Composite video: Difference between revisions
m Reverted 1 edit by 198.17.110.223 (talk) to last revision by SmallTestAcount |
Harry munday (talk | contribs) Expand info about how the signal is handled in the digital domain such as 4fsc sampling and modern usage and presentation. Tag: Visual edit |
||
Line 1: | Line 1: | ||
{{short description|Analog video signal format}} |
{{short description|Baseband Analog video signal format}} |
||
{{distinguish|Component video}} |
{{distinguish|Component video}} |
||
{{Use dmy dates|date=August 2020}} |
{{Use dmy dates|date=August 2020}} |
||
Line 5: | Line 5: | ||
{{Infobox connector |
{{Infobox connector |
||
| name = Composite |
| name = Composite Video Baseband Signal (CVBS) |
||
| type = Analog video connector |
| type = Analog video connector |
||
| image = [[File:Composite-video-cable.jpg|300px]] |
| image = [[File:Composite-video-cable.jpg|300px]] |
||
Line 15: | Line 15: | ||
| production_date = |
| production_date = |
||
| superseded = |
| superseded = |
||
| superseded_by = |
| superseded_by = SDI - [[Serial digital interface]] |
||
| superseded_by_date = |
| superseded_by_date = |
||
| external = Yes |
| external = Yes |
||
Line 46: | Line 46: | ||
}} |
}} |
||
'''Composite video''' is an [[Video#Analog video|analog video]] format that typically carries a [[525 lines|525]] or [[625 lines|625 line]] signal on a single channel, unlike the higher-quality [[S-Video]] (two channels) and the even higher-quality [[component video]] (three or more channels). |
'''Composite video''' is an [[Video#Analog video|baseband analog video]] format that typically carries a [[525 lines|525]] 29.97i or [[625 lines|625 line]] 25i interlaced signal on a single channel, unlike the higher-quality [[S-Video]] (two channels) and the even higher-quality [[component video]] (three or more channels). |
||
A yellow [[RCA connector]] is typically used for composite video, with the audio being carried on separate additional L/R RCA connectors. In professional settings, or on devices that are too small for an RCA connector, such as a digital camera, other types of connectors can be used. |
A yellow [[RCA connector]] is typically used for composite video, with the audio being carried on separate additional L/R RCA connectors. In professional settings, or on devices that are too small for an RCA connector, such as a digital camera, other types of connectors can be used. |
||
Line 55: | Line 55: | ||
== Signal components == |
== Signal components == |
||
[[File:Composite Video.svg |
[[File:Composite Video.svg|thumb|right|304x304px|Composite video signal graphic. ]] |
||
[[File:NTSC Signal.png|thumb|[[NTSC]] composite video signal (analog)]] |
[[File:NTSC Signal.png|thumb|[[NTSC]] composite video signal (analog) via a [[Oscilloscope|digital store Ossiliscope]]. |272x272px]] |
||
[[File:CVBS-Decode-TBC-Analyse-With & Without Colour.png|thumb|673x673px|4fsc frame produced from CVBS-Decode (2024) showing EBU colour bars without & with decoded colour.]] |
|||
A composite video signal combines, on one wire, the video information required to recreate a color picture, as well as line and [[frame synchronization]] pulses. The color video signal is a linear combination of the ''[[luminance]]'' (<math>Y</math>) of the picture and a [[modulation|modulated]] subcarrier which carries the ''[[chrominance]]'' or color information (<math>C</math>), a combination of [[hue]] and [[Colorfulness|saturation]]. Details of the combining process vary between the NTSC, PAL and SECAM systems. |
A composite video signal combines, on one wire, the video information required to recreate a color picture, as well as line and [[frame synchronization]] pulses. The color video signal is a linear combination of the ''[[luminance]]'' (<math>Y</math>) of the picture and a [[modulation|modulated]] subcarrier which carries the ''[[chrominance]]'' or color information (<math>C</math>), a combination of [[hue]] and [[Colorfulness|saturation]]. Details of the combining process vary between the NTSC, PAL and SECAM systems. |
||
