Systems and methods for versatile video coding

The implementation of wraparound motion compensation in video coding systems addresses inefficiencies in handling diverse video formats by enhancing coding efficiency and flexibility, particularly for 360-degree video.

JP2025183232APending Publication Date: 2025-12-16INTERDIGITAL MADISON PATENT HLDG
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Patent Information

Application Number
JP2025136165
Authority / Receiving Office
JP · JP
Patent Type
Applications
Current Assignee / Owner
Priority Date
2019-10-07
Filing Date
2025-08-19
Publication Date
2025-12-16

AI Technical Summary

Technical Problem

Existing video coding standards struggle to efficiently handle various video formats such as standard dynamic range, high dynamic range, and omnidirectional video, particularly in terms of coding efficiency and wraparound motion compensation.

Method used

Implementing systems and methods for versatile video coding that include wraparound motion compensation, where a video decoding device determines and applies wraparound motion compensation based on video data, and a video encoding apparatus encodes information about sub-pictures with wraparound motion compensation settings, enabling efficient encoding and decoding of sub-pictures.

Benefits of technology

Enhances coding efficiency by allowing flexible and efficient handling of diverse video formats, including 360-degree video, through improved motion compensation techniques.

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Abstract

To provide systems, methods, and instrumentalities associated with versatile video coding.SOLUTION: Provided is a video processing instrumentality (video encoder 100) which supports an access unit delimiter (AUD) to which signaling is performed by a video bit stream and / or an AUD network abstraction layer (NAL) unit (e.g., in the case of standard compliant videos).The signaling of certain syntax elements may be moved from a slice header to a picture header and / or a layer AUD. The dependency between AUD and one or more parameter sets may be explored. Syntax elements may be signaled to enable wrap-around motion compensation for certain sub-picture(s) and specify wrap-around motion compensation offsets for the sub-picture(s).SELECTED DRAWING: Figure 1
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Description

[Technical Field]

[0001] (CROSS-REFERENCE TO RELATED APPLICATIONS) This application claims the benefit of U.S. Provisional Patent Application Nos. 62 / 902,647, filed September 19, 2019, and 62 / 911,797, filed October 7, 2019, the disclosures of which are incorporated herein by reference in their entireties. [Background technology]

[0002] Video coding standards have been constantly developed to improve coding efficiency (e.g., compression efficiency) to support various video formats such as standard dynamic range video, high dynamic range video, omnidirectional video, and projection. Summary of the Invention

[0003] Described herein are systems, methods, and means associated with versatile video coding. A video decoding device described herein may include one or more processors configured to obtain video data, determine whether to apply wraparound motion compensation to a first sub-picture of a coded picture based on the video data, and, in response to a determination that wraparound motion compensation is applied to the first sub-picture, perform wraparound motion compensation on the first sub-picture. The video data may include information about the first sub-picture, including, for example, an indication of whether wraparound motion compensation is enabled for the first sub-picture. The coded picture may further include a second sub-picture, and the video data may include information about the second sub-picture, including, for example, an indication of whether wraparound motion compensation is enabled for the second sub-picture. For example, the video data may include information indicating that wraparound motion compensation is enabled for the first sub-picture and disabled for the second sub-picture. The video data may also include information specifying respective wrap-out offsets associated with the first subpicture and the second subpicture (e.g., when wrap-around motion compensation is enabled for the first subpicture or the second subpicture), and one or more processors of the video decoding device may be configured to perform wrap-around compensation based on the wrap-around offsets associated with the first subpicture or the second subpicture.

[0004] In an example, the information in the video data may include a picture parameter set (PPS) syntax element indicating that wraparound motion compensation is enabled and a sequence parameter set (SPS) syntax element indicating that the first sub-picture (or the second sub-picture) is to be processed as a picture. In an example, performing wraparound motion compensation on the first sub-picture may include performing luma sample bilinear interpolation of the first sub-picture based on a wraparound offset associated with the first sub-picture. In an example, the wraparound motion compensation described herein may be performed horizontally, and the coded picture including the first sub-picture and the second sub-picture may be associated with 360-degree video.

[0005] A video encoding apparatus described herein may include one or more processors that may be configured to encode a picture, obtain information indicating whether wraparound motion compensation is enabled for a first sub-picture of the encoded picture and a wraparound offset associated with the first sub-picture, and form a set of encoded data that includes the encoded picture and the obtained information. In an example, the encoded picture may further include a second sub-picture, and the obtained information may further indicate that wraparound motion compensation is enabled for the first sub-picture and disabled for the second sub-picture. In an example, the obtained information may include a picture parameter set (PPS) syntax element indicating that wraparound motion compensation is enabled and a sequence parameter set (SPS) syntax element indicating that the first sub-picture is to be treated as a picture. In an example, the one or more processors of the video encoding apparatus may be further configured to transmit the set of encoded data to a receiving device. [Brief explanation of the drawings]

[0006] [Figure 1] 1 illustrates an exemplary video encoder.

[0007] [Figure 2] 1 illustrates an exemplary video decoder.

[0008] [Figure 3] 1 illustrates a block diagram of an example system in which various aspects and examples may be implemented.

[0009] [Figure 4] FIG. 1 illustrates an exemplary picture partitioned into tiles and slices.

[0010] [Figure 5] FIG. 10 illustrates an exemplary subpicture grid that may be used to indicate subpicture IDs.

[0011] [Figure 6] FIG. 10 is a diagram showing an example of applying wraparound to an original picture and a merged picture.

[0012] [Figure 7] FIG. 1 illustrates an example of applying geometric padding for an equirectangular projection format (ERP).

[0013] [Figure 8] FIG. 10 illustrates an example of sub-picture wrap-around padding within a picture.

[0014] [Figure 9] FIG. 10 is a diagram illustrating an example of sub-picture wrap-around padding.

[0015] [Figure 10] FIG. 10 is a diagram illustrating an example of a subpicture grid.

