WO2011131089A1 - Motion prediction method - Google Patents

Motion prediction method Download PDF

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Publication number
WO2011131089A1
WO2011131089A1 PCT/CN2011/072500 CN2011072500W WO2011131089A1 WO 2011131089 A1 WO2011131089 A1 WO 2011131089A1 CN 2011072500 W CN2011072500 W CN 2011072500W WO 2011131089 A1 WO2011131089 A1 WO 2011131089A1
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WO
WIPO (PCT)
Prior art keywords
unit
motion
candidate
current
units
Prior art date
Application number
PCT/CN2011/072500
Other languages
French (fr)
Inventor
Yu-Pao Tsai
Chih-Ming Fu
Jian-Liang Lin
Yu-Wen Huang
Shaw-Min Lei
Original Assignee
Mediatek Inc.
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Priority claimed from US12/957,644 external-priority patent/US9036692B2/en
Application filed by Mediatek Inc. filed Critical Mediatek Inc.
Priority to RU2012138901/08A priority Critical patent/RU2538284C2/en
Priority to KR1020177022721A priority patent/KR101865011B1/en
Priority to MX2012012246A priority patent/MX2012012246A/en
Priority to EP11771542.5A priority patent/EP2534841B1/en
Priority to KR1020127030207A priority patent/KR101772252B1/en
Priority to EP17193728.7A priority patent/EP3285490B1/en
Priority to JP2013504104A priority patent/JP5913283B2/en
Publication of WO2011131089A1 publication Critical patent/WO2011131089A1/en
Priority to IL222430A priority patent/IL222430A/en

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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/50Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using predictive coding
    • H04N19/503Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using predictive coding involving temporal prediction
    • H04N19/51Motion estimation or motion compensation
    • H04N19/513Processing of motion vectors
    • H04N19/517Processing of motion vectors by encoding
    • H04N19/52Processing of motion vectors by encoding by predictive encoding
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/50Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using predictive coding
    • H04N19/503Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using predictive coding involving temporal prediction
    • H04N19/51Motion estimation or motion compensation
    • H04N19/57Motion estimation characterised by a search window with variable size or shape
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/10Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using adaptive coding
    • H04N19/102Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using adaptive coding characterised by the element, parameter or selection affected or controlled by the adaptive coding
    • H04N19/103Selection of coding mode or of prediction mode
    • H04N19/105Selection of the reference unit for prediction within a chosen coding or prediction mode, e.g. adaptive choice of position and number of pixels used for prediction
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/10Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using adaptive coding
    • H04N19/134Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using adaptive coding characterised by the element, parameter or criterion affecting or controlling the adaptive coding
    • H04N19/136Incoming video signal characteristics or properties
    • H04N19/137Motion inside a coding unit, e.g. average field, frame or block difference
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04NPICTORIAL COMMUNICATION, e.g. TELEVISION
    • H04N19/00Methods or arrangements for coding, decoding, compressing or decompressing digital video signals
    • H04N19/10Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using adaptive coding
    • H04N19/134Methods or arrangements for coding, decoding, compressing or decompressing digital video signals using adaptive coding characterised by the element, parameter or criterion affecting or controlling the adaptive coding
    • H04N19/146Data rate or code amount at the encoder output
    • H04N19/147Data rate or code amount at the encoder output according to rate distortion criteria

Definitions

  • the invention relates to video processing, and more particularly to motion prediction of video data.
  • the new upcoming H.264 compression standard can provide good video quality at substantially lower bit rates than previous standards by adopting features such as sub-pixel accuracy and multiple-referencing.
  • the video compression process can be generally divided into 5 parts which include: inter-prediction/intra-prediction, transform/inverse-transform, quantization/inverse- quantization, loop filter, and entropy encoding.
  • H.264 is used in various applications such as Blu- ray Discs, DVB broadcasting services, direct-broadcast satellite television service, cable television services, and real-time videoconferencing.
  • a video datastream comprises a series of frames.
  • Each frame is divided into a plurality of coding units (e.g. macroblocks or extended macroblocks) for video processing.
  • Each coding unit can be segmented into quad-tree partitions, and a leaf coding unit is called a prediction unit.
  • a prediction unit can be further segmented into quad-tree partitions, and each partition is assigned with a motion parameter.
  • a motion vector predictor is calculated for each partition by referencing to adjacent coded blocks, coding efficiency can thus be improved as the motion of the adjacent blocks tends to have high spatial correlation.
  • a schematic diagram of a current unit 100 and a plurality of neighboring units A, B, C, and D are shown.
  • both the current unit 100 and neighboring units A, B, C and D are the same size; however, these units are not necessary to be the same size.
  • the motion vector predictor (MVP) of the current unit 100 is predicted according to the motion vectors of the neighboring units A, B, and C, or A, B, and D if C is unavailable.
  • MVP motion vector predictor
  • a medium of the motion vectors of the neighboring units A, B, and D is determined to be the MVP of the current unit 100.
  • a motion vector of the neighboring unit A is determined to be the MVP of the current unit 100.
  • a motion vector of the neighboring unit C is determined to be the MVP of the current unit 100.
  • a motion vector of the neighboring unit B is determined to be the MVP of the current unit 100.
  • a motion vector of the neighboring unit A is determined to be the MVP of the current unit 100.
  • the motion vectors of the neighboring units A, B, C, and D are not properly temporal scaled.
  • the reference frame of the neighboring units A, B, and C are different, and the motion vectors of the neighboring units A, B, and C correspond to the reference frames respectively.
