IP Library Granted Patent US 11,973,974
Granted Patent B2
US 11,973,974 · App. 18/075,169 · Granted Apr 30, 2024

Methods and apparatus for reducing the coding latency of decoder-side motion refinement

Inventors: Xiaoyu Xiu (San Diego, CA); Yuwen He (San Diego, CA); Yan Ye (San Diego, CA)
Assignee: VID SCALE, INC.
H04N19/521H04N19/176H04N19/577H04N19/86
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Quick Facts
Patent No.
US 11,973,974
App. No.
18/075,169
Granted
Apr 30, 2024
Kind
B2
Abstract

Embodiments of video coding systems and methods are described for reducing coding latency introduced by decoder-side motion vector refinement (DMVR). In one example, two non-refined motion vectors are identified for coding of a first block of samples (e.g. a first coding unit) using bi-prediction. One or both of the non-refined motion vectors are used to predict motion information for a second block of samples (e.g. a second coding unit). The two non-refined motion vectors are refined using DMVR, and the refined motion vectors are used to generate a prediction signal of the first block of samples. Such embodiments allow the second block of samples to be coded substantially in parallel with the first block without waiting for completion of DMVR on the first block. In additional embodiments, optical-flow-based techniques are described for motion vector refinement.

Claims (40)

1. A video decoding method comprising:

refining a first non-refined motion vector and a second non-refined motion vector of a first block to generate a first refined motion vector and a second refined motion vector;

predicting the first block with bi-prediction using the first refined motion vector and the second refined motion vector;

determining a deblocking boundary filtering strength based at least in part on the first non-refined motion vector and the second non-refined motion vector; and

applying a filter to at least one boundary of the first block using the determined deblocking boundary filtering strength.

2. The method of claim 1 wherein refining of the first non-refined motion vector and the second non-refined motion vector is performed using decoder-side motion vector refinement (DMVR).

3. The method of claim 1 , wherein refining the first non-refined motion vector and the second non-refined motion vector comprises selecting the first refined motion vector and the second refined motion vector to substantially minimize an error metric.

4. The method of claim 1 , further comprising:

obtaining a residual for the first block from a bitstream; and

reconstructing the first block by adding the residual to the first block, wherein applying the filter is performed after reconstructing the first block.

5. A video decoder apparatus comprising one or more processors configured to perform:

refining a first non-refined motion vector and a second non-refined motion vector of a first block to generate a first refined motion vector and a second refined motion vector;

predicting the first block with bi-prediction using the first refined motion vector and the second refined motion vector;

determining a deblocking boundary filtering strength based at least in part on the first non-refined motion vector and the second non-refined motion vector; and

applying a filter to at least one boundary of the first block using the determined deblocking boundary filtering strength.

6. The apparatus of claim 5 , wherein refining of the first non-refined motion vector and the second non-refined motion vector is performed using decoder-side motion vector refinement (DMVR).

7. The apparatus of claim 5 , wherein refining the first non-refined motion vector and the second non-refined motion vector comprises selecting the first refined motion vector and the second refined motion vector to substantially minimize an error metric.

8. The apparatus of claim 5 , further configured to perform:

obtaining a residual for the first block from a bitstream; and

reconstructing the first block by adding the residual to the first block, wherein applying the filter is performed after reconstructing the first block.

9. A video encoding method comprising:

refining a first non-refined motion vector and a second non-refined motion vector of a first block to generate a first refined motion vector and a second refined motion vector;

predicting the first block with bi-prediction using the first refined motion vector and the second refined motion vector;

determining a deblocking boundary filtering strength based at least in part on the first non-refined motion vector and the second non-refined motion vector; and

applying a filter to at least one boundary of the first block using the determined deblocking boundary filtering strength.

10. The method of claim 9 wherein refining of the first non-refined motion vector and the second non-refined motion vector is performed using decoder-side motion vector refinement (DMVR).

11. The method of claim 9 , wherein refining the first non-refined motion vector and the second non-refined motion vector comprises selecting the first refined motion vector and the second refined motion vector to substantially minimize an error metric.

12. The method of claim 9 , further comprising:

obtaining a residual for the first block by subtracting the first block from an input block; and

reconstructing the first block by adding the residual to the first block, wherein applying the filter is performed after reconstructing the first block.

13. A video encoder apparatus comprising one or more processors configured to perform:

refining a first non-refined motion vector and a second non-refined motion vector of a first block to generate a first refined motion vector and a second refined motion vector;

predicting the first block with bi-prediction using the first refined motion vector and the second refined motion vector;

determining a deblocking boundary filtering strength based at least in part on the first non-refined motion vector and the second non-refined motion vector; and

applying a filter to at least one boundary of the first block using the determined deblocking boundary filtering strength.

14. The apparatus of claim 13 wherein refining of the first non-refined motion vector and the second non-refined motion vector is performed using decoder-side motion vector refinement (DMVR).

15. The apparatus of claim 13 , wherein refining the first non-refined motion vector and the second non-refined motion vector comprises selecting the first refined motion vector and the second refined motion vector to substantially minimize an error metric.

16. The method of claim 13 , further configured to perform:

obtaining a residual for the first block by subtracting the first block from an input block; and

reconstructing the first block by adding the residual to the first block, wherein applying the filter is performed after reconstructing the first block.

Assignments (2)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jul 11, 2024
From: VID SCALE, INC.
To: INTERDIGITAL VC HOLDINGS, INC.
Reel/Frame 068284/0031 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Oct 27, 2023
From: XIU, XIAOYU; HE, YUWEN; YE, YAN
To: VID SCALE, INC.
Reel/Frame 065373/0139 →