Claims
- 1. A luminance and chrominance signal separating filter for separating the luminance (Y) and chrominance (C) component signals from a composite color television signal defining sequential television frames adaptive to movement of an image defined by the composite color television filter, the C signals being frequency multiplexed with a high frequency region of the Y signals, comprising:
- a first Y-C separating circuit separating the C signals from the composite signal to develop a separated C signal;
- a two dimensional adaptive filter operatively connected to the first Y-C separating circuit and receiving the separated C signal for filtering only in a selected one or more of at least two dimensions in dependence on the level of correlation of the separated C signal in said dimensions to produce a filtered C signal, said two dimensional adaptive filter including,
- at least two dimensional filters, each providing directional filtering in a different set of one or more directions, of said separated C signal, and
- a correlation detector for determining the degree of image correlation in each of the directions employed by said at least two dimensional filters and selecting only the one of said dimensional filters which provides a higher correlation in at least one of said directions; and
- a brightness extraction circuit using the filtered C signal and the composite color television signal to produce said Y signals, thereby developing both a Y signal and a C signal from said composite color television signal.
- 2. The filter of claim 1 wherein said first Y-C separating circuit separates the composite signal in a first field by using signals from a second field.
- 3. A luminance and chrominance signal separating filter for separating the luminance (Y) and chrominance (C) component signals from a composite color television signal defining sequential television frames adaptive to movement of an image defined by the composite color television filter, the C signals being frequency multiplexed with a high frequency region of the Y signals, comprising:
- a first Y-C separating circuit separating the C signals from the composite signal to develop a separated C signal, wherein said first Y-C separating circuit separates the composite signal in a first field by using signals from a second field, and includes,
- an inter-field correlation detector monitoring the degree of correlation between at least two nearby field pixels, spatially located nearby each selected first field pixel in differing directions and from a different image field, and each selected first field pixel to determine a direction of maximum correlation, and
- inter-field processor means for combining each said selected first field pixel with an associated selected second field pixel in said direction of maximum correlation to develop the separated C signal associated with each selected first field pixel;
- a two dimensional adaptive filter operatively connected to the first Y-C separating circuit and receiving the separated C signal for filtering only in a selected one or more of at least two dimensions in dependence on the level of correlation of the separated C signal in said dimensions to produce a filtered C signal; and
- a brightness extraction circuit using the filtered C signal and the composite color television signal to produce said Y signals, thereby developing both a Y signal and a C signal from said composite color television signal.
- 4. The filter of claim 1, wherein said correlation detector is an intra-field correlation detector and monitors the degree of correlation between the selected first field pixel and adjacent pixels in the same field and extending in at least two dimensions to determine the degree of correlation in each of said dimensions.
- 5. The filter of claim 4, wherein said intra-field correlation detector further includes,
- vertical direction non-correlation energy detecting means for excluding a d.c. component in the vertical direction and a frequency component corresponding to a color sub-carrier component from a frequency component of a particular sampling point and finding an absolute value of the remaining frequency component to detect a vertical direction non-correlation energy;
- horizontal direction high frequency Y signal energy detecting means for extracting a frequency component, which is a low frequency component in the vertical direction and corresponds to a half of a color sub-carrier frequency in the horizontal direction, from the frequency component of the selected first field pixel and finding an absolute value of the extracted component to detect a horizontal direction high frequency Y signal energy;
- vertical correlation detecting means for comparing said vertical direction non-correlation energy with a first set value and comparing said horizontal direction high frequency Y signal energy with a second set value, and deciding that a correlation is present in the vertical direction when said vertical direction non-correlation energy is smaller than said first set value and said horizontal direction high frequency Y signal energy is larger than said second set value;
- horizontal direction non-correlation energy detecting means for excluding a d.c. component in the horizontal direction and a frequency component corresponding to a color sub-carrier component from a frequency component of the selected first field pixel and finding an absolute value of the remaining frequency component to detect a horizontal direction non-correlation energy;
- vertical direction high frequency Y signal energy detecting means for extracting a frequency component, which is a low frequency component in the horizontal direction and corresponds to a half of a color sub-carrier frequency in the vertical direction, from the frequency component of the selected first field pixel and finding an absolute value of the extracted components to detect a vertical direction high frequency Y signal energy;
- horizontal correlation detecting means for comparing said horizontal direction non-correlation energy with a third set value and comparing said vertical direction high frequency Y signal energy with a fourth set value, and deciding that a correlation is present in the horizontal direction when said horizontal direction non-correlation energy is smaller than said third set value and said vertical direction high frequency Y signal energy is larger than said fourth set value; and
- means for sending a control signal for selecting an output from outputs of a plurality of filters, which perform intra-field processes, in accordance with the result of the detections.
- 6. The filter of claim 1 wherein said at least two dimensional filters include,
- a horizontal direction C signal extracting filter,
- a vertical direction C signal extracting filter, and
- said correlation detector determining the degree of correlation of said composite color television signal in a vertical and horizontal direction.