  • the temporal distances between each of the reference frames and the current frame are different.
  • the motion vectors of the neighboring units A, B, and C should therefore be temporal scaled according to the temporal distances before predicting the MVP of the current unit 100 according to the motion vectors of the neighboring units A, B, and C.
  • the MVP of the current unit 100 is only predicted according to the motion vectors of the neighboring units A, B, C, and D.
  • the prediction accuracy of MVP may be further improved if more candidate MVPs are considered and the best out of the candidate MVPs is selected by rate- distortion optimization.
  • MVC motion vector competition
  • the predefined candidate set may include the H.264 standard predictor (e.g. the median MV of neighboring units), MV of the collocated unit at the same location in a reference frame as that of the current unit, and MVs of the neighboring units.
  • the recommended number of MVPs in the predefined candidate set is two.
  • the predefined candidate set, according to the motion vector competition method is fixed in a video sequence level.
  • the invention provides a motion prediction method. First, a plurality of candidate units corresponding to a current unit of a current frame is determined. A plurality of motion vectors of the candidate units is then obtained. A plurality of temporal scaling factors of the candidate units is then calculated according to a plurality of temporal distances between a plurality of reference frames of the motion vectors and the current frame. The motion vectors of the candidate units are then scaled according to the temporal scaling factors to obtain a plurality of scaled motion vectors. Finally, a motion vector predictor for motion prediction of the current unit is then selected from the candidate units according to the scaled motion vectors.
  • the invention also provides a motion prediction method.
  • a plurality of candidate units for motion prediction of a current unit is first determined.
  • a plurality of coded units corresponding to the current unit is then determined.
  • a plurality of motion difference values between the motion vectors of the candidate units corresponding to the coded units and the motion vectors of the coded units is then calculated.
  • the motion difference values corresponding to the candidate units are then summed according to a series of weights to obtain a plurality of weighted sums respectively corresponding to the candidate units.
  • at least one chosen candidate unit for motion prediction of the current unit is selected from the candidate units according to the weighted sums.
  • Fig. 1 is a schematic diagram of a current coding unit and a plurality of neighboring coding units
  • Fig. 2 is a block diagram of a video encoder according to the invention.
  • Fig. 3 is a schematic diagram of scaling of a motion vector of two candidate units
  • Fig. 4 is a flowchart of a motion prediction method with temporal difference adjustment
  • Fig. 5 is a schematic diagram of a plurality of candidate units for motion prediction of a current unit according to an embodiment of the invention
  • Figs. 6A and 6B illustrate a flowchart of a motion prediction method with adaptively chosen candidate units according to an embodiment of the invention.
  • Fig. 7 is a schematic diagram of a table recording motion difference values corresponding to different coded units and candidate units according to an embodiment of the invention.
  • the video encoder 200 comprises a motion prediction module 202, a subtraction module 204, a transform module 206, a quantization module 208, and an entropy coding module 210.
  • the video encoder 200 receives a video input and generates a bitstream as an output.
  • the motion prediction module 202 performs motion prediction on the video input to generate predicted samples and prediction information.
  • the subtraction module 204 then subtracts the predicted samples from the video input to obtain residues, thereby reducing video data amount from that of the video input to that of the residues.
  • the residues are then sequentially sent to the transform module 206 and the quantization module 208.
  • the transform module 206 performs a discrete cosine transform (DCT) on the residues to obtain transformed residues.
  • the quantization module 208 then quantizes the transformed residues to obtain quantized residues.
  • the entropy coding module 210 then performs entropy coding on the quantized residues and prediction information to obtain a bitstream as a video output.
  • a motion prediction module 202 predicts a motion vector predictor (MVP) of a current unit of a current frame according to motion vectors of a plurality of candidate units.
  • the candidate units are neighboring units neighboring to the current unit.
  • MVP motion vector predictor
  • temporal distances between reference frames of the candidate units and a current frame are calculated, and the motion vectors of the candidate units are scaled according to the temporal distances.
  • FIG. 3 a schematic diagram of scaling of a motion vector of two candidate units 310 and 320 is shown.
  • a current frame k comprises two candidate units 310 and 320 for motion prediction of a current unit 300.
  • the first candidate unit 310 has a motion vector MVi in reference to a reference frame i, and a first temporal difference Di k between the reference frame i and the current frame k is calculated.
  • the second candidate unit 320 has a motion vector MV 2 in reference to a reference frame 1, and a second temporal difference Di k between the reference frame 1 and the current frame k is calculated.
  • a target temporal distance D jk between a target searching frame j and the current frame k is then calculated.
  • the target searching frame j is the selected reference frame.
  • a first temporal scaling factor is then calculated by dividing the target temporal distance D jk by the first temporal distance Di k , and the motion vector MVi of the first candidate unit 310 is multiplied by the first temporal scaling factor (D j j Dj k ) to obtain a scaled motion vector MVi' corresponding to the first candidate unit 310.
  • a second temporal scaling factor is then calculated by dividing the target temporal distance D jk by the second temporal distance Di k , and the motion vector MV 2 of the second candidate unit 320 is multiplied by the second temporal scaling factor (D jk /Di k ) to obtain a scaled motion vector MV 2 ' corresponding to the second candidate unit 320.
  • the scaled motion vectors MVi' and MV 2 ' are both measured in reference to the target searching frame j, and the temporal distance difference factor is therefore removed from the scaled motion vectors MVi' and MV 2 '.