The [[frequency spectrum]] of the modulated color signal overlaps that of the baseband signal, and separation relies on the fact that frequency components of the baseband signal tend to be near [[harmonic]]s of the horizontal scanning rate, while the color carrier is selected to be an odd multiple of half the horizontal scanning rate; this produces a modulated color signal that consists mainly of harmonic frequencies that fall between the harmonics in the baseband [[Luma (video)|luma]] signal, rather than both being in separate continuous frequency bands alongside each other in the frequency domain. The signals may be separated using a [[comb filter]].<ref>{{Cite news |title=Understanding Video Comb Filters |work=Sencore Tech Tips |issue=201 |url=http://www.broadcaststore.com/pdf/model/793698/TT201%20-%204918.pdf}}</ref> In other words, the combination of luma and chrominance is indeed a frequency-division technique, but it is much more complex than typical [[frequency-division multiplexing]] systems like the one used to multiplex analog radio stations on both the AM and FM bands. |
The [[frequency spectrum]] of the modulated color signal overlaps that of the baseband signal, and separation relies on the fact that frequency components of the baseband signal tend to be near [[harmonic]]s of the horizontal scanning rate, while the color carrier is selected to be an odd multiple of half the horizontal scanning rate; this produces a modulated color signal that consists mainly of harmonic frequencies that fall between the harmonics in the baseband [[Luma (video)|luma]] signal, rather than both being in separate continuous frequency bands alongside each other in the frequency domain. The signals may be separated using a [[comb filter]].<ref>{{Cite news |title=Understanding Video Comb Filters |work=Sencore Tech Tips |issue=201 |url=http://www.broadcaststore.com/pdf/model/793698/TT201%20-%204918.pdf}}</ref> In other words, the combination of luma and chrominance is indeed a frequency-division technique, but it is much more complex than typical [[frequency-division multiplexing]] systems like the one used to multiplex analog radio stations on both the AM and FM bands. |
||
A gated and filtered signal derived from the color [[subcarrier]], called the burst or [[colorburst]], is added to the [[horizontal blanking interval]] of each line (excluding lines in the [[vertical sync interval]]) as a synchronizing signal and amplitude reference for the chrominance signals. In NTSC composite video, the burst signal is inverted in phase (180° out of phase) from the reference subcarrier.<ref name="SMPTE 170M-2004">{{cite book |url=https://ieeexplore.ieee.org/document/7291416 |title=SMPTE STANDARD for Television – Composite Analog Video Signal – NTSC for Studio Applications |journal=St 170:2004 |date=2004|pages=1–21 |doi=10.5594/SMPTE.ST170.2004 |isbn=978-1-61482-335-3 }}</ref> In PAL, the phase of the color subcarrier alternates on successive lines. In SECAM, no colorburst is used since phase information is irrelevant. |
A gated and filtered signal derived from the color [[subcarrier]], called the burst or [[colorburst]], is added to the [[horizontal blanking interval]] of each line (excluding lines in the [[vertical sync interval]]) as a synchronizing signal and amplitude reference for the chrominance signals. In NTSC (3.58Mhz) composite video, the burst signal is inverted in phase (180° out of phase) from the reference subcarrier.<ref name="SMPTE 170M-2004">{{cite book |url=https://ieeexplore.ieee.org/document/7291416 |title=SMPTE STANDARD for Television – Composite Analog Video Signal – NTSC for Studio Applications |journal=St 170:2004 |date=2004|pages=1–21 |doi=10.5594/SMPTE.ST170.2004 |isbn=978-1-61482-335-3 }}</ref> In PAL (4.43Mhz), the phase of the color subcarrier alternates on successive lines. In SECAM, no colorburst is used since phase information is irrelevant. |
||
===Composite artifacts=== |
===Composite artifacts=== |
||
[[Image:Crawl.jpg|right|thumb|upright=1.36|Enlarged detail from a video source exhibiting [[dot crawl]]. Note the distinctive checkerboard pattern on the vertical edges between yellow and blue areas.]] |
[[Image:Crawl.jpg|right|thumb|upright=1.36|Enlarged detail from a video source exhibiting [[dot crawl]]. Note the distinctive checkerboard pattern on the vertical edges between yellow and blue areas.]] |
||