[0016] [Figure 11] FIG. 1 illustrates an example of a layer-based gradual decoding refresh (GDR) picture.

[0017] [Figure 12A] FIG. 1 is a system diagram illustrating an example communication system in which one or more disclosed embodiments may be implemented.

[0018] [Figure 12B] 12B is a system diagram illustrating an exemplary wireless transmit / receive unit (WTRU) that may be used within the communication system shown in FIG. 12A, according to one embodiment.

[0019] [Figure 12C] 12B is a system diagram illustrating an example radio access network (RAN) and an example core network (CN) that may be used within the communication system illustrated in FIG. 12A, according to one embodiment.

[0020] [Figure 12D] FIG. 12B is a system diagram illustrating a further exemplary RAN and a further exemplary CN that may be used within the communication system illustrated in FIG. 12A, according to one embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0021] Exemplary embodiments will now be described in detail with reference to various figures. While this description provides detailed examples of possible implementations, it should be noted that the details are intended to be illustrative and in no way limit the scope of the present application.

[0022] This application describes various aspects, including tools, features, examples, models, approaches, and the like. Many of these aspects are described with specificity and, often in a manner that may sound limiting, at least to illustrate their individual characteristics. However, this is for clarity of explanation and does not limit the application or scope of the aspects. In fact, all of the different aspects may be combined and interchanged to provide further aspects. Furthermore, aspects may also be combined and interchanged with aspects described in prior applications.

[0023] Aspects described and contemplated in this application may be implemented in many different forms. While Figures 1-12D may provide some examples, other examples are contemplated, and the discussion of Figures 1-12D is not intended to limit the breadth of implementations. At least one of the aspects relates generally to encoding and decoding video, and at least one other aspect relates generally to transmitting a generated or encoded bitstream. These and other aspects may be implemented as a method, an apparatus, a computer-readable storage medium having stored thereon instructions for encoding or decoding video data according to any of the described methods, and / or a computer-readable storage medium having stored thereon a bitstream generated according to any of the described methods.

[0024] In this application, the terms "reconstructed" and "decoded" may be used interchangeably, the terms "pixel" and "sample" may be used interchangeably, and the terms "image," "picture," and "frame" may be used interchangeably. Typically, but not necessarily, the term "reconstructed" is used on the encoder side and "decoded" is used on the decoder side.

[0025] Various methods are described herein, each of which includes one or more steps or actions for achieving the described method. Unless a specific order of steps or actions is required for the proper operation of the method, the order and / or use of specific steps and / or actions may be modified or combined. Additionally, terms such as “first,” “second,” etc. may be used in various examples to modify elements, components, steps, operations, etc., e.g., “first decode” and “second decode.” The use of such terms does not imply a modified order of operations unless specifically required. Thus, in this example, the first decode need not be performed before the second decode, but could occur, for example, before, during, or within an overlapping time with the second decode.

[0026] Various methods and other aspects described herein may be used to modify modules, e.g., decoding modules, of video encoder 100 and decoder 200 as shown in Figures 1 and 2. Furthermore, the aspects are not limited to VVC or HEVC, but may be applied, for example, to other standards and recommendations, and extensions of any such standards and recommendations (including VVC and HEVC), whether existing or developed in the future. Unless otherwise indicated or technically excluded, the aspects described herein may be used individually or in combination.

[0027] In this application, various numerical values ​​are used, such as, for example, a subpicture grid having a size of 4x4, values ​​in the range of 0 to 254, etc. The specific values ​​are for illustrative purposes, and the described aspects are not limited to these specific values.

[0028] 1 shows an encoder 100. While variations of this encoder 100 are contemplated, the encoder 100 is described below for purposes of clarity without describing all possible variations.

[0029] Before being encoded, a video sequence may undergo encoding pre-processing (101), such as applying a color transformation to the input color picture (e.g., converting from RGB 4:4:4 to YCbCr 4:2:0) or performing a remapping of the input picture components to make the signal distribution more resilient to compression (e.g., using histogram equalization of one of the color components). Metadata may be associated with the pre-processing and attached to the bitstream.

[0030] In encoder 100, pictures are coded by encoder elements as described below. The picture to be coded is partitioned (102) and processed, for example, in units of CUs. Each unit is coded, for example, using either intra mode or inter mode. When a unit is coded in intra mode, intra prediction is performed (160). In inter mode, motion estimation (175) and compensation (170) are performed. The encoder determines (105) which mode, intra mode or inter mode, to use to code the unit, and indicates the intra / inter decision, for example, via a prediction mode flag. A prediction residual is calculated, for example, by subtracting (110) the prediction block from the original image block.

[0031] The prediction residual is then transformed (125) and quantized (130). The quantized transform coefficients, as well as motion vectors and other syntax elements, are entropy coded (145) to output a bitstream. The encoder may skip the transform and apply quantization directly to the untransformed residual signal. The encoder may also bypass both the transform and quantization; that is, the residual is coded directly without applying the transform or quantization processes.

[0032] The encoder decodes the coded block to provide a reference for further prediction. The quantized transform coefficients are inverse quantized (140) and inverse transformed (150) to decode the prediction residual. The decoded prediction residual and the prediction block are combined (155) to reconstruct an image block. An in-loop filter (165) is applied to the reconstructed picture to perform, for example, deblocking / sample adaptive offset (SAO) filtering to reduce coding artifacts. The filtered image is stored in a reference picture buffer (180).

[0033] 2 shows a block diagram of a video decoder 200. In the decoder 200, the bitstream is decoded by decoder elements as described below. The video decoder 200 generally performs a decoding pass that is the inverse of the encoding pass, as described in FIG. 1. The encoder 100 also generally performs video decoding as part of encoding the video data.