  • the motion prediction module 202 can then predict the MVP of the current frame 300 according to the scaled motion vectors MVi' and MV 2 ' of the candidate units 310 and 320.
  • a flowchart of a motion prediction method 400 with temporal difference adjustment is shown.
  • the candidate units and the current unit are blocks with same or different sizes, and each of these units can be a coding unit, a prediction unit, or a prediction unit partition.
  • the candidate units comprise a left unit A on the left side of the current unit, an upper unit B on an upper side of the current unit, an upper-right unit C in line with an upper-right direction of the current unit, and an upper-left unit D in line with an upper- left direction of the current unit.
  • a plurality of motion vectors of the candidate units are then obtained (step 404).
  • a plurality of temporal scaling factors of the candidate units is then calculated according to the temporal distances between reference frames of the candidate units and the current frame (step 406).
  • a plurality of temporal distances between the reference frames of the candidate units and the current frame is first calculated, a target temporal distance between a target searching frame and the current frame is also calculated, and the target temporal distance is then respectively divided by the temporal distances corresponding to the candidate units to obtain a plurality of temporal scaling factors corresponding to the candidate units, as shown in Fig. 3.
  • the motion vectors of the candidate units are then scaled according to the temporal scaling factors to obtain a plurality of scaled motion vectors (step 408).
  • the motion vectors of the candidate units are respectively multiplied by the temporal scaling factors of the candidate units to obtain the scaled motion vectors of the candidate units, as shown in Fig. 3.
  • a motion vector predictor of the current unit is then selected from the candidate units according to the scaled motion vectors (step 410).
  • the scaled motion vectors are sorted, and a medium scaled motion vector is then selected from the scaled motion vectors as the MVP of the current unit.
  • the motion prediction module 202 determines a MVP of a current unit according to a motion vector competition method, typically, only motion vectors of two candidate units determined in a sequence level are included in the candidate set for determining MVP of the current unit.
  • the candidate set is not adaptively determined according to characteristics of the current unit. The performance of motion prediction may be improved if the candidate set is adaptively determined according to characteristics of the current unit.
  • a schematic diagram of a plurality of candidate units for motion prediction of a current unit 512 is shown.
  • the current unit 512 and the candidate units are blocks with different sizes, for example, the current unit 512 is a l 6x16 block and the candidate units are 4x4 blocks.
  • the size of current and candidate units can be the same or different, the size can be 4x4, 8x8, 8x16, 16x8, 16x16, 32x32, or 64x64.
  • motion vectors of four candidate units A, B, C, and D of the current frame 502 can be taken as candidates for determining the MVP of the current unit 512.
  • a collocated unit 514 has the same location in a reference frame 504 as that of the current unit 512 in the current frame 502, and the motion vectors of a plurality of candidate units a ⁇ j neighboring to the collocated unit 514 or within the collocated unit 514 can also be taken as candidates for determining the MVP of the current unit 512.
  • the candidate unit A in the current frame 502 is a partition on a left side of the current unit 512
  • the candidate unit B in the current frame 502 is a partition on an upper side of the current unit 512
  • the candidate unit C in the current frame 502 is a partition in line with an upper-right direction of the current unit 512
  • the candidate unit D in the current frame 502 is a partition in line with an upper-left direction of the current unit 512.
  • the candidate unit a in the reference frame 504 is a partition on a left side of the collocated unit 514
  • the candidate unit b in the reference frame 504 is a partition on an upper side of the collocated unit 514
  • the candidate unit c in the reference frame 504 is a partition in line with an upper-right direction of the collocated unit 514
  • the candidate unit d in the reference frame 504 is a partition in line with an upper-right direction of the collocated unit 514.
  • the candidate unit e in the reference frame 504 is a partition inside the collocated unit 514
  • the candidate units f and g in the reference frame 504 are partitions on a right side of the collocated unit 514
  • the candidate unit h in the reference frame 504 is a partition in line with a down-left direction of the collocated unit 514
  • the candidate unit i in the reference frame 504 is a partition on a down side of the collocated unit 514
  • the candidate unit j in the reference frame 504 is a partition in line with a down-right direction of the collocated unit 514.
  • the candidate set for determining the MVP of the current unit 512 further comprises calculated motion vectors, for example, a motion vector equal to a medium of the motion vectors of the candidate units A, B, and C, a motion vector equal to a medium of the motion vectors of the candidate units A, B, and D, and a scaled MVP derived by a method similar to Fig. 4.
  • a flowchart of a motion prediction method 600 with adaptively determination of a candidate set is shown.
  • the candidate set for a current unit 5 12 is selected from a plurality of motion vectors corresponding to the current unit 5 12 (step 602).
  • the motion vectors may comprise one or a combination of motion vectors of coded partitions/blocks in the same frame, calculated motion vectors, and motion vectors in the reference frame(s).
  • the candidate set may be determined according to one or more of the previous statistics, neighboring information, shape of the current unit, and position of the current unit. For example, the plurality of motion vectors corresponding to the current unit 5 12 is ranked according to neighboring information, and the first three motion vectors are selected to be included in the candidate set.
  • a final MVP can be selected from the candidate set by the motion vector competition method or by some other selection methods. .
  • the plurality of motion vectors is ranked according to a selection order, and the selection order is determined by weighting sum of motion differences.
  • the motion differences are calculated between each of the motion vector predictors and corresponding decoded motion vectors (i.e. real motion vectors) of the candidate units.
  • the weights can be determined by the shape and position of the current unit, or the weights can be determined by the shape and position of the neighboring blocks.