The combining of component signals to form the composite signal does the same, causing a checkerboard video artifact known as [[dot crawl]]. Dot crawl is a defect that results from crosstalk due to the intermodulation of the chrominance and luminance components of the signal. This is usually seen when chrominance is transmitted with high bandwidth, and its spectrum reaches into the band of the luminance frequencies. [[Comb filter]]s are commonly used to separate signals and eliminate these artifacts from composite sources. [[S-Video]] and [[component video]] avoid this problem as they maintain the component signals |
The combining of component signals to form the composite signal does the same, causing a checkerboard video artifact known as [[dot crawl]]. Dot crawl is a defect that results from crosstalk due to the intermodulation of the chrominance and luminance components of the signal. This is usually seen when chrominance is transmitted with high bandwidth, and its spectrum reaches into the band of the luminance frequencies. [[Comb filter]]s are commonly used to separate signals and eliminate these artifacts from composite sources. [[S-Video]] and [[component video]] avoid this problem as they maintain the component signals physically separate. |
||
=== Recording === |
=== Recording === |
||
Most home [[analog video]] equipment record a signal in (roughly) composite format: [[LaserDisc]]s store a true composite signal, while consumer videotape formats (including [[VHS]] and [[Betamax]]) and commercial and industrial tape formats (including [[U-matic]]) use modified composite signals (generally known as ''color-under'').<ref>{{cite web|title=US Patent 4323915|url=http://patft.uspto.gov/netacgi/nph-Parser?Sect1=PTO1&Sect2=HITOFF&d=PALL&p=1&u=%2Fnetahtml%2FPTO%2Fsrchnum.htm&r=1&f=G&l=50&s1=4323915.PN.&OS=PN/4323915&RS=PN/4323915|publisher=US Patent and Trademark Office|access-date=12 May 2014|url-status=live|archive-url=https://web.archive.org/web/20161220125824/http://patft.uspto.gov/netacgi/nph-Parser?Sect1=PTO1&Sect2=HITOFF&d=PALL&p=1&u=%2Fnetahtml%2FPTO%2Fsrchnum.htm&r=1&f=G&l=50&s1=4323915.PN.&OS=PN%2F4323915&RS=PN%2F4323915|archive-date=20 December 2016}}</ref> The professional [[D-2 (video)|D-2]] videocassette format [[digital recording|digitally |
Most home [[analog video]] equipment record a signal in (roughly) composite format: [[LaserDisc]]s & [[Type C videotape|SMPTE 1" Type-C]] for example store a true composite signal modualted, while consumer videotape formats (including [[VHS]] and [[Betamax]]) and commercial and industrial tape formats (including [[U-matic]]) use modified composite signals [[FM (modulation)|FM encoded]] (generally known as ''color-under'').<ref>{{cite web|title=US Patent 4323915|url=http://patft.uspto.gov/netacgi/nph-Parser?Sect1=PTO1&Sect2=HITOFF&d=PALL&p=1&u=%2Fnetahtml%2FPTO%2Fsrchnum.htm&r=1&f=G&l=50&s1=4323915.PN.&OS=PN/4323915&RS=PN/4323915|publisher=US Patent and Trademark Office|access-date=12 May 2014|url-status=live|archive-url=https://web.archive.org/web/20161220125824/http://patft.uspto.gov/netacgi/nph-Parser?Sect1=PTO1&Sect2=HITOFF&d=PALL&p=1&u=%2Fnetahtml%2FPTO%2Fsrchnum.htm&r=1&f=G&l=50&s1=4323915.PN.&OS=PN%2F4323915&RS=PN%2F4323915|archive-date=20 December 2016}}</ref> The professional [[D-2 (video)|D-2]] videocassette format [[digital recording|digitally storing]] a 4fsc (910x525 NTSC & 1135x625 PAL) sampled signal and losslessly reproduces composite video signals using [[Pulse-code modulation|PCM]] encoding of the [[analog signal]] on the [[magnetic tape]], with the advent of affordable higher sampling speed analog to digital converters, realtime composite to YUV sampled digital sampling has been possible since the 1980s and raw waveform sampling and software decoding since the 2010s<ref name=":0">{{Cite web |last=Munday |first=Harry |date=2021 |title=CVBS-Decode - Software Defined Composite Video Decoder |url=https://github.com/oyvindln/vhs-decode/wiki/CVBS-Composite-Deco |url-status=live}}</ref>. |
||
=== Extensions === |
=== Extensions === |
||
Line 81: | Line 81: | ||
Video cables are 75 ohm impedance, low in capacitance. Typical values run from 52 pF/m for an [[HDPE]]-foamed dielectric precision video cable to 69 pF/m for a solid PE dielectric cable.<ref>{{cite web |url=http://www.bluejeanscable.com/store/subwoofer/LC1-design-notes.htm |title=LC-1 Audio Cable Design Notes |publisher=Blue Jeans Cable |access-date=21 January 2012 |url-status=live |archive-url=https://web.archive.org/web/20111128085452/http://www.bluejeanscable.com/store/subwoofer/LC1-design-notes.htm |archive-date=28 November 2011 }}</ref> |