[0034] In particular, the decoder's input includes a video bitstream, such as may be generated by video encoder 100. The bitstream is first entropy decoded (230) to obtain transform coefficients, motion vectors, and other coding information. Picture partition information indicates how the picture is partitioned. Thus, the decoder may partition the picture according to the decoded picture partition information (235). The transform coefficients are inverse quantized (240) and inverse transformed (250) to decode the prediction residual. The decoded prediction residual and the prediction block are combined (255) to reconstruct an image block. The prediction block may be obtained (270) from intra prediction (260) or motion-compensated prediction (i.e., inter prediction) (275). An in-loop filter (265) is applied to the reconstructed image. The filtered image is stored in a reference picture buffer (280).

[0035] The decoded picture may further undergo post-decoding processing (285), such as an inverse color conversion (e.g., YCbCr 4:2:0 to RGB 4:4:4) or an inverse remapping that performs the inverse of the remapping process performed in the pre-encoding processing (101). The post-decoding processing may use metadata derived in the pre-encoding processing and signaled in the bitstream.

[0036] FIG. 3 illustrates a block diagram of an example system in which various aspects and examples may be implemented. System 300 may be embodied as a device including various components described below and configured to perform one or more of the aspects described herein. Examples of such devices include, but are not limited to, various electronic devices, such as personal computers, laptop computers, smartphones, tablet computers, digital multimedia set-top boxes, digital television receivers, personal video recording systems, connected home appliances, and servers. Elements of system 300 may be embodied, singly or in combination, in a single integrated circuit (IC), multiple ICs, and / or separate components. For example, in at least one example, the processing elements and encoder / decoder elements of system 300 are distributed across multiple ICs and / or separate components. In various examples, system 300 is communicatively coupled to one or more other systems or other electronic devices, for example, via a communication bus or through dedicated input and / or output ports. In various examples, system 300 is configured to implement one or more of the aspects described herein.

[0037] The system 300 includes at least one processor 310 configured to execute instructions loaded therein, for example, to implement various aspects described herein. The processor 310 may include embedded memory, input / output interfaces, and various other circuits known in the art. The system 300 includes at least one memory 320 (e.g., a volatile memory device and / or a non-volatile memory device). The system 300 includes a storage device 340, which may include non-volatile memory and / or volatile memory, including, but not limited to, Electrically Erasable Programmable Read-Only Memory (EEPROM), Read-Only Memory (ROM), Programmable Read-Only Memory (PROM), Random Access Memory (RAM), Dynamic Random Access Memory (DRAM), Static Random Access Memory (SRAM), flash, magnetic disk drives, and / or optical disk drives. Storage devices 340 may include, by way of non-limiting example, internal storage devices, attached storage devices (including removable and non-removable storage devices), and / or network-accessible storage devices.

[0038] System 300 includes an encoder / decoder module 350 configured to process data to provide, for example, encoded or decoded video, which may include its own processor and memory. Encoder / decoder module 350 represents a module(s) that may be included in a device to perform encoding and / or decoding functions. As is known, a device may include one or both of an encoding module and a decoding module. Additionally, encoder / decoder module 350 may be implemented as a separate element of system 300 or may be incorporated within processor 310 as a combination of hardware and software, as is known in the art.

[0039] Program code loaded into the processor 310 or the encoder / decoder 350 to perform various aspects described herein may be stored in the storage device 340 and subsequently loaded onto the memory 320 for execution by the processor 310. According to various examples, one or more of the processor 310, the memory 320, the storage device 340, and the encoder / decoder module 350 may store one or more of various items during execution of the processes described herein. Such stored items may include, but are not limited to, input video, decoded video or portions of decoded video, bitstreams, matrices, variables, and intermediate or final results of processing equations, formulas, operations, and arithmetic logic.

[0040] In some examples, memory internal to the processor 310 and / or the encoder / decoder module 350 is used to store instructions and provide working memory for processing required during encoding or decoding. However, in other examples, memory external to the processing device (e.g., the processing device may be either the processor 310 or the encoder / decoder module 350) is used for one or more of these functions. The external memory may be the memory 320 and / or the storage device 340, e.g., dynamic volatile memory and / or non-volatile flash memory. In some examples, the external non-volatile flash memory is used to store, for example, the television's operating system. In at least one example, a fast external dynamic volatile memory such as RAM is used as working memory for video encoding and decoding operations such as MPEG-2 (MPEG stands for Moving Picture Experts Group, MPEG-2 is also known as ISO / IEC 13818, 13818-1 is also known as H.222, and 13818-2 is also known as H.262), HEVC (HEVC stands for High Efficiency Video Coding, also known as H.265 and MPEG-H Part 2), or VVC (Versatile Video Coding).

[0041] Input to the elements of system 300 may be provided through various input devices, as shown in block 360. Such input devices may include, but are not limited to, (i) a radio frequency (RF) section that receives, for example, RF signals transmitted over the air from a broadcast station, (ii) a component (COMP) input terminal (or set of COMP input terminals), (iii) a universal serial bus (USB) input terminal, and / or (iv) a high definition multimedia interface (HDMI) input terminal. Other examples not shown in FIG. 3 include composite video.

[0042] In various examples, the input devices of block 360 have associated respective input processing elements known in the art. For example, the RF section may be associated with elements suitable for (i) selecting a desired frequency (also referred to as selecting a signal or bandlimiting a signal to a band of frequencies), (ii) downconverting the selected signal, (iii) bandlimiting again to a narrower band of frequencies to select a signal frequency band, which in certain examples may be referred to as a channel (for example), (iv) demodulating the downconverted, bandlimited signal, (v) performing error correction, and (vi) demultiplexing to select a desired stream of data packets. The RF section in various examples may include one or more elements for performing these functions, such as a frequency selector, a signal selector, a band limiter, a channel selector, a filter, a downconverter, a demodulator, an error corrector, and a demultiplexer. The RF section may include, for example, a tuner that performs these various functions, including downconverting a received signal to a lower frequency (e.g., an intermediate frequency or a frequency near baseband) or to baseband. In one set-top box example, the RF section and its associated input processing elements receive RF signals transmitted over a wired (e.g., cable) medium and perform frequency selection by filtering, downconverting, and re-filtering to a desired frequency band. Various examples rearrange the order of the above (and other) elements, remove some of these elements, and / or add other elements that perform similar or different functions. Adding elements may include inserting elements between existing elements, such as inserting amplifiers and analog-to-digital converters. In various examples, the RF section includes an antenna.