  • FIG. 7 a schematic diagram of a table recording motion difference values corresponding to different coded units and candidate units according to the invention are shown.
  • the unit A is selected to be the target coded unit.
  • a motion difference value DA,A between the motion vectors of the unit A and a candidate unit AA on a left side of the unit A is calculated.
  • a motion difference value D B ,A between the motion vectors of the unit A and a candidate unit BA on an upper side of the unit A is also calculated.
  • a motion difference value DC,A between the motion vectors of the unit A and a candidate unit CA in line with an upper-right direction of the unit A is also calculated.
  • a motion difference value DD,A between the motion vectors of the unit A and a candidate unit DA in line with an upper-left direction of the unit A is also calculated.
  • a motion difference value D a> A between the motion vectors of the unit A and a candidate unit aA on a left side of a collocated unit corresponding to the unit A is also calculated.
  • the motion difference values D b ,A, ⁇ ⁇ ⁇ , D ⁇ A corresponding to the coded unit A are also calculated.
  • the calculated motion difference values D AJA , DB,A > DC,A > DD,A > ⁇ , ⁇ > Db,A > ⁇ ⁇ ⁇ > %A corresponding to the target coded unit A are then recorded in the table of Fig. 7.
  • Another target coded unit B is then selected from the coded units (step 604), and the motion difference values DA, B , D B , B , DC, B , D D , B , ⁇ , ⁇ , Db, B , .. ⁇ , Dj jB corresponding to the target coded unit B are then calculated and recorded in the table of Fig. 7 (step 606).
  • the steps 604 and 606 are repeated until the all coded units A, B, C, D, and e have been selected to be the target coded unit and the motion difference values corresponding to the coded units A, B, C, D, and e have been calculated (step 608).
  • the other candidate units B, C, D, e, i, and j are then sequentially selected to be the target candidate unit, and the weighted sums S B , S C , S D , S e , Si, and S j corresponding to the candidate units B, C, D, e, i, and j are then sequentially calculated (steps 610 and 612).
  • At least one chosen candidate unit for motion prediction of the current unit is selected from the candidate units A, B, C, D, e, ...., i, and j according to the weighted sums S A , S B , S C , S d , S e , Si, and S j corresponding to the candidate units A, B, C, D, e, i, andj (step 616).
  • the weighted sums S A , S B , S C , S D , S e , Si, and S j are sorted according to the sizes thereof, and the candidate unit corresponding to the smallest weighted sum is determined to be the chosen candidate unit. Finally, a motion vector of the current unit 512 is predicted according to the motion vector of the chosen candidate unit.

Abstract

A motion prediction method is provided. First, a plurality of candidate units corresponding to a current frame are determined. A plurality of motion vectors of the candidate units are then obtained. A plurality of temporal scaling factors of the candidate units are then calculated according to a plurality of temporal distances between reference frames of the motion vectors and the current frame. The motion vectors of the candidate units are then scaled according to the temporal scaling factors to obtain a plurality of scaled motion vectors. Finally, a motion vector predictor for motion prediction of the current unit is selected from the candidate units according to the scaled motion vectors.

Description

MOTION PREDICTION METHOD
CROSS REFERENCE TO RELATED APPLICATIONS
This application claims the benefit of U.S. Provisional Application No. 61/295,810, filed on January 18, 2010, and U.S. Provisional Application No. 61/ 326,731, filed on April 22, 2010, the entirety of which are incorporated by reference herein.
TECHNICAL FIELD
The invention relates to video processing, and more particularly to motion prediction of video data.
BACKGROUND
The new upcoming H.264 compression standard can provide good video quality at substantially lower bit rates than previous standards by adopting features such as sub-pixel accuracy and multiple-referencing. The video compression process can be generally divided into 5 parts which include: inter-prediction/intra-prediction, transform/inverse-transform, quantization/inverse- quantization, loop filter, and entropy encoding. H.264 is used in various applications such as Blu- ray Discs, DVB broadcasting services, direct-broadcast satellite television service, cable television services, and real-time videoconferencing.
A video datastream comprises a series of frames. Each frame is divided into a plurality of coding units (e.g. macroblocks or extended macroblocks) for video processing. Each coding unit can be segmented into quad-tree partitions, and a leaf coding unit is called a prediction unit. A prediction unit can be further segmented into quad-tree partitions, and each partition is assigned with a motion parameter. In order to reduce the cost of transmitting enormous amount of motion parameters, a motion vector predictor (MVP) is calculated for each partition by referencing to adjacent coded blocks, coding efficiency can thus be improved as the motion of the adjacent blocks tends to have high spatial correlation.
Referring to Fig. 1, a schematic diagram of a current unit 100 and a plurality of neighboring units A, B, C, and D are shown. In this example, both the current unit 100 and neighboring units A, B, C and D are the same size; however, these units are not necessary to be the same size. The motion vector predictor (MVP) of the current unit 100 is predicted according to the motion vectors of the neighboring units A, B, and C, or A, B, and D if C is unavailable. When the current unit 100 is a 16χ 16 block and a motion vector of the neighboring unit C exists, a medium of the motion vectors of the neighboring units A, B, and C is determined to be the MVP of the current unit 100. When the current unit 100 is a 16χ 16 block and a motion vector of the neighboring unit C does not exist, a medium of the motion vectors of the neighboring units A, B, and D is determined to be the MVP of the current unit 100. When the current unit 100 is an 8X 16 partition in a left half of a 16x 16 block, a motion vector of the neighboring unit A is determined to be the MVP of the current unit 100. When the current unit 100 is an 8X 16 partition in a right half of a 16x 16 block, a motion vector of the neighboring unit C is determined to be the MVP of the current unit 100. When the current unit 100 is a 16χ8 partition in an upper half of a 16χ 16 block, a motion vector of the neighboring unit B is determined to be the MVP of the current unit 100. When the current unit 100 is a 16χ8 partition in a lower half of a 16χ 16 block, a motion vector of the neighboring unit A is determined to be the MVP of the current unit 100.