- 7. A luminance and chrominance signal separating filter for separating the luminance (Y) and chrominance (C) component signals from a composite color television signal defining sequential television frames adaptive to movement of an image defined by the composite color television filter, the C signals being frequency multiplexed with a high frequency region of the Y signals, comprising:
- a first Y-C separating circuit separating the C signals from the composite signal to develop a separated C signal;
- a two dimensional adaptive filter operatively connected to the first Y-C separating circuit and receiving the separated C signal for filtering only in a selected one or more of at least two dimensions in dependence on the level of correlation of the separated C signal in said dimensions to produce a filtered C signal, said two dimensional adaptive filter including,
- a horizontal direction C signal extracting filter,
- a vertical direction C signal extracting filter, and
- a correlation detector for determining the degree of image correlation in each of the directions employed by said at least dimensional filters and selecting only the one of said dimensional filters which provides a higher correlation in least one of said directions, said correlation detector determining the degree of correlation of said composite color television signal in a vertical and horizontal direction,
- said correlation detector selecting said horizontal direction C signal extracting filter if the degree of horizontal correlation in said composite color television signal exceeds a first selected level,
- said correlation detector selecting said vertical direction C signal extracting filter if the degree of vertical correlation in said composite color television signal exceeds a second selected level; and
- a brightness extraction circuit using the filtered C signal and the composite color television signal to produce said Y signals, thereby developing both a Y signal and a C signal from said composite color television signal.
- 8. The filter of claim 6 wherein said at least two dimensional filters further includes a horizontal and vertical C signal extracting filter.
- 9. A luminance and chrominance signal separating filter for separating the luminance (Y) and chrominance (C) component signals from a composite color television signal defining sequential television frames adaptive to movement of an image defined by the composite color television filter, the C signals being frequency multiplexed with a high frequency region of the Y signals, comprising:
- a first Y-C separating circuit separating the C signals from the composite signal to develop a separated C signal;
- a two dimensional adaptive filter operatively connected to the first Y-C separating circuit and receiving the separated C signal for filtering only in a selected one or more of at least two dimensions in dependence on the level of correlation of the separated C signal in said dimensions to produce a filtered C signal, said two dimensional adaptive filter including,
- a horizontal direction C signal extracting filter,
- a vertical direction C signal extracting filter, and
- a horizontal and vertical C signal extracting filter,
- a correlation detector for determining the degree of image correlation in each of the directions employed by said at least two dimensional filters and selecting only the one of said dimensional filters which provides a higher correlation in least one of said directions, said correlation detector determining the degree of correlation of said composite color television signal in a vertical and horizontal direction,
- said correlation detector selecting said horizontal direction C signal extracting filter if there is a high degree of horizontal correlation in said composite color television signal but a lower degree of vertical correlation in said composite color television signal,
- said correlation detector selecting said vertical direction C signal extracting filter if there is a high degree of vertical correlation in said composite color television signal but a lower degree of horizontal correlation in said composite color television signal,
- said correlation filter selecting said horizontal and vertical C signal extracting filter if there is a high degree of both horizontal and vertical correlation in said composite color television signal; and
- a brightness extraction circuit using the filtered C signal and the composite color television signal to produce said Y signals, thereby developing both a Y signal and a C signal from said composite color television signal.
- 10. The filter of claim 3 wherein said first and second fields are in the same frame.
- 11. The filter of claim 10 wherein said nearby field used in said inter-field correlation detector is in the same frame as said first field.
- 12. The filter of claim 10 wherein said second field used in said inter-field correlation detector is in a different frame than said first field.
- 13. A luminance and chrominance signal separating filter for separating the luminance (Y) and chrominance (C) component signals from a composite color television signal defining sequential television frames adaptive to movement of an image defined by the composite color television filter, the C signals being frequency multiplexed with a high frequency region of the Y signals, comprising:
- a first Y-C separating circuit separating the C signals from the composite signal to develop a separated C signal;
- a two dimensional adaptive filter operatively connected to the first Y-C separating circuit and receiving the separated C signal for filtering only in a selected one or more of at least two dimensions in dependence on the level of correlation of the separated C signal in said dimensions to produce a filtered C signal;
- a brightness extraction circuit using the filtered C signal and the composite color television signal to produce said Y signals, thereby developing both a Y signal and a C signal from said composite color television signal
- an inter-frame Y-C separating circuit for separating the C signals from the composite signal by using the composite signals of a different frame to extract inter-frame Y and C signals; and
- mixing means for mixing said Y signal produced by said first Y-C separating circuit with said inter-frame Y signal produced by said inter-frame Y-C separating circuit to produce a Y output signal and for mixing said C signal produced by said first Y-C separating circuit with said inter-frame C signal produced by said inter-frame Y-C separating circuit to produce a C output signal.
- 14. The filter of claim 11 further comprising:
- a motion detecting circuit detecting motion in the image represented by the composite color television signal; and
- said mixing means varying the proportion of said Y signal produced by said first Y-C separating circuit mixed with said inter-frame Y signal produced by said inter-frame Y-C separating circuit to produce the output Y signal and varying the proportion of said C signal produced by said first Y-C separating circuit mixed with said inter-frame C signal produced by said inter-frame Y-C separating circuit to produce the output C signal in response to the degree of motion sensed by said motion detecting circuit.