Video cables are 75 ohm impedance, low in capacitance. Typical values run from 52 pF/m for an [[HDPE]]-foamed dielectric precision video cable to 69 pF/m for a solid PE dielectric cable.<ref>{{cite web |url=http://www.bluejeanscable.com/store/subwoofer/LC1-design-notes.htm |title=LC-1 Audio Cable Design Notes |publisher=Blue Jeans Cable |access-date=21 January 2012 |url-status=live |archive-url=https://web.archive.org/web/20111128085452/http://www.bluejeanscable.com/store/subwoofer/LC1-design-notes.htm |archive-date=28 November 2011 }}</ref> |
||
== Digital Sampling & Modern Usage == |
|||
Composite & S-Video signals are digitally stored at 720x576i25 PAL and 720x480i29.7 (or 720x488) pixels for active image area, however this is inaccurately presented as the whole signal, when virtually all hardware uses 4fsc sampling internally (910x525 NTSC & 1135x625 PAL) that includes the [[Vertical blanking interval|VBI]] data space, but only commerical video capture devices used in broadcast, output images with the extra vertical VBI space, however in recent years direct sampling with high speed [[Analog-to-digital converter|ADC's]] (28-54msps range) and software [[time base correction]] has allowed projects like the [[Open source|open-source]] CVBS-Decode<ref name=":0" /> to create a [[D-2 (video)|D-2]] like 4fsc filestream that preserves and allows full presentation and inspection of the entire composite signal, this can then be comb-filtered or chroma-decoded to a colour image on a standard computer or via [[Digital-to-analog converter|DAC]] played back to a TV. |
|||
Composite is no longer the universal standard it once was for consumers after the digital era began phasing out analog [[Cathode-ray tube|CRT displays]] and virtually all consumer devices moved to using [[HDMI]], but in commerical and broadcast usage [[SDI cable|physical cable runs]] used for CVBS were replaced but the end point devices ere such as camaras using [[Serial digital interface|SDI]] systems this has been in effect since the 1990s in Europe and 2000s in North America, but modifyed versions of composite such as 960H (960x576) are still in wide use for [[Closed-circuit television|CCTV systems]] today in consumer use alongside [[Drone racing|fpv drones]]. |
|||
== Modulators == |
== Modulators == |
||
{{Unreferenced section|date=August 2023}} |
{{Unreferenced section|date=August 2023}} |
||
Some devices output composite video, such as [[Videocassette recorder|Videocassette recorders]] (VCR), [[video game console]]s, and [[home computer]]s. This may then be converted to RF with an [[RF modulator]] that generates the proper carrier (often for channel 3 or 4 in [[North America]], channel 36 in [[Europe]]). Sometimes this modulator is built into the product (such as video game consoles, VCRs, or the [[Atari]], [[Commodore 64]], or [[TRS-80 Color Computer|TRS-80 CoCo]] home-computers), is an external unit powered by the computer ([[TI-99/4A]]), or with an independent power supply.{{efn|In the United States, using an external RF modulator frees the manufacturer from obtaining FCC approval for each variation of a device. Through the early 1980s, electronics that output a television channel signal were required to meet the same shielding requirements as broadcast television equipment, thus forcing manufacturers such as Apple to omit an RF modulator, and [[Texas Instruments]] to have their RF modulator as an external unit, which they had certified by the FCC without mentioning they were planning to sell it with a computer. In Europe, while most countries used the same broadcast standard, there were different modulation standards (PAL-G versus PAL-I, for example), and using an external modulator allowed manufacturers to make a single product and easily sell it to different countries by changing the modulator.}} |
