to regular programming by networks like and . Commercial viability accelerated post-World War II; by 1946, approximately 8,000 U.S. households owned televisions, surging to 45.7 million by 1960 as television overtook radio as the primary broadcast medium. Iconic programming emerged, including and in 1947, and I Love Lucy in 1951, while the 1960 Kennedy-Nixon debates highlighted television's influence on , reaching 90% of U.S. households. Advancements in the mid-20th century expanded television's scope: color technology, proposed as early as 1904 but commercialized in the , became widespread by the late , replacing black-and-white sets in the . , initially a for distant signals in the , proliferated in the and 1980s, offering more channels and bypassing local regulations. Satellite broadcasting debuted with the 1962 launch, enabling transatlantic live relays, and the VCR's 1977 introduction allowed , further personalizing consumption. The digital era transformed television from the 1990s onward, with the FCC adopting (DTV) standards in to improve and , paving the way for high-definition and interactive formats. By the 2000s, streaming platforms disrupted traditional models, integrating delivery with on-demand viewing, while global adoption reached billions, profoundly impacting news, , and —evident in events like the 1963 JFK assassination coverage and the 1977 Roots miniseries, which drew record audiences.

Mechanical television (1870s–1930s)

Early conceptual inventions

The development of mechanical television in the late 19th century relied on foundational scientific principles, including the persistence of vision—where the retains an image for a brief period after exposure—and the , which allows materials like to convert light into electrical signals. These concepts were essential for breaking down and reconstructing visual images over distance, enabling the theoretical transmission of moving pictures via . Without such prerequisites, early inventors could not conceptualize systems that scanned an image line by line and reassembled it at the receiver to exploit the eye's perceptual persistence. One of the earliest proposals came from French engineer in 1880, who outlined a system for electrical transmission in an article published in La Lumière Électrique. Leblanc proposed a system using two vibrating mirrors at different speeds to scan the onto a selenium cell for conversion to electrical signals. At the receiver, mica shutters synchronized to modulate light from a lamp to reconstruct the using . This approach emphasized scanning to capture and rebuild images, laying groundwork for photoelectric capture though it remained theoretical due to technological limitations. In 1884, German engineering student advanced these ideas with his patent for an "Elektrisches Teleskop" (Electric Telescope), granted as German Patent DE 30,105 on January 15, 1885, retroactive to January 6, 1884. Nipkow's invention featured a rotating disk perforated with a spiral pattern of holes—known as the —to achieve sequential scanning: as the disk spun in front of the image, each hole sequentially exposed portions to a cell, converting light variations into electrical currents line by line. A identical disk at the receiver, synchronized and illuminated by a light source modulated by the transmitted signals, would reconstruct the image point by point. Though never built by Nipkow, this mechanical scanning mechanism became a cornerstone for later electromechanical television experiments. Early 20th-century refinements began shifting conceptual focus toward electronic methods, as seen in Scottish engineer A. A. Campbell Swinton's 1908 letter to , where he proposed using cathode-ray tubes for both transmitting and receiving images. Campbell Swinton described electron beams from heated cathodes to scan subjects photoelectrically and reproduce them on fluorescent screens, eliminating mechanical parts and foreshadowing fully electronic systems while building on mechanical scanning principles like those of Nipkow. This idea, though not immediately pursued, highlighted the potential integration of photoelectric effects with electron beams in television's evolution.

Key mechanical systems and demonstrations

One of the pioneering mechanical television systems was developed by Scottish inventor , who in 1925 achieved transmissions of moving silhouette images using a for scanning. Baird's early setup employed a 30-line resolution. On October 2, 1925, he independently discovered the flying-spot scanner principle, enhancing the system's efficiency for capturing tonal images using reflected light, and filed a for it in January 1926. This culminated in his landmark public demonstration on January 26, 1926, at his Frith Street laboratory in London, where about 40 members of the Royal Institution viewed faint but recognizable moving images of human faces, transmitted wirelessly over a short distance. In the United States, American inventor Charles Francis Jenkins advanced mechanical television with his Radiovision system, publicly demonstrated on June 13, 1925, in Washington, D.C., transmitting moving silhouette images over five miles using a flying-spot scanner and neon lamp at 48-line resolution. Jenkins' approach relied on a variant of mechanical scanning rings akin to the Nipkow disk, focusing on practical wireless transmission of simple motion. By 1928, he conducted significant tests with the U.S. Navy, broadcasting 48-line images of vaudeville acts over 40 miles from Washington, D.C., to Anacostia, using station W3XK on a schedule of hourly transmissions three days a week. These experiments, standardized by the Radio Manufacturers Association, demonstrated halftone images within a 100-kilocycle bandwidth, with over 100 amateur receivers reporting successful reception. Parallel developments occurred in under , who in 1925 experimented with cathode-ray tube receivers adapted to mechanical scanning, and on December 25, 1926, transmitted a 40-line image of the Japanese character "イ" using a scanner and photoelectric tube. 's system at Industrial High School combined mechanical disk scanning for the transmitter with early electronic detection, achieving synchronized image reproduction at low frame rates. This work laid foundational tests for television in , emphasizing hybrid mechanical-electronic integration despite rudimentary image quality. In the , inventor Léon developed a mirror-drum-based system, starting with 16-line resolution in 1925 for closed-circuit transmission of simple shapes. By 1926, improved it to 64 lines, using rotating mirrors on a for both scanning and display to produce moving images in laboratory settings. These private demonstrations highlighted mechanical scanning's potential for interlaced lines, influencing later refinements. Vladimir Zworykin's early career was shaped by influences, particularly from his collaboration with Boris Rosing on a mirror-drum scanner system that transmitted crude images. This exposure to mechanical methods informed Zworykin's shift toward electronic alternatives in the 1920s, though his initial patents drew from scanning synchronization challenges observed in disk and drum systems. Guglielmo Marconi's experiments from 1922 to 1925, achieving reliable transatlantic transmissions on wavelengths around 100 meters, provided the wireless infrastructure essential for early trials by the . These efforts in propagation and beam antennas enabled subsequent mechanical TV broadcasts in the late 1920s, testing image signals over long distances. Despite these innovations, mechanical systems faced inherent limitations, including low resolution typically under 100 lines, resulting in blurry, small unsuitable for detailed viewing. challenges were prominent, as precise alignment of rotating disks or drums between transmitter and receiver was difficult over distances, often causing image drift or failure without additional electrical controls. Mechanical wear and limited scanning speeds further restricted frame rates and brightness, confining systems to laboratory or short-range use. By the early , these constraints spurred a transition to fully electronic scanning methods.