- 15. A method of separating luminance (Y) and chrominance (C) component signals from a composite color television signal defining sequential television frames adaptive to movement of an image represented thereby, the C signals being frequency multiplexed within a high frequency region of the Y signals, comprising:
- a) separating the C signals from the composite signal in a first field by using the composite signals from a second field to develop a separated C signal;
- b) judging the degree of correlation between a selected pixel and adjacent pixels in the same field and extending in at least two dimensions to determine the presence of one or more dimensions of higher correlation;
- c) adaptively filtering the separated C signal in selected one or more of at least two dimensions as determined by said step b) of judging to produce a filtered C signal;
- d) producing a Y signal from the filtered C signal and the composite color television signal; and
- e) producing a second separated C signal from said composite signal.
- 16. The method of claim 15 wherein said step e) includes,
- i) separating second C signals from the composite signal in a first field by using the composite signals from a second field to develop a second separated C signal;
- ii) judging the degree of correlation between a selected pixel and adjacent pixels in the same frame and extending in at least two dimensions to determine a direction of higher correlation; and
- iii) filtering the second separated C signal in a
- dimension of the higher correlation determined by said step ii) of judging.
- 17. A method of separating chrominance (C) component signals from a composite color television signal defining sequential television frames adaptive to movement of an image represented thereby, the C signals being frequency multiplexed within a high frequency region of luminance (Y) signals, comprising:
- a) separating the C signals from the composite signal in a first field by using the composite signals from a second field to develop a separated C signal;
- b) judging the degree of correlation between a selected pixel and adjacent pixels in the same field and extending in at least two dimensions to determine the presence of one or more dimensions of higher correlation; and
- c) using an adaptive filter, responsive to said step b) of judging to adaptively filter the separated C signal only in a selected one ore more of at least two dimensions as determined by said step b) of judging to produce a filtered C signal.
- 18. The method of claim 17 wherein said step a) of separating adaptively separates the C signals from the composite signal and includes,
- i) determining which of at least two nearby field pixels, spatially located nearby each selected first field pixel and from a different image field, most closely correlate with said first field pixel to determine a direction of maximum correlation,
- ii) combining a selected first field pixel with an associated second field pixel in said direction of maximum correlation to develop the separated C signal associated with the selected first field pixel, and
- iii) repeating said steps i) and ii) for each said pixel in said composite color television signal.
- 19. The method of claim 17 wherein said step c) of using an adaptive filter includes,
- i) filtering the separated C signal in a first dimension,
- ii) filtering the separated C signal in a second dimension,
- iii) filtering the separated C signal in both said first and second directions, and
- iv) choosing one of said steps i)-iii) of filtering based on the determined direction of higher correlation as determined by said step b) of judging.
- 20. The method of claim 17 wherein said second field used in said step a) is in the same frame as said first field.
- 21. The method of claim 18 wherein said nearby field used in said step i) is in the same frame as said first field.
- 22. The method of claim 18 wherein said nearby field used in said step i) is in a different frame than said first field.
- 23. The method of claim 17 further comprising:
- e) inter-frame separating the C signals from the composite signal by using the composite signals of a different frame to extract inter-frame C signals; and
- f) mixing said mixing said C signal produced by said step d)) with said inter-frame C signal produced by said step e) to produce a C output signal.
- 24. The method of claim 23 wherein said method of separating further comprises:
- g) detecting motion in the image represented by the composite color television signal; and
- said step f) of mixing varying the proportion of said C signal produced by said step d)) mixed with said inter-frame C signal produced by said step e) to produce the C output signal in response to the degree of motion sensed by said step g) of detecting.
- 25. The method of claim 1 wherein said dimensional filters are selected from a group consisting of a horizontal filter, a vertical filter, and a horizontal/vertical filter.
- 26. The method of claim 17 wherein the dimension of higher correlation determined by said step b) of judging is selected from horizontal, vertical, or horizontal/vertical.
Priority Claims (7)
Number |
Date |
Country |
Kind |
3-49548 |
Mar 1991 |
JPX |
|
3-49549 |
Mar 1991 |
JPX |
|
3-51974 |
Mar 1991 |
JPX |
|
3-52285 |
Mar 1991 |
JPX |
|
3-79603 |
Apr 1991 |
JPX |
|
3-79604 |
Apr 1991 |
JPX |
|
4-56746 |
Feb 1992 |
JPX |
|
Parent Case Info
This application is a divisional of application Ser. No. 07/850,488, filed on Mar. 12, 1992 now U.S. Pat. No. 5,412,434, the entire contents of which are hereby incorporated by reference.
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Number |
Name |
Date |
Kind |
4994906 |
Moriwake |
Feb 1991 |
|
5146318 |
Ishizuka et al. |
Sep 1992 |
|
5249040 |
Sugiyama |
Sep 1993 |
|
Divisions (1)
|
Number |
Date |
Country |
Parent |
850488 |
Mar 1992 |
|