Some devices output live or de-modulated composite video, such as [[Videocassette recorder|Videocassette recorders]] (VCR), [[video game console]]s, and [[home computer]]s. This may then be converted to FM RF with an [[RF modulator]] that generates the proper carrier (often for channel 3 or 4 in [[North America]], channel 36 in [[Europe]]). Sometimes this modulator is built into the product (such as video game consoles, VCRs, or the [[Atari]], [[Commodore 64]], or [[TRS-80 Color Computer|TRS-80 CoCo]] home-computers), is an external unit powered by the computer ([[TI-99/4A]]), or with an independent power supply.{{efn|In the United States, using an external RF modulator frees the manufacturer from obtaining FCC approval for each variation of a device. Through the early 1980s, electronics that output a television channel signal were required to meet the same shielding requirements as broadcast television equipment, thus forcing manufacturers such as Apple to omit an RF modulator, and [[Texas Instruments]] to have their RF modulator as an external unit, which they had certified by the FCC without mentioning they were planning to sell it with a computer. In Europe, while most countries used the same broadcast standard, there were different modulation standards (PAL-G versus PAL-I, for example), and using an external modulator allowed manufacturers to make a single product and easily sell it to different countries by changing the modulator.}} |
||
Because of the [[digital television transition]] most television sets no longer have analog television tuners and cannot accept a signal from an analog modulator. However, composite video has an established market for both devices that convert it to [[channel 3/4 output]]s, as well as devices that convert standards like [[Video Graphics Array|VGA]] to composite, therefore it has offered opportunities to [[repurposing|repurpose]] older [[composite monitor]]s for newer devices. |
Because of the [[digital television transition]] most television sets no longer have analog television tuners but DVB-T and ATSC digital ones they cannot accept a signal from an analog modulator. However, composite video has an established market for both devices that convert it to [[channel 3/4 output]]s, as well as devices that convert standards like [[Video Graphics Array|VGA]] to composite, therefore it has offered opportunities to [[repurposing|repurpose]] older [[composite monitor]]s for newer devices. |
||
=== Demodulation loss === |
=== Demodulation loss === |
||
The process of modulating RF with the original video signal, and then demodulating the original signal again in the TV, introduces losses including added noise or interference. For these reasons, it is best to use composite connections instead of RF connections if possible. Some video equipment and modern televisions have only RF input. |
The process of modulating RF with the original video signal, and then demodulating the original signal again in the TV, introduces losses including added noise or interference. For these reasons, it is best to use composite connections instead of RF connections if possible for live signals and sample the source [[FM broadcasting|FM RF]] signal for recorded formats. Some video equipment and modern televisions have only RF input. |
||
== See also == |
== See also == |
Revision as of 05:19, 15 May 2024
Type | Analog video connector | ||
---|---|---|---|
Production history | |||
Designed | 1954[1]–1956[2] | ||
Superseded by | SDI - Serial digital interface | ||
General specifications | |||
Length | Maximum of 50 m[citation needed] | ||
External | Yes | ||
Video signal | NTSC, PAL or SECAM video | ||
Pins | 1 plus grounding shield | ||
Connector | RCA connector | ||
Electrical | |||
Signal | 1 volt[3] | ||
Pinout | |||
Pin 1 | center | video | |
Pin 2 | sheath | ground |
Composite video is an baseband analog video format that typically carries a 525 29.97i or 625 line 25i interlaced signal on a single channel, unlike the higher-quality S-Video (two channels) and the even higher-quality component video (three or more channels).
A yellow RCA connector is typically used for composite video, with the audio being carried on separate additional L/R RCA connectors. In professional settings, or on devices that are too small for an RCA connector, such as a digital camera, other types of connectors can be used.
Composite video is also known by the initials CVBS for Composite Video Baseband Signal or Color, Video, Blanking and Sync,[4][5] or is simply referred to as SD video for the standard-definition television signal it conveys.
There are three dominant variants of composite video signals, corresponding to the analog color system used (NTSC, PAL, and SECAM), but purely monochrome signals can also be used.