Electronic television (1920s–1950s)

Development of electronic scanning technologies

The development of electronic scanning technologies marked a pivotal shift from mechanical systems, overcoming their limitations in resolution and speed through the use of electron beams for image capture and display. Russian inventor Boris Rosing conducted pioneering hybrid experiments between 1907 and 1911, combining mechanical scanning at the transmitter with an electronic cathode-ray tube receiver based on Karl Ferdinand Braun's design. In 1907, Rosing patented a system using a mechanical for image dissection and a cathode-ray for reconstruction, demonstrating moving images such as a in 1911. These efforts laid groundwork for integrating electronic elements into television, though signal fidelity remained constrained by mechanical components. In 1923, Vladimir Zworykin, a Russian-born engineer at Westinghouse Electric, conceived the , a camera tube that employed a photoelectric mosaic for image capture, filed for a in 1923, which was granted in 1938. The device featured a photosensitive plate coated with a mosaic of thousands of tiny silver globules on , forming isolated photoconductive cells that stored an electrostatic charge pattern from the incident light image. An electron beam, generated by a low-velocity gun and deflected magnetically, scanned the mosaic to release charges as electrical signals proportional to light intensity, enabling storage and sequential readout without mechanical parts. Initial demonstrations in 1924 produced dim images due to low sensitivity and amplification issues, but the 's charge-storage principle addressed key challenges in converting optical scenes to persistent electrical signals. Independently, American inventor developed the tube in 1927, achieving the first fully electronic television transmission on September 7 of that year by scanning a simple static image with an electron beam. Unlike the iconoscope's storage method, the dissector used a photoemissive to instantly emit electrons from illuminated areas, which an focused into a beam swept across an aperture by magnetic deflection, producing real-time video signals without charge storage. Farnsworth refined the tube between 1929 and 1930, improving and adding multipactor amplifiers to boost signal strength for dynamic scenes, culminating in clearer transmissions of moving objects by 1930 and earning a patent in 1934. These advancements highlighted the potential for all-electronic systems but faced challenges in low light sensitivity, requiring intense illumination and further amplification via vacuum tubes like Lee de Forest's . These parallel developments led to intense patent disputes between Farnsworth and RCA, resolved in Farnsworth's favor in 1939, enabling broader commercialization of electronic systems. In during the early 1930s, adapted principles from his research to advance television scanning, demonstrating a fully electronic system on December 14, 1930, with cathode-ray tubes for both transmission and reception. Building on his 1931 work with scanning transmission microscopy, Ardenne employed a finely focused beam to scan photoconductive targets, enhancing resolution through precise beam control and magnetic deflection, as showcased at the 1931 Radio Exhibition where a 100-line image was displayed. His innovations emphasized high-speed beam manipulation to overcome signal noise and achieve sharper electronic imaging, influencing subsequent German developments in for television. Central to these inventions was electron beam scanning, where a heated emitted accelerated and focused into a narrow beam, deflected horizontally and vertically by electromagnetic coils to raster across a target at rates of thousands of lines per second, synchronizing capture and display. Photoconductive cells in mosaics or photocathodes converted light to varying electron flows, but early systems struggled with signal amplification, as weak photoelectric currents necessitated multi-stage amplifiers prone to and until refinements in the late 1920s stabilized outputs. By the mid-1930s, iterative improvements in tube design and beam focusing elevated electronic television sensitivity and resolution, reaching 200–400 lines by 1934–1936 through enhanced mosaic coatings and deflection precision, as seen in systems achieving 343 lines at 30 frames per second. These gains, driven by better photoconductive materials and reduced beam velocity for charge neutralization, enabled viable image quality for practical applications.

First electronic broadcasts and commercialization

The world's first regular high-definition electronic television service launched on November 2, 1936, when the began transmissions using a 405-line system from studios at in . This service marked a shift from earlier mechanical systems, providing clearer images to early viewers in the London area via the newly developed Emitron camera technology. A key milestone came on May 12, 1937, when the televised the coronation procession of King George VI, serving as the service's first major outside broadcast and demonstrating the potential for live event coverage to a limited audience of set owners. The event, captured with mobile cameras along the route, reached approximately 50,000 viewers and highlighted television's role in national ceremonies despite the modest scale of receivers available. In the United States, the Radio Corporation of America (RCA) advanced commercialization by demonstrating electronic television at the , where President Franklin D. Roosevelt's opening address was broadcast live to fairgoers on April 30, 1939, using a 441-line system. RCA offered its first consumer sets, such as the TRK-12 model, for sale at the event, priced at around $600, introducing the technology to a broader public amid growing interest. By July 1, 1941, RCA's station WNBT in New York initiated the first regularly scheduled commercial television broadcasts under (FCC) approval, featuring programs like variety shows and news, though limited to a small urban audience due to scarce receivers. The outbreak of severely disrupted these early efforts; the suspended its television service on , to repurpose frequencies for wartime and avoid aiding enemy navigation, halting public broadcasts across until after the conflict. In the United States, while limited broadcasts continued on a few stations for morale and training purposes, manufacturing of receivers ceased in 1942 as resources shifted to military electronics, effectively pausing widespread commercialization until peacetime. Post-war recovery began swiftly in 1946, with the BBC resuming its 405-line service on June 7, coinciding with the Victory Parade in London and signaling television's return as a public medium in Europe. The FCC in the United States supported expansion by authorizing additional commercial stations and lifting wartime restrictions, enabling rapid growth from six operating stations in 1945 to over 50 by the end of 1946. Japan joined the resurgence when Nippon Hoso Kyokai (NHK) launched its first regular television broadcasts on February 1, 1953, using a 525-line system and reaching an initial audience of about 866 households nationwide. Commercialization accelerated in the late 1940s as American manufacturers produced black-and-white sets compatible with the standard, with the number of television sets in use growing from about 8,000 households in 1946 to over 4 million by 1949, as sales surged from around 6,000–17,000 units in 1946. Prices remained high at $200 to $1,000 depending on model and features, limiting adoption to urban middle-class households. These sets, often console-style with 7- to 12-inch screens, became status symbols, supported by programming from networks like and that drew advertisers through sponsored content. Significant milestones underscored television's maturing infrastructure, including the BBC's live coverage of the 1948 London Olympics, which used six cameras to broadcast events from to an estimated 500,000 viewers across the , marking the first post-war international sporting event on television. In the United States, the first coast-to-coast broadcast occurred on September 4, 1951, when President Harry S. Truman's speech at the Japanese Peace Treaty Conference in was relayed via microwave links to an audience of 40 million, demonstrating national connectivity and boosting set sales further.

Color television (1940s–1980s)