[0043] Additionally, the USB and / or HDMI terminals may include respective interface processors for connecting system 300 to other electronic devices via USB and / or HDMI connections. It should be understood that various aspects of the input processing, e.g., Reed-Solomon error correction, may be implemented, for example, within a separate input processing IC or within processor 310, as desired. Similarly, aspects of the USB or HDMI interface processing may be implemented, for example, within a separate interface IC or within processor 310, as desired. The demodulated, error corrected, and demultiplexed stream is provided to various processing elements, including, for example, encoder / decoder 350 operating in combination with processor 310 and memory and storage elements, to process the data stream as desired for presentation to an output device.

[0044] The various elements of system 300 may be provided within a unitary housing, in which the various elements may be interconnected and transmit data between them using suitable connection arrangements 370, such as internal buses known in the art, including inter-IC (I2C) buses, wiring, and printed circuit boards.

[0045] System 300 includes a communication interface 380 that enables communication with other devices over a communication channel 382. Communication interface 380 may include, but is not limited to, a transceiver configured to transmit and receive data over communication channel 382. Communication interface 380 may include, but is not limited to, a modem or a network card, and communication channel 382 may be implemented in a wired and / or wireless medium, for example.

[0046] In various examples, data is streamed or otherwise provided to system 300 using a wireless network such as a Wi-Fi network, e.g., IEEE 802.11 (IEEE refers to the Institute of Electrical and Electronics Engineers). The Wi-Fi signal in these examples is received via communication channel 382 and communication interface 350 adapted for Wi-Fi communication. Communication channel 382 in these examples is typically connected to an access point or router that provides access to external networks, including the Internet, to enable streaming applications and other over-the-top communications. Another example provides streamed data to system 300 using a set-top box that delivers data via HDMI connection 360 of the input block. Yet another example provides streamed data to system 300 using an RF connection of input block 360. As noted above, various examples provide data in ways other than streaming. In addition, various examples use wireless networks other than Wi-Fi, e.g., a cellular network or a Bluetooth network.

[0047] The system 300 may provide output signals to various output devices, including a display 392, speakers 394, and other peripheral devices 396. The display 392 in various examples includes, for example, one or more of a touchscreen display, an organic light-emitting diode (OLED) display, a curved display, and / or a foldable display. The display 392 may be for a television, a tablet, a laptop, a mobile phone, or other device. The display 392 may also be integrated into other components (e.g., as in a smartphone) or separate (e.g., an external monitor for a laptop). The other peripheral devices 396, in various examples, include one or more of a standalone digital video disc (or digital versatile disc) (DVR as an abbreviation for both terms), a disc player, a stereo system, and / or a lighting system. Various examples use one or more peripheral devices 396 that provide functionality based on the output of the system 300. For example, a disc player performs the function of playing the output of the system 300.

[0048] In various examples, control signals are communicated between system 300 and display 392, speakers 394, or other peripheral devices 396 using signaling such as AV.Link, Consumer Electronics Control (CEC), or other communication protocols that enable control between devices with or without user intervention. Output devices may be communicatively coupled to system 300 via dedicated connections via respective interfaces 330, 332, and 334. Alternatively, output devices may be connected to system 300 using communication channel 382 via communication interface 380. Display 392 and speakers 394 may be integrated into a single unit with other components of system 300 within an electronic device such as a television. In various examples, display interface 330 includes a display driver, such as a timing controller (T Con) chip.

[0049] Alternatively, the display 392 and speakers 394 may be separate from one or more of the other components, for example, if the RF portion of the input 370 is part of a separate set-top box. In various examples where the display 392 and speakers 394 are external components, the output signal may be provided via a dedicated output connection, including, for example, an HDMI port, a USB port, or a COMP output.

[0050] These examples may be executed by the processor 310, or by computer software implemented by hardware, or by a combination of hardware and software. As a non-limiting example, these examples may be implemented by one or more integrated circuits. The memory 320 may be of any type appropriate to the technological environment and may be implemented using any suitable data storage technology, such as, by way of non-limiting examples, optical memory devices, magnetic memory devices, semiconductor-based memory devices, fixed memory, and removable memory. The processor 310 may be of any type appropriate to the technological environment and may include, by way of non-limiting examples, one or more of a microprocessor, a general-purpose computer, a special-purpose computer, and a processor based on a multi-core architecture.

[0051] Various implementations involve decoding. As used herein, "decoding" may encompass all or part of the processes performed on a received encoded sequence to generate a final output suitable for, for example, a display. In various examples, such processes include one or more of the processes typically performed by a decoder, such as entropy decoding, inverse quantization, inverse transform, and differential decoding. In various examples, such processes may also or alternatively include processes performed by decoders of various implementations described herein, such as receiving an indication of sub-picture-level wraparound motion compensation, performing luma sample bilinear interpolation, etc.

[0052] As a further example, in one example, "decoding" refers to entropy decoding only, in another example, "decoding" refers to differential decoding only, and in another example, "decoding" refers to a combination of entropy decoding and differential decoding. Whether the phrase "decoding process" refers specifically to a subset of operations or to a broader decoding process in general will be clear based on the context of a particular description and is believed to be well understood by one of ordinary skill in the art.

[0053] Various implementations involve encoding. Similar to the above discussion regarding "decoding," as used herein, "encoding" may encompass all or part of the processes performed on an input video sequence to, for example, generate an encoded bitstream. In various examples, such processes include one or more of the processes typically performed by an encoder, such as partitioning, differential encoding, transform, quantization, and entropy coding. In various examples, such processes may also or alternatively include processes performed by encoders in various implementations described herein, such as determining whether wraparound motion compensation (e.g., geometric padding) should be enabled or disabled for individual subpictures.