Signal components
A composite video signal combines, on one wire, the video information required to recreate a color picture, as well as line and frame synchronization pulses. The color video signal is a linear combination of the luminance () of the picture and a modulated subcarrier which carries the chrominance or color information (), a combination of hue and saturation. Details of the combining process vary between the NTSC, PAL and SECAM systems.
The frequency spectrum of the modulated color signal overlaps that of the baseband signal, and separation relies on the fact that frequency components of the baseband signal tend to be near harmonics of the horizontal scanning rate, while the color carrier is selected to be an odd multiple of half the horizontal scanning rate; this produces a modulated color signal that consists mainly of harmonic frequencies that fall between the harmonics in the baseband luma signal, rather than both being in separate continuous frequency bands alongside each other in the frequency domain. The signals may be separated using a comb filter.[6] In other words, the combination of luma and chrominance is indeed a frequency-division technique, but it is much more complex than typical frequency-division multiplexing systems like the one used to multiplex analog radio stations on both the AM and FM bands.
A gated and filtered signal derived from the color subcarrier, called the burst or colorburst, is added to the horizontal blanking interval of each line (excluding lines in the vertical sync interval) as a synchronizing signal and amplitude reference for the chrominance signals. In NTSC (3.58Mhz) composite video, the burst signal is inverted in phase (180° out of phase) from the reference subcarrier.[7] In PAL (4.43Mhz), the phase of the color subcarrier alternates on successive lines. In SECAM, no colorburst is used since phase information is irrelevant.
Composite artifacts
The combining of component signals to form the composite signal does the same, causing a checkerboard video artifact known as dot crawl. Dot crawl is a defect that results from crosstalk due to the intermodulation of the chrominance and luminance components of the signal. This is usually seen when chrominance is transmitted with high bandwidth, and its spectrum reaches into the band of the luminance frequencies. Comb filters are commonly used to separate signals and eliminate these artifacts from composite sources. S-Video and component video avoid this problem as they maintain the component signals physically separate.
Recording
Most home analog video equipment record a signal in (roughly) composite format: LaserDiscs & SMPTE 1" Type-C for example store a true composite signal modualted, while consumer videotape formats (including VHS and Betamax) and commercial and industrial tape formats (including U-matic) use modified composite signals FM encoded (generally known as color-under).[8] The professional D-2 videocassette format digitally storing a 4fsc (910x525 NTSC & 1135x625 PAL) sampled signal and losslessly reproduces composite video signals using PCM encoding of the analog signal on the magnetic tape, with the advent of affordable higher sampling speed analog to digital converters, realtime composite to YUV sampled digital sampling has been possible since the 1980s and raw waveform sampling and software decoding since the 2010s[9].
Extensions
A number of so-called extensions to the visible TV image can be transmitted using composite video. Since TV screens hide the vertical blanking interval of a composite video signal, these take advantage of the unseen parts of the signal. Examples of extensions include teletext, closed captioning, information regarding the show title, a set of reference colors that allows TV sets to automatically correct NTSC hue maladjustments, widescreen signaling (WSS) for switching between 4:3 and 16:9 display formats, etc.
Connectors and cable
In home applications, the composite video signal is typically connected using an RCA connector, normally yellow. It is often accompanied with red and white connectors for right and left audio channels respectively. BNC connectors and higher quality coaxial cable are often used in professional television studios and post-production applications. BNC connectors were also used for composite video connections on early home VCRs, often accompanied by either RCA connector or a 5-pin DIN connector for audio. The BNC connector, in turn, post dated the PL-259 connector featured on first-generation VCRs.
Video cables are 75 ohm impedance, low in capacitance. Typical values run from 52 pF/m for an HDPE-foamed dielectric precision video cable to 69 pF/m for a solid PE dielectric cable.[11]
Digital Sampling & Modern Usage
Composite & S-Video signals are digitally stored at 720x576i25 PAL and 720x480i29.7 (or 720x488) pixels for active image area, however this is inaccurately presented as the whole signal, when virtually all hardware uses 4fsc sampling internally (910x525 NTSC & 1135x625 PAL) that includes the VBI data space, but only commerical video capture devices used in broadcast, output images with the extra vertical VBI space, however in recent years direct sampling with high speed ADC's (28-54msps range) and software time base correction has allowed projects like the open-source CVBS-Decode[9] to create a D-2 like 4fsc filestream that preserves and allows full presentation and inspection of the entire composite signal, this can then be comb-filtered or chroma-decoded to a colour image on a standard computer or via DAC played back to a TV.