Initial color experiments and systems

Early efforts to add color to television built upon mechanical scanning principles pioneered in the 1920s and 1930s. Scottish inventor John Logie Baird conducted some of the first mechanical color television experiments, demonstrating a system on July 3, 1928, in London using a spinning mirror-drum scanner and a revolving disc with alternating blue-green and red filters to transmit images of simple subjects like a basket of strawberries. Baird repeated this demonstration in August 1928 before the British Association for the Advancement of Science in Glasgow, marking an early influence on color TV development despite the limitations of mechanical systems, which suffered from low resolution and flicker. Throughout the 1930s, Baird continued self-funded color experiments, achieving improved 600-line images by 1940 that exceeded pre-war black-and-white quality, though these remained experimental and non-commercial. In the United States, Hungarian-born engineer Peter Goldmark advanced electronic at Laboratories, developing a field-sequential system in 1940 that transmitted red, green, and blue images in rapid sequence to exploit the persistence of vision. The system employed a rotating color filter wheel in front of a standard black-and-white camera and receiver, with the wheel synchronized to alternate fields of color at 144 fields per second (24 frames per second). Goldmark's team first demonstrated this publicly on August 27, 1940, from the transmitter in New York, producing clear color images of subjects like flowers and people. This approach influenced subsequent committee experiments in the 1940s, where tested field-sequential prototypes alongside other methods to evaluate color fidelity and signal stability. The field-sequential system gained traction during evaluations, leading to (FCC) approval on October 11, 1950, after tests confirmed its superior picture texture, contrast, and compatibility with existing 6 MHz channels via minor receiver adjustments. However, the approval was short-lived; in May 1951, the U.S. upheld the FCC decision in RCA v. United States, but was halted in 1951 by the Office of Defense Mobilization amid the , citing resource diversion from military needs and the system's incompatibility with the millions of existing black-and-white sets, which could not decode color signals without full replacement. Baird shifted to electronic solutions during , inventing the Telechrome tube in 1944—a single-tube color receiver using two guns to excite interlaced red and green-blue strips on the screen, enabling 500-line resolution in color and 3D. He demonstrated the Telechrome publicly on August 16, 1944, in , showcasing fully integrated electronic color images that avoided mechanical parts, though wartime restrictions limited further development. Around the same period, experimental lenticular film methods emerged as alternatives for color separation, using arrays of tiny cylindrical lenses to capture and reproduce red, green, and blue components on film for sequential playback, offering potential compatibility with infrastructure but facing challenges in alignment and brightness uniformity. In Europe, parallel efforts addressed color encoding for 625-line systems. French engineer Henri de France originated (Séquentiel couleur à mémoire) in the mid-1950s at Compagnie Française de TSF, introducing a sequential system that modulated chrominance signals with and a circuit to store one line's color while transmitting the next, reducing bandwidth demands and improving stability over . 's development emphasized national priorities, with initial prototypes tested by 1956 for compatibility with existing French monochrome broadcasts. In , Walter Bruch at developed PAL (Phase Alternating Line) in the early 1960s, refining by alternating the phase of the color subcarrier line-by-line to minimize hue errors, while maintaining and using for within the 5.5 MHz video bandwidth. Bruch's system, patented in 1962, was demonstrated in 1963 and prioritized resolution retention through delayed correction circuits. These early color systems grappled with significant technical hurdles. Bandwidth constraints were paramount, as color signals required up to three times the spectrum of within fixed 6 MHz channels, often leading to subcarrier interference and reduced detail. Compatibility with black-and-white sets demanded additive encoding where color information could be ignored without disrupting viewing, but field-sequential methods like CBS's caused flicker and demanded new receivers. Resolution loss was another issue, with sequential scanning halving effective lines per color and introducing , while phosphors in tubes like Telechrome struggled with uniform brightness across primaries.

Global standardization and widespread adoption

The adoption of the color television standard in the United States marked a pivotal moment in global broadcasting, with the (FCC) approving it in December 1953 after years of technical deliberations to ensure compatibility with existing black-and-white sets. This paved the way for the first national color broadcast on January 1, 1954, when aired the Tournament of Roses Parade, showcasing the new technology to a limited but growing audience of color-equipped viewers. The FCC's decisions in the 1950s, including mandates for broadcasters to transition, accelerated infrastructure upgrades and set a precedent for regulatory involvement in technological standardization. In , the saw the emergence of competing standards amid efforts to harmonize systems for cross-border compatibility, with the (ITU) issuing recommendations in 1966 to facilitate international exchanges while acknowledging regional variations. and the adopted the PAL (Phase Alternating Line) system in 1967, initiating regular color broadcasts—Germany starting with demonstrations at the Berlin IFA trade fair in August and the UK launching BBC2 services in July—eventually leading over 50 countries, primarily in , , and , to embrace PAL for its robust color stability. Meanwhile, and the opted for (Sequential Color with Memory) that same year, with France debuting broadcasts on via its second channel and the USSR following suit to align with nations, prioritizing sequential color encoding to avoid interference in transmission. Market penetration of color television varied by region but surged due to falling prices and expanded programming. In the , color set ownership reached 50% of households by 1972, up from negligible levels a decade earlier, driven by manufacturers like RCA scaling production. , adopting in 1960, achieved rapid widespread adoption throughout the 1960s, with color broadcasts commencing on September 10 that year via and commercial stations, positioning it as an early leader in full-color domestic viewing. Economic factors were crucial: initial US color sets cost around $1,000 in 1954—equivalent to several months' average wages—but prices dropped to about $300 by the 1970s through and competition, making color accessible to middle-class families worldwide. Key events underscored the shift, including the 1964 Tokyo Olympics, the first Games broadcast in color domestically in and via satellite internationally, highlighting color's potential for global audiences. By the , broadcasters globally transitioned to predominantly color programming, with networks like declaring "all-color" schedules in 1966 and European stations following suit, as color sets outsold black-and-white models and content production adapted to the format's visual demands. This era's standardization laid the foundation for later digital transitions by establishing robust analog color infrastructure.

Digital television (1970s–2010s)

Emergence of digital standards and compression

The development of in the began with Japan's pioneering (HDTV) research, culminating in the Multiple Sub-Nyquist Sampling Encoding (MUSE) system, an analog HDTV format that served as a key precursor to digital standards by demonstrating the need for advanced bandwidth management in high-resolution . initiated HDTV R&D in , but significant progress in the late and early led to a provisional 1125-line standard in , with MUSE encoding developed by 1984 to compress HDTV signals for satellite transmission, requiring over four times the bandwidth of standard-definition TV yet influencing later digital compression techniques. In the , European broadcasters conducted early digital experiments to address these bandwidth challenges; the explored processing, including experimental recorders and techniques for motion measurement in digital advanced television (DATV), while the Independent Broadcasting Authority (IBA, successor to the ITA) advanced digital standards conversion and error correction in broadcast facilities. European efforts toward digital broadcasting evolved through hybrid approaches like the Multiplexed Analogue Components (MAC) standard, introduced in the early by the (EBU) to optimize satellite channels with digital audio multiplexed onto analog video, and extended to HD-MAC under the Eureka 95 project from 1986 to 1990 as a proposed Europe-wide HDTV system. The formalized MAC via Directive 86/529/EEC in 1986 for satellite TV, with HD-MAC trials continuing into 1990, including public demonstrations like the 1990 broadcasts, but the system's analog core limited its scalability, paving the way for fully digital shifts. A major breakthrough came with the (MPEG) standards, established by ISO/IEC in 1988 to develop compression for ; , finalized in 1992, enabled of VHS-quality video and CD audio to about 1.5 Mbit/s, while , approved in 1994, advanced this for broadcast TV by reducing bitrates from around 100 Mbit/s to 4–15 Mbit/s through efficient inter-frame prediction and quantization. These standards prioritized conceptual efficiency over raw data rates, using block-based encoding to minimize redundancy in moving images. Central to MPEG and subsequent digital TV compression was the (DCT), a mathematical technique that converts spatial data into frequency components, allowing low-frequency coefficients (representing smooth image areas) to be prioritized while discarding high-frequency details imperceptible to the , thus achieving significant bitrate reduction without severe quality loss. For transmission reliability, standards incorporated Reed-Solomon (RS) codes, block-based error-correcting algorithms that detect and correct burst errors by adding parity symbols—typically up to t errors in an n-symbol block—ensuring robust delivery over noisy channels like terrestrial or satellite links. By the mid-1990s, these technologies underpinned regional digital encoding standards: Europe's project, launched in 1993, standardized satellite (DVB-S, 1994), cable (), and terrestrial (, 1997) systems using with DCT and RS for error correction, enabling the first DVB broadcasts in 1995. In the US, the Advanced Television Systems Committee (ATSC) adopted its A/53 standard in 1995, specifying 8-VSB modulation with video compressed via DCT and outer RS coding for , supporting both HDTV and SDTV formats. Japan’s , standardized by ARIB in the late 1990s, integrated with hierarchical modulation and RS codes for layered transmission, allowing simultaneous standard- and high-definition services on terrestrial networks starting in 2003.