[0054] As a further example, in one example, "encoding" refers only to entropy encoding, in another example, "encoding" refers only to differential encoding, and in another example, "encoding" refers to a combination of differential encoding and entropy encoding. Whether the phrase "encoding process" refers specifically to a subset of operations or to a broader encoding process in general will be clear based on the context of the particular description and is believed to be well understood by one of ordinary skill in the art.

[0055] It should be noted that the syntax elements used herein, e.g., subpic_wraparound_enabled_flag, subpic_ref_wraparound_offset_minus1, etc., are descriptive terms and therefore do not preclude the use of other syntax element names.

[0056] Where a diagram is presented as a flow diagram, it should be understood that the diagram also provides a block diagram of the corresponding apparatus. Similarly, where a diagram is presented as a block diagram, it should be understood that the diagram also provides a flow diagram of the corresponding method / process.

[0057] Various examples refer to rate-distortion optimization. In particular, during the encoding process, the balance or trade-off between rate and distortion is usually considered, often subject to computational complexity constraints. Rate-distortion optimization is usually formulated as minimizing a rate-distortion function, which is a weighted sum of rate and distortion. Different approaches exist for solving the rate-distortion optimization problem. For example, these approaches may be based on extensive testing of all encoding options, including all modes or encoding parameter values ​​considered, accompanied by a thorough evaluation of the coding cost and associated distortion of the reconstructed signal after encoding and decoding. Faster approaches may also be used to reduce coding complexity, particularly by using approximate distortion calculations based on predicted or predicted residual signals rather than the reconstructed signal. A mixture of these two approaches may also be used, such as using approximate distortion for only some of the possible encoding options and full distortion for other encoding options. Other approaches evaluate only a subset of the possible encoding options. More generally, many approaches use any of a variety of techniques to perform the optimization, but the optimization does not necessarily involve a thorough evaluation of both the coding cost and associated distortion.

[0058] Implementations and aspects described herein may be implemented as, for example, a method or process, an apparatus, a software program, a data stream, or a signal. Even if discussed only in the context of a single form of implementation (e.g., discussed only as a method), the implementation of the discussed features may also be implemented in other forms (e.g., an apparatus or a program). An apparatus may be implemented, for example, in appropriate hardware, software, and firmware. A method may be implemented in a processor, which generally refers to a processing device, including, for example, a computer, a microprocessor, an integrated circuit, or a programmable logic device. Processors also include, for example, communication devices such as computers, mobile phones, portable / personal digital assistants ("PDAs"), and other devices that facilitate communication of information between end users.

[0059] References to "one example" or "one implementation" or "an implementation," as well as other variations thereof, mean that a particular feature, structure, characteristic, etc. described in connection with that example is included in at least one example. Thus, the appearances of "in one example" or "in an example" or "in one implementation" in various places throughout this application, as well as any other variations thereof, do not necessarily all refer to the same example.

[0060] Additionally, the application may refer to "determining" various information. Determining information may include, for example, one or more of estimating information, calculating information, predicting information, or retrieving information from memory.

[0061] Additionally, the application may refer to "accessing" various information. Accessing information may include, for example, one or more of receiving information, retrieving information (e.g., from a memory), storing information, moving information, copying information, calculating information, determining information, predicting information, or estimating information.

[0062] Additionally, the application may refer to "receiving" various information. Receiving, like "accessing," is intended to be a broad term. Receiving information may include, for example, one or more of accessing information or retrieving information (e.g., from memory). Furthermore, "receiving" typically involves in some way an operation such as, for example, storing information, processing information, transmitting information, moving information, copying information, erasing information, calculating information, determining information, predicting information, or estimating information.

[0063] It should be understood that the use of any of the following terms, such as "A / B," "A and / or B," and "at least one of A and B," is intended to encompass the selection of only the first listed alternative (A), or the selection of only the second listed alternative (B), or the selection of both alternatives (A and B). As a further example, in the case of "A, B, and / or C" and "at least one of A, B, and C," such language is intended to encompass the selection of only the first listed alternative (A), or the selection of only the second listed alternative (B), or the selection of only the third listed alternative (C), or the selection of only the first and second listed alternatives (A and B), or the selection of only the first and third listed alternatives (A and C), or the selection of only the second and third listed alternatives (B and C), or the selection of all three alternatives (A, B, and C). This may be expanded for the number of items listed, as would be apparent to one of ordinary skill in this and related arts.

[0064] Also, as used herein, the term "signaling" refers, among other things, to instructing a corresponding decoder. For example, in a particular example, an encoder signals a specific one of multiple parameters related to sub-picture coding. In this way, in one example, the same parameters are used on both the encoder and decoder sides. Thus, for example, the encoder may transmit a specific parameter to the decoder (explicit signaling) so that the decoder may use the same specific parameter. Conversely, if the decoder already has a specific parameter as well as other parameters, signaling may be used without transmission (implicit signaling) so that the decoder can simply recognize and select the specific parameter. By avoiding the transmission of any actual function, bit savings are realized in various examples. It should be understood that signaling can be achieved in various ways. For example, in various examples, one or more syntax elements, flags, etc. are used to signal information to a corresponding decoder. Although the above relates to the verb form of the word "signaling," the word "signal" may also be used as a noun herein.

[0065] As will be apparent to one skilled in the art, implementations may generate various signals formatted to carry information that may be stored or transmitted, for example. Information may include, for example, instructions for performing a method or data generated by one of the described implementations. For example, a signal may be formatted to carry a bit stream of the described examples. Such a signal may be formatted, for example, as an electromagnetic wave (e.g., using the radio frequency portion of the spectrum) or as a baseband signal. Formatting may include, for example, encoding a data stream and modulating a carrier with the encoded data stream. The information carried by the signal may be, for example, analog or digital information. The signal may be transmitted over a variety of different wired or wireless links, as is known. The signal may be stored on a processor-readable medium.