When an MVP of a current unit is predicted according to the motion vectors of the neighboring units A, B, C, and D, the motion vectors of the neighboring units A, B, C, and D are not properly temporal scaled. For example, the reference frame of the neighboring units A, B, and C are different, and the motion vectors of the neighboring units A, B, and C correspond to the reference frames respectively. The temporal distances between each of the reference frames and the current frame are different. The motion vectors of the neighboring units A, B, and C should therefore be temporal scaled according to the temporal distances before predicting the MVP of the current unit 100 according to the motion vectors of the neighboring units A, B, and C.
The MVP of the current unit 100 is only predicted according to the motion vectors of the neighboring units A, B, C, and D. The prediction accuracy of MVP may be further improved if more candidate MVPs are considered and the best out of the candidate MVPs is selected by rate- distortion optimization. For example, motion vector competition (MVC) is proposed to select the best MVP from a predefined candidate set specified in sequence level. The predefined candidate set may include the H.264 standard predictor (e.g. the median MV of neighboring units), MV of the collocated unit at the same location in a reference frame as that of the current unit, and MVs of the neighboring units. The recommended number of MVPs in the predefined candidate set is two. The predefined candidate set, according to the motion vector competition method, is fixed in a video sequence level.
SUMMARY
The invention provides a motion prediction method. First, a plurality of candidate units corresponding to a current unit of a current frame is determined. A plurality of motion vectors of the candidate units is then obtained. A plurality of temporal scaling factors of the candidate units is then calculated according to a plurality of temporal distances between a plurality of reference frames of the motion vectors and the current frame. The motion vectors of the candidate units are then scaled according to the temporal scaling factors to obtain a plurality of scaled motion vectors. Finally, a motion vector predictor for motion prediction of the current unit is then selected from the candidate units according to the scaled motion vectors.
The invention also provides a motion prediction method. A plurality of candidate units for motion prediction of a current unit is first determined. A plurality of coded units corresponding to the current unit is then determined. A plurality of motion difference values between the motion vectors of the candidate units corresponding to the coded units and the motion vectors of the coded units is then calculated. The motion difference values corresponding to the candidate units are then summed according to a series of weights to obtain a plurality of weighted sums respectively corresponding to the candidate units. Finally, at least one chosen candidate unit for motion prediction of the current unit is selected from the candidate units according to the weighted sums.
A detailed description is given in the following embodiments with reference to the accompanying drawings.
BRIEF DESCRIPTION OF DRAWINGS
The invention can be more fully understood by reading the subsequent detailed description and examples with references made to the accompanying drawings, wherein:
Fig. 1 is a schematic diagram of a current coding unit and a plurality of neighboring coding units;
Fig. 2 is a block diagram of a video encoder according to the invention;
Fig. 3 is a schematic diagram of scaling of a motion vector of two candidate units;
Fig. 4 is a flowchart of a motion prediction method with temporal difference adjustment;
Fig. 5 is a schematic diagram of a plurality of candidate units for motion prediction of a current unit according to an embodiment of the invention;
Figs. 6A and 6B illustrate a flowchart of a motion prediction method with adaptively chosen candidate units according to an embodiment of the invention; and
Fig. 7 is a schematic diagram of a table recording motion difference values corresponding to different coded units and candidate units according to an embodiment of the invention. DETAILED DESCRIPTION
The following description is of the best-contemplated mode of carrying out the invention. This description is made for the purpose of illustrating the general principles of the invention and should not be taken in a limiting sense. The scope of the invention is best determined by reference to the appended claims.
Referring to Fig. 2, a block diagram of a video encoder 200 is shown. In one embodiment, the video encoder 200 comprises a motion prediction module 202, a subtraction module 204, a transform module 206, a quantization module 208, and an entropy coding module 210. The video encoder 200 receives a video input and generates a bitstream as an output. The motion prediction module 202 performs motion prediction on the video input to generate predicted samples and prediction information. The subtraction module 204 then subtracts the predicted samples from the video input to obtain residues, thereby reducing video data amount from that of the video input to that of the residues. The residues are then sequentially sent to the transform module 206 and the quantization module 208. The transform module 206 performs a discrete cosine transform (DCT) on the residues to obtain transformed residues. The quantization module 208 then quantizes the transformed residues to obtain quantized residues. The entropy coding module 210 then performs entropy coding on the quantized residues and prediction information to obtain a bitstream as a video output.
A motion prediction module 202 predicts a motion vector predictor (MVP) of a current unit of a current frame according to motion vectors of a plurality of candidate units. In one embodiment, the candidate units are neighboring units neighboring to the current unit. Before the motion prediction module 202 predicts the MVP of the current unit, temporal distances between reference frames of the candidate units and a current frame are calculated, and the motion vectors of the candidate units are scaled according to the temporal distances. Referring to Fig. 3, a schematic diagram of scaling of a motion vector of two candidate units 310 and 320 is shown. A current frame k comprises two candidate units 310 and 320 for motion prediction of a current unit 300. The first candidate unit 310 has a motion vector MVi in reference to a reference frame i, and a first temporal difference Dik between the reference frame i and the current frame k is calculated. The second candidate unit 320 has a motion vector MV2 in reference to a reference frame 1, and a second temporal difference Dik between the reference frame 1 and the current frame k is calculated.