Analog-to-digital transitions worldwide

The transition from analog to digital television broadcasting represented a major global policy shift during the and , driven by the need to free up spectrum for other uses and improve broadcast efficiency. , the established the framework for this change by allocating additional spectrum to broadcasters for digital signals while setting an initial deadline of December 31, 2006, for the end of analog transmissions, though this was later extended to June 12, 2009, due to concerns over consumer readiness. The oversaw the process, culminating in full-power stations ceasing analog broadcasts on June 13, 2009, marking the nationwide completion of the transition. In the , the switchover began in 2008 with the and progressed region by region, fully completing on October 24, 2012, under the coordination of Digital UK, a body established to manage the process and ensure high coverage levels. Across , transitions varied by country but accelerated in the 2010s; completed its analog switch-off in 2008, becoming one of the first major markets to do so, while finalized the process in 2011, with most other nations achieving completion by the mid-2010s to align with spectrum harmonization goals set by the . adopted the standard and ended analog terrestrial broadcasting on July 24, 2011, in 44 prefectures, with the remaining areas following by March 31, 2012, after delays from the 2011 earthquake. Key challenges included reallocating freed spectrum—primarily in the 700 MHz band—for services, which required international coordination to avoid interference and prompted auctions generating billions in revenue for governments. Consumer adaptation posed another hurdle, addressed through subsidies like the U.S. National Telecommunications and Information Administration's coupon program, which provided up to two $40 vouchers per household for digital converter boxes to assist those relying on over-the-air signals. The transition also briefly referenced compression technologies that enabled multiple channels within the same bandwidth, facilitating the shift without immediate capacity loss. Benefits of the switch included enhanced picture and , resistance to interference, and the capacity for additional channels—up to five standard-definition programs per analog —leading to expanded programming options. As of 2009, approximately 97.5% of U.S. households were equipped for digital reception, rising to over 99% by late 2009 and reflecting rapid adoption post-transition, underscoring the scale of improved service delivery. In developing regions, progress lagged; initiated phased analog switch-offs for terrestrial signals starting in 2016 in select cities, with most analog transmitters phased out by 2022 except for 50 strategic locations, while planned a gradual rollout from 2018 to 2023 but extended nationwide completion to 2025 as of 2023 to accommodate infrastructure limitations. By the early , most developed nations had completed transitions, while many developing countries continued phased implementations.

Advanced formats and smart television (1990s–present)

High-definition, 3D, and ultra-high-definition TV

The development of (HDTV) in the late 1990s marked a significant advancement in broadcast quality, building on digital transmission standards to enable resolutions far surpassing standard definition. In the United States, the Advanced Television Systems Committee (ATSC) finalized its standard in 1996, which the adopted for terrestrial broadcasting, supporting HDTV formats such as (interlaced) and () at aspect ratios of 16:9. In , the (DVB) Project established standards for high-definition content, with DVB-S for satellite delivery agreed upon in 1994 and subsequent extensions like for terrestrial in 1997, enabling HD broadcasts across the continent by the early 2000s. These standards leveraged digital compression to transmit higher resolutions, with HDTV penetration reaching 56% of U.S. households by 2010, reflecting rapid consumer adoption driven by improved picture clarity and formats. The introduction of optical media further supported HDTV content distribution in the 2000s. Blu-ray Disc, launched commercially in 2006 after prototypes in 2000, provided sufficient storage capacity for uncompressed or high-bitrate HD video, surpassing DVD limitations and becoming the dominant format for home HD playback following its victory in the format war against . The early 2010s saw a push toward as an immersive extension of HDTV, with major manufacturers unveiling compatible sets at the 2010 Consumer Electronics Show (CES), generating significant industry hype around stereoscopic viewing. These systems relied on either active shutter , which alternately block light to each eye using battery-powered LCD lenses for full-resolution 3D, or passive polarized , which use inexpensive filters but halve vertical resolution per eye. Despite initial sales growth, with global 3D TV shipments rising 8.3% in 2013 to represent a notable portion of premium displays, the format declined sharply by 2017 due to limited content availability, viewer discomfort from , and competition from higher-resolution alternatives, leading manufacturers like and to discontinue 3D support. Ultra-high-definition (UHD) television emerged in the mid-2010s as the next evolution, with the (ITU) approving UHDTV standards in August 2012, including (3840×2160 pixels) and enhanced . ITU Recommendation BT.2020 (), finalized in 2012 and further detailed in 2015, specified wide color gamut, , and support for both 4K and 8K formats to enable more vivid and detailed imagery. Japan's led 8K development throughout the , conducting test broadcasts via satellite starting in 2016 and launching the world's first 8K channel, BS8K, in December 2018, with resolutions of 7680×4320 pixels aimed at immersive "Super Hi-Vision" experiences. These advancements, enabled by prior infrastructure, prioritized backward compatibility with HD while scaling resolution for larger screens and professional applications.

Rise of smart TVs and interactive features

The integration of internet connectivity and software platforms into televisions marked a significant evolution in the late 2000s, transforming passive viewing devices into interactive hubs. pioneered this shift by launching its first in 2008 with the PAVV Bordeaux TV 750 series, which allowed users to access , share photos, and connect to directly on the screen. introduced its NetCast platform in 2009, enabling internet-based entertainment services on its televisions starting with the 2010 model lineup. In 2010, announced Google TV in collaboration with , , and , debuting as an open platform for streaming and apps on compatible TVs and set-top boxes in the fall of that year. The development of app ecosystems further expanded functionality throughout the 2010s. Roku advanced integration in 2012 by launching the Streaming Stick, a compact device that embedded its app platform into existing TVs, providing seamless access to streaming services without replacing the entire set. followed with in 2015, an operating system designed for televisions that supported a wide array of apps, , and from mobile devices. Voice assistants emerged as a key interactive feature around this time; in 2017, Amazon enabled Alexa integration with smart TVs, allowing users to control channels, volume, and apps via voice commands through devices or built-in microphones. Core features of smart TVs centered on streaming and connectivity, with Netflix marking an early milestone by releasing its first dedicated TV app in 2010 for platforms like Google TV, facilitating on-demand video playback directly on screens. Subsequent advancements included IoT connectivity, enabling smart TVs to interface with systems for controlling lights, thermostats, and security devices from the TV interface. In the , AI-driven upscaling became standard, using algorithms to enhance lower-resolution content in real-time for improved picture quality on modern displays. Market adoption of smart TVs accelerated rapidly, reaching approximately 50% of U.S. households by 2018 and climbing to around 80% by 2025, driven by affordable pricing and bundled streaming services. This widespread use, however, has amplified privacy concerns, as smart TVs routinely collect viewing data, voice interactions, and user profiles to personalize recommendations and advertisements, often sharing this information with third parties. In the 2020s, trends have focused on higher integration and hybrid capabilities, with 8K sets seeing limited global adoption but gaining traction in markets like for advanced processing and larger screens, supported by NHK's ongoing broadcasts. As of 2025, 8K content remains limited globally, with adoption under 5% of TV households, while incorporate advanced AI for personalized viewing. Additionally, the Hybrid Broadcast Broadband TV (HbbTV) standard has seen increased adoption, particularly in and , allowing televisions to blend traditional over-the-air broadcasts with internet-delivered interactive content like on-demand replays and targeted ads. These developments often leverage UHD hardware to support the enhanced interactivity of smart features.