[0066] The video processing devices described herein may be configured to partition a picture into one or more rows and / or columns of tiles and / or one or more sub-pictures. A tile may include a sequence of coding tree units (CTUs) that may cover a rectangular region of the picture. In an example, a tile may be further divided into one or more bricks, each of which may include one or more rows of CTUs of the tile. A sub-picture may include one or more slices that may collectively cover a region of the image (e.g., a rectangular region). A slice may be a rectangular slice, a raster scan slice, etc. A raster scan slice (e.g., generated and / or used in a raster scan slice mode) may include one or more tiles (e.g., a sequence of tiles) that may be derived via a tile raster scan of the picture. A rectangular slice (e.g., generated and / or used in a rectangular slice mode) may include one or more bricks that may collectively form a region of the picture (e.g., a rectangular region). The bricks within a rectangular slice may be arranged based on the brick raster scan order of the corresponding slice. FIG. 4 shows an example of a picture partitioned into sub-pictures, slices (eg, rectangular slices), tiles, and coding units (eg, CTUs).

[0067] Video processing devices described herein may be configured to transmit (e.g., when the video processing device includes a video encoder) or receive (e.g., when the video processing device includes a video decoder) a sequence parameter set (SPS) and / or a picture parameter set (PPS). The SPS may include syntax elements (e.g., parameters) that define a sub-picture grid of a picture, and a syntax element (e.g., subpic_treated_as_pic_flag) that indicates whether a sub-picture of a coded picture (e.g., in a coded video sequence (CVS)) can be treated as a picture in the decoding process (e.g., excluding in-loop filtering operations). The PPS may include syntax elements (e.g., parameters) that define a tile and / or brick grid, and a syntax element that indicates whether wraparound motion compensation (e.g., horizontal wraparound motion compensation) is enabled.

[0068] The SPS may specify subpicture size and / or location, for example, using a grid. FIG. 5 shows an example of a subpicture grid that may be used to indicate subpicture identifiers (IDs) (e.g., using numeric values ​​such as 0, 1, ... 5). As shown in FIG. 5, the coded picture may be partitioned (e.g., split) into a grid. The number of rows and columns of the grid may be determined based on the size of the grid elements and / or the size of the coded picture. Table 1 below includes an example syntax for signaling a subpicture ID (e.g., sub_pic_id[i][j]) at the (i,j)th grid position. [Table 1]

[0069] The video processing devices described herein may be configured to perform wraparound motion compensation while processing pictures. Such wraparound motion compensation may be performed, for example, horizontally. The SPS and / or PPS may include an element indicating whether wraparound motion compensation is enabled. For example, the SPS may include a first parameter (e.g., sps_ref_wraparound_enabled_flag) that indicates whether horizontal wraparound motion compensation is enabled or disabled for inter prediction (e.g., by setting sps_ref_wraparound_enabled_flag to 1 or 0, respectively). The SPS may also include a second parameter (e.g., sps_ref_wraparound_offset_minus1 plus 1) that may specify an offset that may be used to calculate the horizontal wraparound position.

[0070] The video processing devices described herein may be configured to perform geometric padding (e.g., horizontal geometric padding) when wraparound motion compensation (e.g., horizontal wraparound motion compensation) is enabled. FIG. 6 illustrates an exemplary geometric padding process for 360° video in equirectangular projection (ERP). As shown, the video processing device may be configured to pad samples at A, B, C, D, E, and / or F positions (e.g., along the left and / or right boundaries of a picture) with samples at D′, E′, F′, A′, B′, and / or C′ positions. Along the top boundary, the video processing device may be configured to pad samples at G, H, I, and / or J positions with samples at I′, J′, G′, and / or H′ positions. Along the bottom boundary, the video processing device may be configured to pad samples at K, L, M, and / or N positions with samples at M′, N′, K′, and / or L′ positions.

[0071] The video processing devices described herein may be configured to support access unit delimiters (AUDs) and / or AUD network abstraction layer (NAL) units (e.g., for standards-compliant video) that may be signaled in a video bitstream. Table 2 below shows an example AUD syntax. The syntax may include an element (e.g., pic_type) that indicates slice_type values ​​that may be present in a coded picture. Furthermore, an access unit (e.g., each access unit) may start with an AUD NAL unit in the syntax and / or there may be one (e.g., at most one) AUD NAL unit within a layer access unit according to the syntax. [Table 2]

[0072] In an example (e.g., when an AUD is mandatory for (e.g., each) access unit or AU), one or more syntax elements that are signaled in a slice header that are constrained to have the same value in a picture to be coded may be signaled in the AUD (e.g., instead of in a slice header) to reduce signaling overhead. The AUD and parameter sets may be interdependent, and interdependencies may be explored to improve coding efficiency. In an example (e.g., when sub-picture coding involves cases where the left and / or right boundaries of an ERP picture are not connected), it may be desirable to enable or disable wrap-around motion compensation (e.g., geometric padding, etc.) for individual sub-pictures. A mechanism that does not allow wrap-around motion compensation to be enabled or disabled for individual sub-pictures (e.g., by only signaling a wrap-around enable flag in an SPS) may be insufficient.

[0073] The video processing devices described herein may be configured to process video content using various coding tools and / or high-level syntax (HLS). The coding tools may facilitate intra-prediction, inter-prediction, transforms, quantization, entropy coding, in-loop filters, etc. HLS may support partitioning of pictures, sub-pictures, slices, tiles, and bricks (e.g., for parallelization), viewport-dependent processing of 360-degree video, etc. HLS may also support features such as scalable video coding, reference picture resampling (RPR), gradual decoding refresh (GDR), etc.

