Claims
- 1. An analog video switch, comprising:
a switch to establish different conductive paths between a set of workstations receiving analog video signals and a set of servers sending analog video signals; a memory device to store a predetermined table of response characteristics of a specified conductor path type when said conductor path type receives a set of predetermined frequency tones; a testing circuit in communication with the different conductive paths to record a measured response of said conductive paths to said set of predetermined frequency tones; an equalizer circuit to apply compensation signals to components of said analog video signals in relation to said measured response of said conductive paths to said set of predetermined frequency tones.
- 2. A method as in claim 1, wherein the set of predetermined frequency tones are selected between the values of 325 KHz and 48 MHz.
- 3. A method as in claim 1, further including a plurality of testing circuits and equalizers, one each per component of said analog video signals.
- 4. A method as in claim 1, wherein the testing circuit includes at least one computer interface pod and at least one user pod.
- 5. A method as in claim 4, wherein the computer interface pod includes circuitry to receive a tone request from the user pod and respond by applying the set of predetermined frequency tones to the conductive paths.
- 6. A method as in claim 5, wherein the user pod issues the tone request and determines said measured response.
- 7. A method as in claim 1, wherein the equalizer includes a set of low, middle and high filters independently controlled by said compensation signals.
- 8. Analog video de-skew circuitry for video compensation of color video transmitted on cables having different transmission delays, comprising:
a switch to receive on three inputs respective ones of three color video components, and to select for output two of said three color video components, followed by another two of said color video components, followed by at least one reciprocal of either of said two sets of two color video components; square-up circuitry to substantially square the edges of each of said pairs of two color video components; phase detector to detect a phase difference between said squared up color video components; an integrator coupled to the output of the phase detector; a digitizer to digitize the output of the integrator; a processor to produce control signals in response to the output of the integrator; and delay circuits to impose selective delays on the three color video components based on the control signals.
- 9. A method as in claim 8, wherein one or more of the square up circuitry, phase detector, integrator, digitizer, and processor are included on a common integrated circuit.
- 10. A method as in claim 8, wherein the delay circuits include an additive switch controlling a plurality of binary delay values.
- 11. A method of compensating an analog video component transmitted over an undetermined cable length, comprising:
pre-storing a predetermined table of response characteristics of a specified conductor path type for a number of incremental conductor path lengths, when said conductor path type of said path lengths receive a set of predetermined frequency tones; pre-storing a set of predetermined compensation values for each of said response characteristic for each of said conductor path lengths; testing said undetermined cable length of said conductor path type to record a measured response of said cable length to said set of predetermined frequency tones; comparing said measured response with said pre-stored table to identify a close match between said measured response values and said pre-stored table values; identifying a corresponding ones of said predetermined compensation values; applying said corresponding ones of said predetermined compensation values to an equalizer to compensate said analog video component.
- 12. A method as in claim 11, wherein the set of predetermined frequency tones are selected between the values of 325 KHz and 48 MHz.
- 13. A method as in claim 11, further including receiving a tone request and responding by applying the set of predetermined frequency tones to said cable length.
- 14. A method as in claim 11, further including applying the corresponding ones of compensation values to said equalizer as low, middle, and high compensation values.
- 15. A method as in claim 14, further including applying the corresponding ones of compensation values to said equalizer as a dc passthrough value.
- 16. A cable connector, comprising:
a series of electrical conductors to electrically couple corresponding electrically conductive transmission lines, including:
(a) first and second conductors associated with, respectively, positive and negative red differential analog video signals; (b) third and fourth conductors associated with, respectively, positive and negative green differential analog video signals; (c) fifth and sixth conductors associated with, respectively, positive and negative blue differential analog video signals; and (d) a seventh and eighth conductors associated with, respectively, positive and negative digital data signals; a housing containing the electrical conductors arranged such that one of said fifth and sixth conductors is physically closer to the seventh and eighth conductors than the other of said fifth and sixth conductors; and a capacitive element connected between (1) said other of said fifth and sixth conductors and (2) one of said seventh or eighth conductors.
- 17. A method as in claim 16, wherein the capacitive element is valued to substantially neutralize the effect of induced capacitive coupling between (1) said physically closer one of said fifth and sixth conductors and (2) said physically closer seventh or eighth conductors.
- 18. A method as in claim 16, wherein the conductors are arranged in a line in the housing in the following order:
(1) one of the first, second, third, or fourth conductors, (2) another of the first, second, third, or fourth conductors; (3) one of the fifth or sixth conductors, (4) another of the first, second, third, or fourth conductors; (5) another of the first, second, third, or fourth conductors; (6) the other of the fifth or sixth conductors; (7) one of the seventh or eighth conductors; (8) the other of the seventh or eighth conductors.
- 19. A method as in claim 16, wherein the conductors are arranged in a line in the housing in the following order:
(1) fourth conductor, (2) third conductor; (3) sixth conductor, (4) second conductor; (5) first conductor; (6) fifth conductor; (7) eighth conductor; (8) seventh conductor; and the capacitive element is connected between the sixth conductor and the eighth conductor.
- 20. A method as in claim 17, wherein the value is selected to substantially equate the inter-conductor capacitance between (1) the sixth and eighth conductors and (2) the fifth and eighth conductors.
CROSS-REFERENCES TO RELATED APPLICATIONS
[0001] This invention relates to analog video switching. This application claims the priority of U.S. Application No. 60/356,706, the entire contents of which are incorporated herein by reference.
Provisional Applications (1)
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Number |
Date |
Country |
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60356706 |
Feb 2002 |
US |