Broadcasting distribution methods

Terrestrial broadcasting history

Terrestrial television broadcasting emerged in the early , with initial frequency allocations in the (VHF) band during the and to support experimental transmissions. In the United States, the allocated initial television frequencies in bands around 2–3 MHz in 1928 for experimental use, but by 1936, these were shifted to the 42–56 MHz band within the VHF spectrum to accommodate higher resolution broadcasts. These allocations laid the groundwork for regular service, though commercial operations were limited until the post-World War II era. To expand channel capacity beyond the limited VHF assignments, regulators turned to the (UHF) band in the 1940s. The U.S. (FCC) began planning UHF use amid spectrum pressures from FM radio and growing TV demand, conducting hearings in 1948–1949 that confirmed its viability for television despite shorter propagation distances compared to VHF. This culminated in the 1952 Sixth Report and Order, which lifted a four-year freeze on new station licenses, assigned UHF channels 14–83 (470–890 MHz), and encouraged their adoption through market deintermixture to separate VHF and UHF assignments. The push aimed to enable over 2,000 additional stations nationwide, though early UHF signals required taller towers and more powerful transmitters to overcome propagation challenges. Key milestones varied regionally. In the United Kingdom, the British Broadcasting Corporation (BBC) initiated regular 405-line VHF broadcasts on November 2, 1936, from in , marking one of the first public high-definition services using frequencies around 45 MHz. In , launched television broadcasting on February 1, 1953, initially on VHF channels (90–216 MHz) with a standard, rapidly expanding to cover major cities and setting the stage for UHF adoption in the . These developments reflected global efforts to standardize VHF for reliable over-the-air delivery, with the (ITU) coordinating band harmonization in the 1930s to minimize cross-border interference. Throughout its history, terrestrial has grappled with technical hurdles, including signal interference from , buildings, and electromagnetic sources like power lines or cellular towers, which can cause , multipath , or complete signal blockage. Tower infrastructure posed another major challenge, requiring costly of elevated masts—often hundreds of feet tall—to achieve over distances up to 100 miles, especially in rural or mountainous areas where relay stations were needed for national coverage. These issues necessitated ongoing investments in antenna design and site planning, with early UHF deployments particularly affected due to higher frequency attenuation. The shift to digital terrestrial television (DTT) in the late addressed many analog limitations through efficient compression and error correction. The Digital Video Broadcasting - Terrestrial () standard, developed by the European Project starting in 1991 and finalized in 1997, enabled the first deployments in the UK and in 1998, allowing multiple channels per frequency and improved robustness against interference. Similar transitions occurred globally, with the U.S. adopting the ATSC standard in 1995 and completing analog shutdown in 2009. In the , advancements like the FCC-approved standard, rolled out since 2017 with voluntary market-by-market adoption, support mobile reception, 4K video, and interactive features while maintaining . As of late 2025, the FCC continues to accelerate ATSC 3.0 adoption through proposed rule changes to support broader deployment. By 2020, provided free over-the-air access to over 80% of the global population in regions with , though its dominance has waned as cable and delivery expand in urban areas.

Cable and satellite television expansion

emerged in the United States in through community antenna television (CATV) systems designed to serve rural and remote areas hampered by poor over-the-air reception from broadcast towers, often due to geographic obstacles like mountains. These early setups, pioneered by figures such as John Walson in , involved large communal antennas capturing signals from distant stations and redistributing them via cables to local homes, initially providing just a few local channels to improve access beyond terrestrial limitations. By the 1970s, cable systems underwent significant expansion, driven by technological advancements and regulatory shifts that allowed operators to import distant signals and increase to over 20, serving approximately 4.5 million U.S. subscribers by the decade's start. This growth transformed cable from a niche solution for signal enhancement into a viable alternative to traditional , enabling the distribution of specialized programming that terrestrial antennas could not reliably deliver. Satellite technology marked a pivotal advancement in television distribution, beginning with the 1962 launch of , the first active , which successfully relayed the initial transatlantic television signals between the and , demonstrating the potential for global signal transmission. A key milestone came in 1975 when Home Box Office () became the first cable network to utilize satellite distribution on a regular basis, beaming its programming—including the live "Thrilla in Manila" boxing match—to cable headends across the U.S., thereby enabling nationwide reach and spurring further investment in subscription services. The late 1970s and ushered in the (TVRO) era, characterized by the proliferation of large backyard dishes—often 10 to 16 feet in diameter—that allowed individual households to capture unscrambled C-band signals directly from , providing access to dozens of channels beyond local cable offerings. This consumer-driven movement peaked in the early , with millions of such installations in rural and suburban areas, before evolving into direct broadcast (DBS) systems; for instance, launched in 1994 as the first U.S. high-powered DBS provider using Ku-band frequencies, which supported smaller, more practical dishes and compressed digital signals for up to 175 channels. Globally, cable and expanded rapidly in the and , adapting to regional infrastructures and demands. In , a cable boom occurred during the , with countries like the achieving cable penetration rates exceeding 90% of households by the late decade, facilitated by municipal-owned networks that bundled local and imported channels to counter limited terrestrial options. In , gained traction in the , highlighted by the 1991 launch of STAR TV from , the region's first pan-Asian satellite service reaching over 38 countries and 2.7 billion potential viewers with English-language programming, challenging state-controlled terrestrial systems and accelerating pay-TV adoption. Key milestones in this expansion included the 1980s rise of premium cable channels, such as (launched 1972 but widely adopted then), Showtime (1976), and (1980), which offered ad-free movies, sports, and original content on a per-channel subscription model, diversifying and attracting urban subscribers seeking alternatives to network TV. Entering the 2000s, the shift to infrastructure enabled the widespread delivery of high-definition (HD) programming, with operators systematically adding HD tiers to lineups starting around 2003, improving picture quality and capacity while integrating interactive features like video-on-demand.