[0074] A slice header associated with a coded picture may include one or more syntax elements such as slice_pic_parameter_set_id, non_reference_picture_flag, color_plane_id, slice_pic_order_cnt_lsb, recovery_poc_cnt, no_output_of_prior_pics_flag, pic_output_flag, and / or slice_temporal_mvp_enabled_flag, etc. The value of each of these syntax elements may be the same in multiple (e.g., all) slice headers associated with the coded picture. One or more of these syntax elements (e.g., slice_pic_parameter_set_id, non_reference_picture_flag, color_plane_id, slice_pic_order_cnt_lsb, recovery_poc_cnt, no_output_of_prior_pics_flag, pic_output_flag, slice_temporal_mvp_enabled_flag, etc.) may be signaled within a picture header (e.g., instead of within multiple slice headers) or within a layer access unit delimiter (layer AUD), which may reduce the cost associated with slice overhead. The layer AUD may correspond to a NAL unit type and may be used to indicate the boundaries of layer-coded pictures.

[0075] An access unit may contain pictures from different layers. One or more (e.g., all) pictures in an access unit may share the same output time instance and / or the same Picture Order Count (POC) value. One or more syntax elements (e.g., slice_pic_order_cnt_lsb) may be signaled within the AUD (e.g., instead of in the slice header). Dependencies between an AUD and one or more slices may be introduced when one or more syntax elements (e.g., slice_pic_order_cnt_lsb) are signaled within the AUD. Table 3 below shows example syntax elements that may be included in an AUD. As shown, the syntax may include an aud_pic_order_cnt_isb element, the value of which may otherwise be included in multiple slice headers (e.g., slice_pic_order_cnt_lsb). [Table 3] Table 3 - Example syntax elements placed in an AUD

[0076] Non-reference picture properties may be signaled, for example, in a slice header to indicate a picture's sub-layer reference property and / or non-reference property. A video processing device (e.g., a decoder) receiving the signaled information may determine, based on the signaled information, that one or more pictures may be discarded under certain circumstances (e.g., when playback is delayed). In an example (e.g., when a multi-layer coding structure is used), non-reference layers that are not referenced by other layers may be indicated at the video parameter set (VPS) level or SPS level, such that one or more pictures of the non-reference layer may be discarded. Table 4 below shows an example VPS syntax that includes an element (e.g., vps_non_reference_layer_flag) that indicates that a particular layer (e.g., a non-reference layer) cannot be referenced by other layers (e.g., cannot be a direct reference layer of other layers). [Table 4]

[0077] In the example syntax shown in Table 4, setting the value of the parameter vps_non_reference_layer_flag[i] to 1 (or another suitable value) may indicate that the i-th layer cannot be used as a reference layer (e.g., by another layer, such as the j-th layer) for inter-layer prediction. Conversely, setting the value of vps_non_reference_layer_flag[i] to 0 (or another suitable value) may indicate that the i-th layer can or cannot be used as a reference layer (e.g., by another layer, such as the j-th layer) for inter-layer prediction.

[0078] The video processing devices described herein may be configured to transmit or receive (e.g., via a video bitstream) a syntax element that indicates whether wraparound motion compensation is enabled or disabled for a subpicture. Table 5 below shows an example SPS syntax in which an element associated with wraparound motion compensation (e.g., sps_ref_wraparound_enabled_flag) may be signaled (e.g., after one or more elements associated with subpicture partitioning). [Table 5]

[0079] In an example (e.g., in viewport-dependent streaming), wraparound motion compensation may or may not be applied to a particular sub-picture, such as a sub-picture within a picture into which the sub-picture has been merged. FIG. 7 shows an example of wraparound motion compensation of an original picture and a merged picture. An original 360-degree picture may be encoded into a set of one or more high-resolution pictures (e.g., represented by 1-6 in 702) and / or a set of one or more low-resolution pictures (e.g., represented by 1-6 in 704). Wraparound motion compensation may be applied to these pictures (e.g., the high-resolution picture in 702 and the low-resolution picture in 704) using respective (e.g., different) wraparound offsets. A new picture 706 including two high-resolution sub-pictures (e.g., represented by 1 and 3 in FIG. 7) and four low-resolution sub-pictures (e.g., represented by 4, 5, 2, and 6 in FIG. 7) may be derived, for example, via extraction and / or merging. Subpictures 1 and 3 may be grouped into a first subpicture, and subpictures 4, 5, 2, and 6 may be grouped into a second subpicture. In such a situation, it may be desirable to apply different wrap-around motion compensation (e.g., different wrap-out offsets) to the first and second subpictures.

[0080] A video processing device described herein may be configured to send or receive an indication (e.g., via a video bitstream) of whether wraparound motion compensation is enabled or disabled for a subpicture (e.g., on a subpicture-by-subpicture basis) and / or an indication (e.g., via a video bitstream) of a wraparound offset to be applied to a subpicture (e.g., when wraparound motion compensation is enabled). For example, a video encoding device described herein may be configured to encode a picture including a first subpicture and / or a second subpicture. The video encoding device may obtain information indicating whether wraparound motion compensation is enabled for the first and / or second subpictures of the coded picture, as well as respective wrap-out offsets associated with the first and second subpictures. The video encoding device may then form a set of coded data including the coded picture and the obtained information. In an example, the obtained information included in the set of coded data may indicate that wraparound motion compensation is enabled for the first subpicture and disabled for the second subpicture. In an example, the obtained information included in the set of encoded data may include a picture parameter set (PPS) syntax element indicating wraparound motion compensation is enabled and a sequence parameter set (SPS) syntax element indicating that the first sub-picture is to be processed as a picture. In an example, the video encoder may be configured to transmit the set of encoded data to a receiving device, such as a video decoder.

