1. Field of the Invention
This invention relates to video processing and particularly to motion compensation of video processes.
2. Background Art
It is a well-known technique in video processing, to identify a motion vector for each pixel and to shift pixels in accordance with those vectors. Such motion compensation is of benefit in myriad video processes, of which standards conversion is a good example. A motion compensated process will be expected to perform considerably better than the equivalent linear process, although at a substantial extra cost in terms of hardware complexity or software processing requirement.
It is further known in simpler arrangements to switch between two processes, one spatial and one temporal, on the basis of whether motion is detected. This has the advantage of avoiding motion smear by switching to spatial processing, but typically suffers from adaption artefacts.
It is an object of one aspect of the present invention to provide a method of taking motion into account, which is less complex and involves less processing than full motion compensation, but which nonetheless offers significant improvements over the equivalent linear process.
There is disclosed in EP O 702 880 a method of reducing the deleterious effects of motion in a video signal process, comprising the steps of conducting the video signal process on a video signal at high bandwidth without motion compensation; conducting a like video signal process without motion compensation at low bandwidth to produce a low bandwidth control signal; conducting a similar video signal process with motion compensation at low bandwidth to produce a low bandwidth motion compensated signal; comparing the control and motion compensated signals to produce an error signal and subtracting the error signal in the high bandwidth video signal process.
The present invention consists in one aspect in a method of video processing comprising the steps of receiving an input signal; conducting a motion compensated video process on the input signal to form a motion compensated signal; conducting an equivalent linear process on the input signal to form a linear signal; forming a measure of the relative errors in the motion compensated process and the linear process respectively; and utilising said measure to form an output signal which is a mix between the motion compensated signal and the linear signal, the relative proportions of the motion compensated signal and linear signal in said mix being determined by said measure.
The invention will now be described by way of example with reference to the accompanying drawings, in which:
Referring initially to
In this manner, the two different conversion signals are compared, in order to determine which is more appropriate for the material currently being processed. The comparison controls the mix, so that, for example, at instances where motion compensated standards conversion gives better results, the signal from block 104 is preferably used as a higher proportion of the mix. The system thus produces the optimum output from a mix of the two different converters, rather than simply switching from one to the other.
Reference is directed to EP 0 702 880 for more detail of a method of generating two standards converted images, one linear conversion and one motion compensated.
In another embodiment, shown in
The two difference signals are then used in generator (212) to derive an adaption signal indicating the relative merits of the respective converter outputs for the current picture material. The two converter outputs (200 and 206) are then mixed (214) in the proportions suggested by the adaption signal to produce the output signal (110).
In a further embodiment, illustrated in
Thus in this embodiment, it is the comparison of the error signals which controls the mix. If the error between the fields currently being converted linearly is larger than those being converted with motion compensation, it will be preferable to use the motion compensated material to produce the output pictures (110). Similarly, if the error between the motion compensated fields is larger, the linear output is preferred.
These four fields are fed to respective coefficient multipliers (404) to (407) where they are weighted in known manner according to temporal interpolation coefficients from a coefficient generator (408) and summed (409) so as to generate a linearly standards converted signal (410).
The four fields from the block (402) are also fed to respective picture shifters (411) to (414) where they are motion compensated in known manner to the temporal position of the required output field by motion vectors from the motion estimator (403). The shifted fields are then weighted by the multipliers (415) to (418) and combined in the adder (419) to produce motion-compensated, converted signal (420).
The two central fields of the linear converter are compared in the comparator (421) to produce a “linear conversion error signal” (422); and the two central motion compensated fields are compared in the comparator (423) to produce a “motion compensated converter error signal” (424).
The error signals (422) and (424) are compared with each other in a comparator (425) which produces an adaptation control signal to control the mixer (426), which derives the output signal (427) by crossfading between the linearly converted signal (410) and the motion-compensated signal (420). The control is such as to favour the linear signal when the error signal (424) is large with respect to the error signal (422) and vice versa.
In the above description the same four vertically-converted signals from the block (402) are used for the linear conversion, the motion-compensated conversion and for the generation of the error signals. However, alternative embodiments advantageously use different vertical interpolation characteristics (i.e. different coefficients and/or different numbers of lines) for these three different functions. For example, the signals feeding the comparators could be optimised for the control of the adaptation process, and the signals feeding the converters could be optimised to reduce the visibility of conversion artefacts.
It should be noted that though in the example illustrated, the error signals are calculated using only two fields, in other embodiments any number of fields may be used (for example, four, from a four-field standards converter).
It should be understood that this invention has been described by way of examples only and that numerous modifications are possible without departing from the scope of the invention. For example, there is no restriction on the motion compensated method used.
This technique can be applied to standards conversion but would be equally applicable in other areas where motion detection is useful. These include prediction based compression systems, interpolators and noise reducers.
The techniques disclosed and claimed in this patent application can with advantage be combined with any of the techniques disclosed and claimed in the co-pending patent application PCT/GB01/01328 in the name of the same applicant.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/GB01/01609 | 4/9/2001 | WO | 00 | 1/7/2003 |
Publishing Document | Publishing Date | Country | Kind |
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WO01/78389 | 10/18/2001 | WO | A |
Number | Name | Date | Kind |
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5546130 | Hackett et al. | Aug 1996 | A |
Number | Date | Country |
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0 187 641 | Jan 1986 | EP |
0 390 660 | Mar 1990 | EP |
0 395 275 | Apr 1990 | EP |
0702880 | May 1999 | EP |
0 210 862 | Jul 2002 | EP |
Number | Date | Country | |
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20040012685 A1 | Jan 2004 | US |