Internet and over-the-top streaming

The precursors to over-the-top (OTT) streaming emerged in the amid the growth of connectivity, though limited by dial-up speeds and nascent technology. In 1995, introduced , the first widely used software for streaming audio and short video clips over the , enabling real-time playback without full downloads. Early experiments, such as PARC's 1993 demonstration of live video streaming across networks, showcased the concept but faced challenges from low bandwidth and compression limitations. By 1996, WebTV (rebranded as in 2001) launched as a that connected televisions to the , allowing users to browse web content and access rudimentary video services via a interface. The 2000s marked the explosive rise of OTT platforms, driven by broadband expansion and improved video compression. YouTube launched in February 2005, pioneering user-generated video sharing and quickly becoming the dominant online video site with millions of daily uploads by 2006. pivoted to streaming in 2007, offering subscribers on-demand access to movies and TV shows, which grew to over 1 million streaming households within its first year. debuted in 2008 as a joint venture by and , providing free, ad-supported episodes of popular network television series shortly after broadcast. The 2010s saw the introduction of live OTT services, exemplified by Sling TV's 2015 launch, which delivered customizable live channels over the without traditional cable subscriptions. The rise of smart TVs has enabled seamless OTT access directly on living room screens, integrating apps from these platforms into the television experience. OTT expanded globally in the late 2000s and 2010s, adapting to regional content demands and regulations. In the UK, launched on December 19, 2007, offering catch-up TV and on-demand BBC programming to license fee payers via broadband. In , began operations in April 2010 under , rapidly becoming the leading video platform with original content and user-generated videos tailored to the domestic market. The introduced (FAST) services, with launching in 2013 and expanding to over 250 channels by 2020, mimicking linear TV schedules without subscription fees. The shift to OTT has profoundly impacted viewing habits, particularly through , where consumers abandon traditional pay-TV for internet-based alternatives. As of 2025, pay TV penetration in the has fallen below 50% of households, with nearly half (about 56 million) of internet households relying solely on streaming services. This transition has increased demands on infrastructure, as 4K streaming typically requires at least 25 Mbps of bandwidth for smooth playback without buffering. By 2025, advancements like the AV1 codec have accelerated OTT efficiency, offering up to 30% better compression than predecessors like H.264, with major platforms such as YouTube and Netflix adopting it for reduced bandwidth costs and higher quality. Hybrid live streaming models gained prominence during the 2024 Paris Olympics, where over 11,000 hours of coverage were distributed across OTT platforms, traditional broadcasts, and interactive apps for global, multi-device access.

Evolution of television hardware

From vacuum tubes to cathode-ray tubes

In the 1920s, early television receivers relied on amplifiers to boost weak radio signals for image reconstruction, marking a foundational shift from purely mechanical systems to hybrid electronic designs. Inventors like had pioneered the vacuum tube in 1906, enabling signal amplification essential for television reception, though initial applications were rudimentary and limited to low-resolution experiments. By the mid-1920s, these tubes were integrated into receivers to process modulated signals from experimental broadcasts, providing the necessary gain for visible images despite high noise levels. During the 1920s and 1930s, mechanical receivers dominated early television, often incorporating tubes as light sources behind rotating scanning disks to produce flickering, low-resolution images. Systems like John Logie Baird's Televisor used a Nipkow-style disk with 30-60 holes, synchronized to a motor-driven receiver, where a modulated light intensity based on the incoming signal to form silhouettes or simple moving pictures on a small screen. These setups, typically producing orange-tinted images due to neon's glow, were demonstrated publicly by Baird in 1926 and achieved resolutions of around 30 lines, suitable only for basic demonstrations but limited by mechanical wear and low brightness. amplifiers in these receivers handled signal detection and , bridging mechanical scanning with emerging electronic principles. The transition to cathode-ray tubes (CRTs) began in the late 1920s, with Philo Farnsworth demonstrating the first fully electronic television system in 1927, using a CRT receiver to display images captured by his image dissector tube. Farnsworth's setup integrated electronic scanning on both transmission and reception sides, with the CRT's phosphor-coated screen emitting light when struck by an electron beam modulated by the signal. In the 1930s, Vladimir Zworykin advanced CRT technology at RCA, developing the kinescope—a receiver tube with improved phosphor screens for brighter, more stable images—and demonstrating it publicly in 1929. Zworykin's kinescope featured a heated cathode emitting electrons accelerated toward a phosphor screen, achieving resolutions up to 60 lines initially, while Farnsworth's parallel work emphasized all-electronic integration without mechanical parts. These innovations replaced neon and mechanical displays, enabling clearer reception through electronic beam deflection. By the 1940s, CRTs became the standard in mass-produced television sets, with manufacturers like RCA introducing commercial models featuring 7- to 12-inch screens and adhering to the U.S. standard adopted by the FCC in 1941. These sets, such as RCA's 1939 models scaled up post-war, used high-voltage deflection systems operating at 10-20 kV to accelerate electrons for sharp focus on screens, though early designs lacked color-specific masks and relied on uniform phosphors. Precursors to shadow masks appeared in experimental color CRTs during the late , such as simple grids to separate beam paths, but widespread adoption waited until the . As an alternative to small CRTs, the Eidophor oil-film projector emerged from 1930s research by Swiss engineer Fritz Fischer, with prototypes demonstrated in 1943 for large-screen television projection. This system used an electron beam to deform a thin oil film on a rotating drum, modulating light from a lamp to project images up to theater size, offering higher brightness than early CRTs for public venues but requiring complex .

Transition to flat-panel and modern displays

The transition from cathode-ray tube (CRT) televisions to flat-panel displays began in the with the development of plasma and (LCD) prototypes, marking a shift toward thinner, more versatile screens. In 1990, unveiled a 31-inch color plasma , incorporating a three-electrode structure that laid the groundwork for modern plasma technology. By 1992, released the world's first full-color capable of showing red, green, and blue, initially targeted at professional applications but signaling potential for consumer use. Parallel efforts in LCD technology advanced with Sharp's introduction of the 10.4-inch LC-104TV1 full-color (TFT) LCD TV in 1995, which featured a compact design suitable for portable viewing. These prototypes addressed CRT limitations like bulkiness and , though high production costs delayed widespread adoption until the late . In 1997, Sharp launched what is often regarded as the first consumer-oriented , a 14-inch model that demonstrated viable home use despite modest resolution. Entering the 2000s, LCD televisions gained dominance through the integration of (LED) backlighting, which improved brightness, contrast, and energy efficiency over earlier cold cathode fluorescent lamp (CCFL) systems. By 2007, LED-backlit LCDs had surpassed plasma in , driven by lower costs and scalability for larger screens. Organic (OLED) technology emerged as a premium alternative with Sony's debut of the 11-inch XEL-1 in 2007, the world's first commercial OLED TV, praised for its 3mm thickness and superior black levels due to self-emissive pixels. Production challenges, including material degradation, limited early OLED to small sizes, but achieved a breakthrough in the by mass-producing the first 55-inch curved OLED panel in 2013, enabling flexible and high-contrast consumer models. This era saw flat-panel displays evolve rapidly, with enhancing image quality across technologies. Screen sizes expanded dramatically during this period, from the typical 14-inch CRT sets of the 1950s to 85-inch models commonplace by the 2020s, allowing immersive home theater experiences previously constrained by CRT bulk. Energy efficiency also improved significantly; a standard 32-inch CRT from the 1990s consumed around 200 watts, while equivalent modern LED or panels use approximately 100 watts or less, reducing household electricity demands and environmental impact. Market dynamics accelerated the shift, with CRT production phasing out globally by 2010 due to falling flat-panel prices and consumer preference for slim designs. By 2015, flat-panel televisions accounted for over 90% of global sales, propelled by manufacturing advances in . In the 2020s, innovations like quantum-dot-enhanced LCD (QLED) and pushed boundaries further, with introducing consumer displays in 2020 that offered modular, high-brightness panels without risks. QLED technology, leveraging quantum dots for wider color gamuts, became a staple in mid-range TVs, while prototypes promised seamless scalability for sizes exceeding 100 inches. However, the proliferation of flat-panel displays has intensified e-waste challenges, as discarded LCD and units contain hazardous materials like mercury and that complicate ; global e-waste from screens reached 7.6 million tons in 2019, with recovery rates below 20% in many regions due to complex disassembly processes. Efforts to address this include robotic sorting systems and laws, but scalable solutions remain elusive amid rising consumption.