A target temporal distance Djk between a target searching frame j and the current frame k is then calculated. The target searching frame j is the selected reference frame. A first temporal scaling factor is then calculated by dividing the target temporal distance Djk by the first temporal distance Dik, and the motion vector MVi of the first candidate unit 310 is multiplied by the first temporal scaling factor (Djj Djk) to obtain a scaled motion vector MVi' corresponding to the first candidate unit 310. A second temporal scaling factor is then calculated by dividing the target temporal distance Djk by the second temporal distance Dik, and the motion vector MV2 of the second candidate unit 320 is multiplied by the second temporal scaling factor (Djk/Dik) to obtain a scaled motion vector MV2' corresponding to the second candidate unit 320. Thus, the scaled motion vectors MVi' and MV2' are both measured in reference to the target searching frame j, and the temporal distance difference factor is therefore removed from the scaled motion vectors MVi' and MV2'. The motion prediction module 202 can then predict the MVP of the current frame 300 according to the scaled motion vectors MVi' and MV2' of the candidate units 310 and 320.
Referring to Fig. 4, a flowchart of a motion prediction method 400 with temporal difference adjustment is shown. First, a plurality of candidate units for motion prediction of a current unit of a current frame is determined (step 402). The candidate units and the current unit are blocks with same or different sizes, and each of these units can be a coding unit, a prediction unit, or a prediction unit partition. In one embodiment, the candidate units comprise a left unit A on the left side of the current unit, an upper unit B on an upper side of the current unit, an upper-right unit C in line with an upper-right direction of the current unit, and an upper-left unit D in line with an upper- left direction of the current unit. A plurality of motion vectors of the candidate units are then obtained (step 404). A plurality of temporal scaling factors of the candidate units is then calculated according to the temporal distances between reference frames of the candidate units and the current frame (step 406). In one embodiment, a plurality of temporal distances between the reference frames of the candidate units and the current frame is first calculated, a target temporal distance between a target searching frame and the current frame is also calculated, and the target temporal distance is then respectively divided by the temporal distances corresponding to the candidate units to obtain a plurality of temporal scaling factors corresponding to the candidate units, as shown in Fig. 3.
The motion vectors of the candidate units are then scaled according to the temporal scaling factors to obtain a plurality of scaled motion vectors (step 408). In one embodiment, the motion vectors of the candidate units are respectively multiplied by the temporal scaling factors of the candidate units to obtain the scaled motion vectors of the candidate units, as shown in Fig. 3. A motion vector predictor of the current unit is then selected from the candidate units according to the scaled motion vectors (step 410). In one embodiment, the scaled motion vectors are sorted, and a medium scaled motion vector is then selected from the scaled motion vectors as the MVP of the current unit. When the motion prediction module 202 determines a MVP of a current unit according to a motion vector competition method, typically, only motion vectors of two candidate units determined in a sequence level are included in the candidate set for determining MVP of the current unit. In addition, the candidate set is not adaptively determined according to characteristics of the current unit. The performance of motion prediction may be improved if the candidate set is adaptively determined according to characteristics of the current unit.
Referring to Fig. 5, a schematic diagram of a plurality of candidate units for motion prediction of a current unit 512 according to an embodiment of the invention is shown. In this embodiment, the current unit 512 and the candidate units are blocks with different sizes, for example, the current unit 512 is a l 6x16 block and the candidate units are 4x4 blocks. In another embodiment, the size of current and candidate units can be the same or different, the size can be 4x4, 8x8, 8x16, 16x8, 16x16, 32x32, or 64x64. In this embodiment, motion vectors of four candidate units A, B, C, and D of the current frame 502 can be taken as candidates for determining the MVP of the current unit 512. In addition, a collocated unit 514 has the same location in a reference frame 504 as that of the current unit 512 in the current frame 502, and the motion vectors of a plurality of candidate units a~j neighboring to the collocated unit 514 or within the collocated unit 514 can also be taken as candidates for determining the MVP of the current unit 512.
The candidate unit A in the current frame 502 is a partition on a left side of the current unit 512, the candidate unit B in the current frame 502 is a partition on an upper side of the current unit 512, the candidate unit C in the current frame 502 is a partition in line with an upper-right direction of the current unit 512, and the candidate unit D in the current frame 502 is a partition in line with an upper-left direction of the current unit 512. The candidate unit a in the reference frame 504 is a partition on a left side of the collocated unit 514, the candidate unit b in the reference frame 504 is a partition on an upper side of the collocated unit 514, the candidate unit c in the reference frame 504 is a partition in line with an upper-right direction of the collocated unit 514, and the candidate unit d in the reference frame 504 is a partition in line with an upper-right direction of the collocated unit 514. In addition, the candidate unit e in the reference frame 504 is a partition inside the collocated unit 514, the candidate units f and g in the reference frame 504 are partitions on a right side of the collocated unit 514, the candidate unit h in the reference frame 504 is a partition in line with a down-left direction of the collocated unit 514, the candidate unit i in the reference frame 504 is a partition on a down side of the collocated unit 514, and the candidate unit j in the reference frame 504 is a partition in line with a down-right direction of the collocated unit 514. In one embodiment, the candidate set for determining the MVP of the current unit 512 further comprises calculated motion vectors, for example, a motion vector equal to a medium of the motion vectors of the candidate units A, B, and C, a motion vector equal to a medium of the motion vectors of the candidate units A, B, and D, and a scaled MVP derived by a method similar to Fig. 4.