Composite is no longer the universal standard it once was for consumers after the digital era began phasing out analog CRT displays and virtually all consumer devices moved to using HDMI, but in commerical and broadcast usage physical cable runs used for CVBS were replaced but the end point devices ere such as camaras using SDI systems this has been in effect since the 1990s in Europe and 2000s in North America, but modifyed versions of composite such as 960H (960x576) are still in wide use for CCTV systems today in consumer use alongside fpv drones.
Modulators
Some devices output live or de-modulated composite video, such as Videocassette recorders (VCR), video game consoles, and home computers. This may then be converted to FM RF with an RF modulator that generates the proper carrier (often for channel 3 or 4 in North America, channel 36 in Europe). Sometimes this modulator is built into the product (such as video game consoles, VCRs, or the Atari, Commodore 64, or TRS-80 CoCo home-computers), is an external unit powered by the computer (TI-99/4A), or with an independent power supply.[a]
Because of the digital television transition most television sets no longer have analog television tuners but DVB-T and ATSC digital ones they cannot accept a signal from an analog modulator. However, composite video has an established market for both devices that convert it to channel 3/4 outputs, as well as devices that convert standards like VGA to composite, therefore it has offered opportunities to repurpose older composite monitors for newer devices.
Demodulation loss
The process of modulating RF with the original video signal, and then demodulating the original signal again in the TV, introduces losses including added noise or interference. For these reasons, it is best to use composite connections instead of RF connections if possible for live signals and sample the source FM RF signal for recorded formats. Some video equipment and modern televisions have only RF input.
See also
Notes
- ^ In the United States, using an external RF modulator frees the manufacturer from obtaining FCC approval for each variation of a device. Through the early 1980s, electronics that output a television channel signal were required to meet the same shielding requirements as broadcast television equipment, thus forcing manufacturers such as Apple to omit an RF modulator, and Texas Instruments to have their RF modulator as an external unit, which they had certified by the FCC without mentioning they were planning to sell it with a computer. In Europe, while most countries used the same broadcast standard, there were different modulation standards (PAL-G versus PAL-I, for example), and using an external modulator allowed manufacturers to make a single product and easily sell it to different countries by changing the modulator.
References
- ^ "Definition: composite video". computer language. Retrieved 23 May 2019.
- ^ "the cable bible". Retrieved 23 May 2019.
- ^ "Understanding Analog Video Signals". Analog Devices.
- ^ "TUTORIAL 734 Video Basics". Maxim Integrated. Maxim Integrated. 2002. Archived from the original on 14 July 2018. Retrieved 14 July 2018.
- ^ Silva, Robert (11 September 2020). "Composite Video Connections Explained - Many home theater devices still support composite video inputs". Lifewire Tech for Humans. Lifewire.
- ^ "Understanding Video Comb Filters" (PDF). Sencore Tech Tips. No. 201.
- ^ SMPTE STANDARD for Television – Composite Analog Video Signal – NTSC for Studio Applications. 2004. pp. 1–21. doi:10.5594/SMPTE.ST170.2004. ISBN 978-1-61482-335-3.
{{cite book}}
:|journal=
ignored (help) - ^ "US Patent 4323915". US Patent and Trademark Office. Archived from the original on 20 December 2016. Retrieved 12 May 2014.
- ^ a b Munday, Harry (2021). "CVBS-Decode - Software Defined Composite Video Decoder".
{{cite web}}
: CS1 maint: url-status (link) - ^ "Elwro 800 Junior - MCbx". oldcomputer.info. Archived from the original on 18 March 2017. Retrieved 5 May 2018.
- ^ "LC-1 Audio Cable Design Notes". Blue Jeans Cable. Archived from the original on 28 November 2011. Retrieved 21 January 2012.
External links
- Maxim - Apr 8, 2002 - Video Basics Tutorial covering CVBS format structure.
- Marshall Brain (26 November 2006). "Composite Video Signal". Retrieved 1 May 2020.