Key technological innovations across eras

Video recording and playback advancements

The development of video recording technologies marked a pivotal shift in television's evolution, enabling time-shifted viewing and content preservation beyond live broadcasts. In 1956, Corporation introduced the recorder (VTR), the first practical system for recording and playing back signals in a broadcast-quality format. This device utilized 2-inch-wide running at 30 inches per second (ips), with four heads rotating at 14,400 rpm to capture helical scans of the video signal, allowing up to 45 minutes of monochrome recording per reel. Widely adopted by broadcasters like and , the Ampex VTR revolutionized production workflows by permitting instant playback and editing, though its high cost—around $50,000 per unit—and mechanical complexity limited it to professional use. The 1960s and 1970s saw the transition to consumer-accessible video cassette recorders (VCRs), democratizing home recording. Philips unveiled the (VCR) system in 1972, featuring compact cassettes that simplified loading compared to open-reel tapes and offered about one hour of recording time for standard broadcasts. This spurred format wars, most notably between JVC's (VHS), introduced in 1976 with longer recording times (up to two hours initially), and Sony's , launched in 1975 but constrained to one hour per tape. ultimately prevailed in the 1980s due to superior marketing, licensing to multiple manufacturers, and extended tape capacities reaching four hours by 1982, capturing over 90% of the market by 1987 and enabling widespread home taping of TV shows. Optical disc formats further advanced playback fidelity and durability in the late . The DVD, standardized in by a including , , and , replaced with 4.7 GB single-layer discs capable of 133 minutes of video, offering superior image quality and random access features. Building on this, Blu-ray Discs emerged in 2006, supporting at up to 25 GB per layer and later 50 GB for dual-layer, which became the dominant HD format after outcompeting by 2008. Concurrently, digital video recorders (DVRs) like , launched in 1999, integrated hard drives into set-top boxes for pause-live-TV and automated recording, storing up to 30 hours initially and transforming viewing habits. The 2010s digital shift moved recording to streaming platforms, where cloud-based services supplanted physical media. Services like and introduced cloud DVR in 2014, allowing unlimited storage of streamed content without local hardware, leveraging internet bandwidth for on-demand playback. By the , AI enhancements refined playback experiences, such as automatic intro-skipping and scene detection in apps like and Disney+, using to analyze video metadata for seamless navigation. Compression algorithms briefly aided this transition by reducing file sizes, enabling efficient without quality loss. Capacities evolved dramatically from VHS's typical one-hour limit to virtually unlimited cloud archives by 2025, supporting personalized libraries across devices.

Signal processing and transmission improvements

By the 1940s, the adoption of vestigial (VSB) modulation in the standard allowed for significant bandwidth savings, transmitting the full upper sideband while retaining only a portion of the lower sideband, which reduced the overall spectrum occupancy to about 6 MHz per channel without substantial loss in image quality. These analog techniques laid the foundation for efficient over-the-air , enabling the commercialization of television in the post-war era. In the 1980s, noise reduction systems like DBX were introduced to improve audio fidelity in television transmissions as part of the BTSC standard for stereo sound, compressing the during encoding and expanding it on playback to achieve up to 30 dB better signal-to-noise ratios. In the 1980s, digital effects units revolutionized broadcast signal processing by enabling real-time manipulations such as keying, tumbling, and adjustments, with devices like the Digital Optics () allowing broadcasters to generate complex visuals directly from analog inputs, enhancing production efficiency and creative output. These advancements marked a transition toward hybrid analog-digital workflows, improving overall signal robustness. The 1990s and 2000s saw the integration of (FEC) in (DVB) standards, where convolutional and Reed-Solomon coding detected and corrected transmission errors in real-time, ensuring reliable delivery over satellite, cable, and terrestrial links with bit error rates below 10^-4. Complementing this, (OFDM) modulation was adopted for mobile TV applications, such as DVB-H, dividing the signal into multiple subcarriers to mitigate multipath interference and Doppler effects, thereby supporting robust reception in vehicular environments. Digital standards like incorporated these methods to enable high-definition with minimal . In the 2010s, (HEVC/H.265) emerged as a pivotal advancement for 4K television, offering approximately 50% greater compression efficiency over H.264/AVC at equivalent quality levels, which reduced bandwidth requirements for ultra-high-definition streams by halving bit rates to around 15-20 Mbps. Throughout these developments, improvements addressed key artifacts: ghosting reduction via adaptive equalizers and ghost-cancel reference signals eliminated multipath echoes, improving image sharpness in urban reception areas, while enhanced color fidelity techniques, such as improved subsampling and , preserved hue accuracy across diverse display types. By 2025, standards integrated (IP) transport natively, allowing seamless convergence of broadcast and broadband signals for interactive features and higher resilience.

Pioneers and institutional milestones

Individual inventors and engineers

In the mechanical era of television development, Scottish engineer (1888–1946) played a pivotal role by demonstrating the world's first working television system in 1926, using a mechanical scanning disc to transmit moving silhouettes. advanced this to a 240-line resolution system by 1928, enabling clearer images through improved mechanical scanning technology, and secured multiple patents, including US Patent 1,699,270 for a television system in 1928. Concurrently, American inventor (1867–1934) contributed significantly with early mechanical transmission experiments, earning US Patent 1,544,156 in 1925 for transmitting pictures by wireless, which demonstrated the first synchronized wireless television images in the United States in 1925. Jenkins held over 400 patents overall, with around 72 related to television and motion pictures, laying groundwork for prismatic ring scanning in mechanical TV. The shift to electronic television was driven by innovators like Philo Taylor Farnsworth (1906–1971), a self-taught American inventor who, at age 15, conceived the idea of an image dissector tube and demonstrated the first fully electronic television transmission in 1927. Farnsworth amassed 300 patents in radio and television, including US Patent 1,773,980 for an electronic television system granted in 1930, but faced intense legal challenges from RCA, culminating in a 1935 patent interference lawsuit where he prevailed, affirming his priority over competing claims. Russian-born engineer Vladimir Kosma Zworykin (1888–1982), working at RCA, developed the camera tube in 1923, a key electronic imaging device that captured light via photoelectric cells, patented as US Patent 2,141,059 in 1938 after refinements. Zworykin's became the foundation for practical electronic TV cameras at RCA, though his work overlapped with Farnsworth's in the aforementioned disputes, highlighting the competitive race for electronic scanning supremacy. Advancements in color and featured contributions from electrical engineer (1917–1965), who at age 23 invented a field-sequential system using a chromoscopic adapter and demonstrated it in 1940, securing 39035 and 2,296,021 in 1942 for transmitting color images via mechanical filtering. Camarena's system predated widespread color TV adoption and represented an early sequential color encoding approach. French engineer Henri de France (1911–1986) pioneered the standard, patenting it in 1956 as a sequential color system with memory to avoid hue errors, formalized in 2,938,945 granted in 1960, which enabled stable color broadcasting in France and by the 1960s. In the modern era, American physicist James T. Russell (born 1931) laid foundational work for digital video recording through his invention of optical digital recording in 1965, demonstrated in prototypes by 1970, which used laser-based data storage on discs as a precursor to DVD technology for video playback and recording, covered by US Patent 3,501,586 in 1970. More recently, NVIDIA CEO Jensen Huang (born 1963) has driven GPU advancements since the 1990s, with 2020s innovations like AI-accelerated upscaling and real-time ray tracing enhancing television graphics processing in smart TVs and streaming devices, powering features such as 8K resolution enhancement and generative AI for content creation.

