IP Library Granted Patent US 12,301,819
Granted Patent B2
US 12,301,819 · App. 18/482,683 · Granted May 13, 2025

Entropy coding supporting mode switching

Inventors: Valeri George (Berlin, DE); Benjamin Bross (Berlin, DE); Heiner Kirchhoffer (Berlin, DE); Detlev Marpe (Berlin, DE); Tung Nguyen (Berlin, DE); Matthias Preiss (Berlin, DE); Mischa Siekmann (Berlin, DE); Jan Stegemann (Berlin, DE); Thomas Wiegand (Berlin, DE); Christian Bartnik (Berlin, DE)
Assignee: Dolby Video Compression, LLC
H04N19/13H03M7/42H04N19/124H04N19/132H04N19/174H04N19/184H04N19/50H04N19/513H04N19/52H04N19/61H04N19/70H04N19/91
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Quick Facts
Patent No.
US 12,301,819
App. No.
18/482,683
Granted
May 13, 2025
Kind
B2
Abstract

A decoder for decoding a data stream into which media data is coded has a mode switch configured to activate a low-complexity mode or a high-efficiency mode depending on the data stream, an entropy decoding engine configured to retrieve each symbol of a sequence of symbols by entropy decoding using a selected one of a plurality of entropy decoding schemes, a desymbolizer configured to desymbolize the sequence of symbols to obtain a sequence of syntax elements, a reconstructor configured to reconstruct the media data based on the sequence of syntax elements, selection depending on the activated low-complexity mode or the high-efficiency mode. In another aspect, a desymbolizer is configured to perform desymbolization such that the control parameter varies in accordance with the data stream at a first rate in case of the high-efficiency mode being activated and the control parameter is constant irrespective of the data stream or changes depending on the data stream, but at a second lower rate in case of the low-complexity mode being activated.

Claims (29)

1. A decoder for decoding a data stream including encoded data of a video, the decoder comprising:

an entropy decoding engine configured to decode data from the data stream based on a selected one of a plurality of entropy decoding schemes to obtain a sequence of symbols, wherein the selected one of the plurality of entropy decoding schemes includes a context adaptive binary arithmetic coding scheme, and wherein the selected one of the plurality of entropy decoding schemes is selected based on activation of one of a low complexity mode and a high-efficiency mode, the plurality of entropy decoding schemes differ from each other in terms of a different probability estimate used in corresponding arithmetic decoding, and with respect to at least one symbol of the sequence of symbols, the entropy decoding engine is configured to:

select a context corresponding to the at least one symbol, the context having associated therewith a probability model,

decode the at least one symbol using the context based on the selected one of the plurality of entropy decoding schemes, and

update the probability model; and

a desymbolizer configured to desymbolize the sequence of symbols to obtain a sequence of syntax elements.

2. The decoder according to claim 1 , wherein the at least one symbol is associated with one of a plurality of symbol types, and the entropy decoding engine is configured to select the context based on previously decoded symbols of the symbol type associated with the at least one symbol.

3. The decoder according to claim 1 , wherein the probability model is associated with a probability state index having a first probability state accuracy for the high-efficiency mode, and a second probability state accuracy, lower than the first probability state accuracy, for the low complexity mode.

4. The decoder according to claim 1 , wherein the data stream comprises information associated with color samples of the video.

5. The decoder according to claim 1 , wherein the data stream comprises information associated with a depth map of the video.

6. The decoder according to claim 1 , wherein the selected one of the plurality of entropy decoding schemes is selected based on previously retrieved symbols of the sequence of symbols in case of the high-efficiency mode being activated and independent from any previously retrieved symbols of the sequence of symbols in case of the low-complexity mode being activated.

7. The decoder according to claim 1 , wherein the data stream is structured into consecutive portions and each symbol of the sequence of symbols is associated with a respective one of a plurality of symbol types, wherein, for symbols of a predetermined symbol type within a current portion, selection of the selected one of the plurality of entropy decoding schemes varies depending on previously retrieved symbols of the sequence of symbols of the predetermined symbol type within the current portion in case of the high-efficiency mode being activated, and is left constant within the current portion in case of the low-complexity mode being activated.