After a plurality of motion vectors corresponding to a current unit 5 12 is determined to be included in the candidate set, at least one motion vector is adaptively selected from the candidate set for motion prediction of the current unit 5 12. Referring to Fig. 6, a flowchart of a motion prediction method 600 with adaptively determination of a candidate set is shown. The candidate set for a current unit 5 12 is selected from a plurality of motion vectors corresponding to the current unit 5 12 (step 602). The motion vectors may comprise one or a combination of motion vectors of coded partitions/blocks in the same frame, calculated motion vectors, and motion vectors in the reference frame(s). In one embodiment, the candidate set corresponding to the current unit 5 12 shown in Fig. 5 comprises motion vectors of the units A, B, C, and D in the current frame 502 and a motion vector of the unit e in the reference frame 504. The candidate set may be determined according to one or more of the previous statistics, neighboring information, shape of the current unit, and position of the current unit. For example, the plurality of motion vectors corresponding to the current unit 5 12 is ranked according to neighboring information, and the first three motion vectors are selected to be included in the candidate set. A final MVP can be selected from the candidate set by the motion vector competition method or by some other selection methods. . In some embodiments, the plurality of motion vectors is ranked according to a selection order, and the selection order is determined by weighting sum of motion differences. The motion differences are calculated between each of the motion vector predictors and corresponding decoded motion vectors (i.e. real motion vectors) of the candidate units. The weights can be determined by the shape and position of the current unit, or the weights can be determined by the shape and position of the neighboring blocks.
Referring to Fig. 7, a schematic diagram of a table recording motion difference values corresponding to different coded units and candidate units according to the invention are shown. For example, assume that the unit A is selected to be the target coded unit. A motion difference value DA,A between the motion vectors of the unit A and a candidate unit AA on a left side of the unit A is calculated. A motion difference value DB,A between the motion vectors of the unit A and a candidate unit BA on an upper side of the unit A is also calculated. A motion difference value DC,A between the motion vectors of the unit A and a candidate unit CA in line with an upper-right direction of the unit A is also calculated. A motion difference value DD,A between the motion vectors of the unit A and a candidate unit DA in line with an upper-left direction of the unit A is also calculated. A motion difference value Da>A between the motion vectors of the unit A and a candidate unit aA on a left side of a collocated unit corresponding to the unit A is also calculated. Similarly, the motion difference values Db,A, · · · , D^A corresponding to the coded unit A are also calculated. The calculated motion difference values DAJA, DB,A> DC,A> DD,A> Γ ,Α> Db,A> · · ·■> %A corresponding to the target coded unit A are then recorded in the table of Fig. 7. Another target coded unit B is then selected from the coded units (step 604), and the motion difference values DA,B, DB,B, DC,B, DD,B, Γ ,Β, Db,B, .. ·, DjjB corresponding to the target coded unit B are then calculated and recorded in the table of Fig. 7 (step 606). The steps 604 and 606 are repeated until the all coded units A, B, C, D, and e have been selected to be the target coded unit and the motion difference values corresponding to the coded units A, B, C, D, and e have been calculated (step 608).
After all motion differences corresponding to the coded units A, B, C, D, and e have been calculated, a selection order of the plurality of motion vectors are determined by weighting sum of the motion differences (step 610). For example, if the candidate unit A is selected as the target candidate unit, the motion difference values DAJA, DA,B, F) a,C, F) a,D, and DA,E corresponding to the target candidate unit A are then summed according to a series of weights WA, WB, WC, WD, and We to obtain a weighted sum SA = [(DAjAxWA)+(DAjBxWB)+ (DAjcxWc)+ (DAjD xWD)+ (DA>exWe)] corresponding to the target candidate unit A, wherein the weights WA, WB, WC, WD, and We respectively correspond to one of the coded units A, B, C, D, and e. The other candidate units B, C, D, e, i, and j are then sequentially selected to be the target candidate unit, and the weighted sums SB, SC, SD, Se, Si, and Sj corresponding to the candidate units B, C, D, e, i, and j are then sequentially calculated (steps 610 and 612).
When all candidate units have been selected to be the target candidate unit and the weighted sums SA, SB, SC, SD, Se, Si, and Sj corresponding to all the candidate units A, B, C, D, e,— , i, and j have been calculated (step 614), at least one chosen candidate unit for motion prediction of the current unit is selected from the candidate units A, B, C, D, e, ...., i, and j according to the weighted sums SA, SB, SC, Sd, Se, Si, and Sj corresponding to the candidate units A, B, C, D, e, i, andj (step 616). In one embodiment, the weighted sums SA, SB, SC, SD, Se, Si, and Sj are sorted according to the sizes thereof, and the candidate unit corresponding to the smallest weighted sum is determined to be the chosen candidate unit. Finally, a motion vector of the current unit 512 is predicted according to the motion vector of the chosen candidate unit.
While the invention has been described by way of example and in terms of preferred embodiment, it is to be understood that the invention is not limited thereto. To the contrary, it is intended to cover various modifications and similar arrangements (as would be apparent to those skilled in the art). Therefore, the scope of the appended claims should be accorded the broadest interpretation so as to encompass all such modifications and similar arrangements.