Major companies, labs, and regulatory bodies

Bell Laboratories, a research arm of , played a pivotal role in early television development during the 1920s and 1930s, conducting pioneering experiments with cathode-ray tubes (CRTs) that enabled the first long-distance television transmission in 1927 from Washington, D.C., to over telephone lines. These efforts laid foundational work for electronic imaging and display technologies essential to commercial television. In the , Laboratories (in collaboration with Marconi) advanced electronic television in the 1930s, developing the Emitron camera tube and contributing to the BBC's all-electronic 405-line system, which debuted in 1936 and proved superior to mechanical alternatives for high-quality broadcasts. Major companies drove television commercialization and innovation. RCA dominated the U.S. market from to the through its control of key patents and manufacturing, becoming the leading producer of television sets and holding a substantial share—estimated at over 20% by the late 1940s amid rapid post-war growth to 12 million sets by 1951. revolutionized home video recording in the 1970s and 1980s with , introduced in 1975 as a high-quality analog format, but lost the ensuing "" to JVC's system, which gained broader adoption due to longer recording times and licensing strategies, ultimately capturing the dominant market position by the mid-1980s. Regulatory bodies shaped television's infrastructure and standards. The U.S. (FCC), established by the , assumed responsibility for regulating interstate communications, including television, and allocated spectrum channels to enable while preventing interference. Internationally, the (ITU), through its 1947 Atlantic City Radio Conference, coordinated global frequency allocations and laid groundwork for television standards, with the first formal ITU technical recommendations for TV transmission issued in 1949 to promote . Globally, institutions like Japan's advanced research through its Science & Technology Research Laboratories (STRL), founded in , which developed key technologies for Japan's first television broadcasts in 1953 and later high-definition systems. In the UK, the maintained a monopoly on television services until the mid-1950s, when the introduction of Independent Television (ITV) in ended its exclusive control under government policy. In the 2000s, the issued directives under the eEurope 2005 Action Plan to facilitate the transition from analog to digital television, mandating switchover by 2012 in most member states to free spectrum for mobile services and enhance broadcasting efficiency. Key milestones reflect evolving regulatory landscapes. The 1996 U.S. Telecommunications Act deregulated aspects of , easing ownership limits on television stations and promoting competition in cable and video services, which spurred media consolidation. In the , the FCC has approved the rollout of , the next-generation broadcast standard offering improved video quality and interactivity, with voluntary adoption beginning in 2017 and expanding to approximately 80 markets by late 2024.

Preservation and cultural impact

Television museums and archives

The , originally founded in 1975 as the Museum of Broadcasting by in , evolved into the Museum of Television & Radio in 1991 and expanded to a second location in . Designed to collect, preserve, and provide public access to television and radio programming, it shifted focus after 2015 toward its archival operations while maintaining public viewing facilities in New York. The Paley Archive comprises over 160,000 programs and advertisements, documenting more than a century of media history, with extensive holdings of television shows that capture the era's foundational broadcasts. In March 2025, the Paley Archive opened a new public access location at the Beverly Hills . Internationally, the in , established in 1903 as the world's largest museum of science and technology, incorporates television history within its broad exhibitions on communications and . In , the Museum of Broadcasting, opened in 1956, traces Japan's evolution through eight chronological sections with hands-on exhibits, rare equipment, and digital interactive displays that simulate historical program production, drawing from a collection exceeding 20,000 items. In the United States, the Early Television Museum in , founded in 2000 by the Early Television Foundation, houses one of the world's largest collections of vintage sets, with over 150 pre-1940 televisions on display, including mechanical models from the and as well as early electronic British and American receivers from 1936 to 1939. The in complements these efforts with its gallery, which dedicates space to television's development over 200 years of communication history, showcasing timelines, broadcast artifacts, and objects like early color TV prototypes tied to British innovations. Digital preservation efforts have expanded access to television heritage, notably through the Library of Congress's audiovisual collections, which have acquired programs since 1949 via copyright deposits, maintaining an eclectic archive of American broadcasts on tapes and other formats to document the medium's uneven historical record. These institutions often feature artifacts from pioneers such as Baird and Jenkins to illustrate early experimentation. By 2023, the Smithsonian Institution's had incorporated exhibits on evolving broadcast technologies, including streaming, into its permanent displays on media innovation, such as the Entertainment Nation exhibition.

Global societal and economic influences

The advent of television in the 1950s marked a pivotal shift in American society, often referred to as the , where it became a central household medium that profoundly influenced news consumption and political discourse. By 1960, approximately 90% of U.S. households owned a , transforming it into a unifying force for national events and shaping on politics. A seminal example is the 1960 presidential debates between and , the first televised encounters of their kind, which demonstrated television's power to sway voter perceptions; polls indicated that radio listeners favored Nixon, while television viewers preferred Kennedy, largely due to visual presentation and charisma. This era also reinforced traditional gender roles through programming, with women frequently depicted in domestic settings on shows like , perpetuating societal norms that limited female representation in professional or authoritative contexts. Globally, television's expansion in the and extended its societal reach to developing regions, fostering cultural exchange while challenging local norms. In , the introduction of in 1982 coincided with the in , a deliberate governmental initiative to modernize and boost national pride, which spurred imports of color sets and accelerated television adoption among urban middle classes. The satellite television boom further globalized content, enabling cross-border transmission of Western programming into diverse markets and promoting cultural hybridization, though it also sparked debates over as local traditions clashed with imported media influences. By the 2020s, these influences evolved amid integration, where "social TV"—the convergence of and platforms like —amplified , as seen in the rapid spread of false narratives during elections and health crises, eroding trust in traditional news sources. Economically, television has driven substantial growth since the mid-20th century, creating jobs and fueling a massive industry. In the U.S., the rapid proliferation of stations and production facilities generated hundreds of thousands of jobs in , from technicians to performers, underpinning a burgeoning sector. By 2023, the global television and streaming market reached approximately $700 billion, reflecting its role as a of media economics with investments in content exceeding $160 billion annually. The shift to streaming in the , accelerated by , redirected revenues, with estimates for video streaming at around $157 billion in 2025, diversifying income streams for platforms like while challenging traditional broadcasters. Socially, post-#MeToo movements in the late prompted greater diversity in programming, increasing female-directed episodes to 38% of U.S. television in the 2020-2021 season and elevating underrepresented voices in narratives. The from 2020 onward intensified television's societal role, with lockdowns boosting as a mechanism; surveys showed 73.7% of viewers increased such habits, with 17.3% spending 3-5 hours and 11.5% more than 5 hours daily on platforms like , which helped mitigate isolation but raised concerns over addiction and . Concurrently, emerged as a transformative force in content generation, with streaming services leveraging AI for personalized recommendations and automated scriptwriting, enhancing efficiency while sparking ethical debates over and job displacement in the .

References

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