8. The decoder according to claim 1 , wherein each symbol of the sequence of symbols is associated with a respective one of a plurality of symbol types, wherein the entropy decoding engine is configured to, for a predetermined symbol of a predetermined symbol type,

select the context depending on previously retrieved symbols of the sequence of symbols, and wherein:

selection of the selected one of the plurality of entropy decoding schemes depends on the probability model associated with the context along with updating the probability model associated with the context depending on the predetermined symbol in case of the high-efficiency mode being activated, and

selection of the selected one of the plurality of entropy decoding schemes depends on the probability model associated with the context along with leaving the probability model associated with the context constant in case of the low-complexity mode being activated.

9. The decoder according to claim 1 , wherein each symbol of the sequence of symbols is associated with a respective one of a plurality of symbol types, wherein selection of the selected one of the plurality of entropy decoding schemes depends, for symbols of each of a number of predetermined symbol types, on a respective probability model associated the respective predetermined symbol such that the number of predetermined symbol types is lower in the low complexity mode than compared to the high-efficiency mode.

10. The decoder according to claim 1 , wherein each symbol of the sequence of symbols is associated with a respective one of a plurality of symbol types, wherein selection of the selected one of the plurality of entropy decoding schemes depends, for symbols of a predetermined symbol type, on a probability model associated with the predetermined symbol type along with or without updating the associated probability model, such that a length of a learning phase of the sequence of symbols over which the selection for the symbols of the predetermined symbol type is performed along with the update, is shorter in the low complexity mode than compared to the high-efficiency mode.

11. The decoder according to claim 1 , wherein each symbol of the sequence of symbols is associated with a respective one of a plurality of symbol types, wherein selection of the selected one of the plurality of entropy decoding schemes depends, for symbols of a predetermined symbol type, on a probability model associated with the predetermined symbol type along with or without updating the associated probability model such that a frequency at which the selection for the symbols of the predetermined symbol type is performed along with the update, is lower in the low complexity mode than compared to the high-efficiency mode.

12. An encoder for encoding data of a video into a data stream, the encoder comprising:

a constructor configured to precode the data of the video into a sequence of syntax elements;

a symbolizer configured to symbolize the sequence of syntax elements into a sequence of symbols; and

an entropy encoding engine configured to encode each symbol of the sequence of symbols into the data stream using a selected one of a plurality of entropy encoding schemes, wherein the selected one of the plurality of entropy encoding schemes includes a context adaptive binary arithmetic coding scheme, and wherein the selected one of the plurality of entropy decoding schemes is selected based on activation a low complexity mode or a high-efficiency mode, the plurality of entropy decoding schemes differ from each other in terms of a different probability estimate used in corresponding arithmetic encoding, and with respect to at least one symbol of the sequence of symbols, the entropy encoding engine is configured to:

select a context corresponding to the at least one symbol, the context having associated therewith a probability model,

encode the at least one symbol using the context based on the selected one of the plurality of entropy encoding schemes, and

update the probability model.

13. The encoder according to claim 12 , wherein the at least one symbol is associated with one of a plurality of symbol types, and the entropy encoding engine is configured to select the context based on previously encoded symbols of the symbol type associated with the at least one symbol.

14. The encoder according to claim 12 , wherein the data stream comprises information associated with color samples of the video.

15. The encoder according to claim 12 , wherein the data stream comprises information associated with a depth map of the video.

Assignments (2)
CHANGE OF NAME Recorded Jan 30, 2026
From: GE VIDEO COMPRESSION, LLC
To: DOLBY VIDEO COMPRESSION, LLC
Reel/Frame 074536/0781 →
CHANGE OF NAME Recorded Nov 26, 2024
From: GE VIDEO COMPRESSION, LLC
To: DOLBY VIDEO COMPRESSION, LLC
Reel/Frame 069450/0772 →
Continuity (12)
Continuation 17590596 · Feb 1, 2022
Continuation 16867149 · May 5, 2020
Continuation 16693886 · Nov 25, 2019
Continuation 16454247 · Jun 27, 2019
Continuation 16259738 · Jan 28, 2019
Continuation 16037914 · Jul 17, 2018
Continuation 15843679 · Dec 15, 2017
Continuation 14108173 · Dec 16, 2013
Continuation PCTEP2012061615 · Jun 18, 2012
Provisional Application 61508506 · Jul 15, 2011
Provisional Application 61497794 · Jun 16, 2011
Related Publication 20240048708A1 · Feb 8, 2024
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