Claims

1. A motion prediction method, comprising:
determining a plurality of candidate units corresponding to a current unit of a current frame; obtaining a plurality of motion vectors of the candidate units;
calculating a plurality of temporal scaling factors of the candidate units according to a plurality of temporal distances between a plurality of reference frames of the motion vectors and the current frame;
scaling the motion vectors of the candidate units according to the temporal scaling factors to obtain a plurality of scaled motion vectors; and
selecting a motion vector predictor for motion prediction of the current unit from the candidate units according to the scaled motion vectors.
2. The motion prediction method as claimed in claim 1, wherein the method further comprises: predicting a motion vector of the current unit according to the motion vector of the motion vector predictor.
3. The motion prediction method as claimed in claim 1, wherein calculation of the temporal scaling factors comprises:
calculating the temporal distances between the reference frames of the motion vectors of the candidate units and the current frame;
calculating a target temporal distance between a target searching frame and the current frame; and
respectively dividing the target temporal distance by the temporal distances to obtain the temporal scaling factors.
4. The motion prediction method as claimed in claim 3, wherein scaling of the motion vectors of the candidate units comprises:
respectively multiplying the motion vectors of the candidate units by the temporal scaling factors of the candidate units to obtain the scaled motion vectors of the candidate units.
5. The motion prediction method as claimed in claim 1, wherein selection of the motion vector predictor comprises:
calculating a medium scaled motion vector from the scaled motion vectors; and
determining the candidate unit corresponding to the medium scaled motion vector to be the motion vector predictor.
6. The motion prediction method as claimed in claim 1, wherein the candidate units comprise a left unit on the left side of the current unit, an upper unit on an upper side of the current unit, an upper-right unit in line with an upper-right direction of the current unit, and an upper-left unit in line with an upper-left direction of the current unit.
7. The motion prediction method as claimed in claim 1, wherein the current unit and the candidate units are macro blocks or blocks.
8. A motion prediction method, comprising:
determining a plurality of candidate units for motion prediction of a current unit;
determining a plurality of coded units corresponding to the current unit;
calculating a plurality of motion difference values between the motion vectors of the candidate units corresponding to the coded units and the motion vectors of the coded units;
summing the motion difference values corresponding to the candidate units according to a series of weights to obtain a plurality of weighted sums respectively corresponding to the candidate units; and
selecting at least one chosen candidate unit for motion prediction of the current unit from the candidate units according to the weighted sums.
9. The motion prediction method as claimed in claim 8, wherein the method further comprises: predicting a motion vector of the current unit according to the motion vector of the chosen candidate unit.
10. The motion prediction method as claimed in claim 8, wherein calculation of the motion difference values comprises:
selecting a target coded unit from the coded units;
calculating the motion difference values between the motion vectors of the candidate units corresponding to the target coded unit and the motion vector of the target coded unit; and
repeating selection of the target coded unit and calculation of the motion difference values corresponding to the target coded unit until all of the coded units have been selected as the target coded unit.
11. The motion prediction method as claimed in claim 8, wherein summing of the motion difference values comprises:
selecting a target candidate unit from the candidate units;
summing the motion difference values corresponding to the target candidate unit according to the series of weights to obtain the weighted sum corresponding to the target candidate unit; and repeating selection of the target candidate unit and summation of the motion difference values corresponding to the target candidate unit until all of the candidate units have been selected as the target candidate unit.
12. The motion prediction method as claimed in claim 11, wherein the weights respectively correspond to one of the coded units.
13. The motion prediction method as claimed in claim 8, wherein selection of the chosen candidate units comprises:
sorting the weighted sums; and
selecting the candidate unit corresponding to the smallest weighted sum to be the chosen candidate unit.
14. The motion prediction method as claimed in claim 8, wherein the coded units comprise a left unit on the left side of the current unit, an upper unit on an upper side of the current unit, an upper-right unit in line with an upper-right direction of the current unit, an upper-left unit in line with an upper-left direction of the current unit, and a collocated unit on the same location in a reference frame as that of the current unit in a current frame.
15. The motion prediction method as claimed in claim 8, wherein the candidate units comprise a left unit on the left side of the current unit, an upper unit on an upper side of the current unit, an upper-right unit in line with an upper-right direction of the current unit, and an upper-left unit in line with an upper-left direction of the current unit.
16. The motion prediction method as claimed in claim 15, wherein the candidate units further comprise a first medium unit with a motion vector equal to a medium of the motion vectors of the left unit, the upper unit, and the upper-right unit, and a second medium unit with a motion vector equal to a medium of the motion vectors of the left unit, the upper unit, and the upper-left unit.
17. The motion prediction method as claimed in claim 15, wherein a collocated unit has the same location in a reference frame as that of the current unit in a current frame, and the candidate units further comprise a left collocated unit on the left side of the collocated unit, an upper collocated unit on an upper side of the collocated unit, an upper-right collocated unit in line with an upper-right direction of the collocated unit, and an upper-left collocated unit in line with an upper- left direction of the collocated unit, the collocated unit, a right collocated unit on the right side of the collocated unit, a down-left collocated unit in line with a down-left direction of the collocated unit, a down collocated unit in line with a down-side of the collocated unit, and a down-right collocated unit in line with a down-right direction of the collocated unit.
18. The motion prediction method as claimed in claim 8, wherein the current unit and the candidate units are macro blocks or blocks.
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