[0081] The sub-picture level wraparound indication described herein may be provided, for example, when an indication to treat a sub-picture as a picture (e.g., subpic_treated_as_pic_flag) is set to true or 1, and when an SPS indication related to wraparound motion compensation (e.g., sps_ref_wraparound_enabled_flag) is also set to true or 1. Table 6 below shows an example PPS syntax structure for signaling the number of sub-pictures (e.g., maximum number), wraparound motion compensation enable / disable indication (e.g., for a sub-picture), wraparound motion compensation offset (e.g., for a sub-picture), etc. Although shown as being signaled in the PPS, one or more of the syntax elements in Table 6 may also be signaled in the SPS. [Table 6]

[0082] The example syntax shown in Table 6 may include an element, e.g., max_subpics_minus2 plus 2, that specifies the maximum number of subpictures that may be present in a coded video sequence (CVS). The value of this element may range from 0 to 254 (e.g., 255 may be reserved for future use). The example syntax may include an element, e.g., all_subpic_wraparound_enabled_flag, that indicates whether wraparound motion compensation is enabled (e.g., when the element has a value of 1) for one or more subpictures (e.g., for all subpictures) or whether it is disabled / skipped (e.g., when the element has a value of zero) for at least one subpicture (e.g., wraparound is not applied to all subpictures). If this element (e.g., all_subpic_wraparound_enabled_flag) is not present, its value may be inferred to be equal to 0.

[0083] The exemplary syntax shown in Table 6 may include an element, e.g., subpic_wraparound_offset_sps_flag, that indicates whether the subpic wraparound motion compensation offset is inferred to be equal to the value of sps_ref_wraparound_offset_minus1 plus 1 (e.g., when subpic_wraparound_offset_sps_flag is set to 1) or whether it is specified by another element, such as subpic_wraparound_offset_minus1 (e.g., when subpic_wraparound_offset_sps_flag is set to zero).

[0084] The example syntax shown in Table 6 may include an element, e.g., subpic_ref_wraparound_enabled_flag[i], that indicates whether wraparound motion compensation (e.g., horizontal wraparound motion compensation) is enabled or disabled for the i-th subpicture (e.g., for inter prediction of the i-th subpicture). When this element is set to 1, it may indicate that horizontal wraparound motion compensation is enabled (e.g., applied) for the i-th subpicture. When this element is set to zero, it may indicate that horizontal wraparound motion compensation is disabled (e.g., not applied) for the i-th subpicture. If this element is not present in the signaled syntax, its value may be inferred to be equal to the value of, for example, the all_subpic_wrapound_enabled_flag element described herein.

[0085] The example syntax shown in Table 6 may include an element, e.g., subpic_ref_wraparound_offset_minus1 plus 1, that specifies an offset associated with wraparound motion compensation (e.g., for calculating the horizontal wraparound position of the i-th subpicture). The offset value may be specified in units of MinCbSizeY luma samples. For example, the value of subpic_ref_wraparound_offset_minus1 may be set in the range of (CtbSizeY / MinCbSizeY)+1 to (subpic_width_in_luma_samples[i] / MinCbSizeY)−1, inclusive, where subpic_width_in_luma_samples[i] may represent the width of the i-th subpicture in luma samples. If this element (e.g., subpic_ref_wraparound_offset_minus1) is not present, its value may be inferred to be equal to, for example, the value of the sps_ref_wraparound_offset_minus1 element described herein.

[0086] The video processing devices described herein may apply wraparound motion compensation for sub-pictures (e.g., relative to sub-picture boundaries) based on the syntax elements described herein, for example, when performing luma sample bilinear interpolation (e.g., when determining the location of luma in full sample units (xInt i ,yInt i )), the video processing device may consider the subpicture wraparound motion compensation indicator (e.g., subpic_ref_wraparound_enabled_flag) for i=0..1 along with other syntax elements (e.g., subpic_treated_as_pic_flag) as shown below. If subpic_treated_as_pic_flag[SubPicIdx] is equal to 1, then the following applies:

number

[0087] When performing luma sample bilinear interpolation filtering (e.g., determining the location of luma in full sample units (xInt i ,yInt i )), the video processing device may consider subpicture wraparound motion compensation indicators (e.g., subpic_ref_wraparound_enabled_flag) for i=0..7 along with other syntax elements (e.g., subpic_treated_as_pic_flag) as shown below. If subpic_treated_as_pic_flag[SubPicIdx] is equal to 1, then the following applies:

number

[0088] Chroma Samples When performing bilinear interpolation filtering (e.g., determining the location of chroma in full sample units (xInt i ,yInt i )), the video processing device may consider subpicture wraparound motion compensation indicators (e.g., subpic_ref_wraparound_enabled_flag) for i=0..3 along with other syntax elements (e.g., subpic_treated_as_pic_flag) as shown below. If subpic_treated_as_pic_flag[SubPicIdx] is equal to 1, then the following applies:

number

[0089] In some implementations (e.g., when a sub-picture boundary does not align with a corresponding picture boundary), a hardware (HW) decoder may not perform wrap-around padding. Figure 8 shows an example of sub-picture wrap-around padding. In the circled areas, wrap-around padding may be performed within a picture. In some implementations (e.g., when multiple decoders are used), each sub-picture boundary may be treated the same as the corresponding picture boundary. In some implementations (e.g., when a single decoder is used), a picture boundary may not be applied to a sub-picture boundary within a picture.

[0090] Picture-level wraparound motion prediction may improve coding efficiency for certain types of content, such as 360-degree video, that may be delivered via viewport-dependent streaming. For example, if sub-picture-level wraparound motion prediction is not supported, picture-level wraparound motion prediction may be disabled for sub-picture-based viewport-dependent streaming. For example, if sub-picture-level wraparound motion prediction is supported, picture-level wraparound motion prediction may be enabled for sub-picture-based viewport-dependent streaming.

[0091] When a subpicture boundary aligns with a picture boundary, subpicture-level wraparound motion prediction may be enabled. Figure 9 illustrates when a subpicture may be wraparound padded and when a subpicture may not be wraparound padded. As shown, the top two subpictures on the left side of Figure 9 may be wraparound padded because their left and right boundaries align with the boundary of the composite picture on the right side of Figure 9. In contrast, the bottom two subpictures on the left side of Figure 9 may not be wraparound padded because one or more vertical boundaries of those subpictures (e.g., both their left and right vertical boundaries) do not align with the boundary of the composite picture. Table 7 below shows example syntax associated with wraparound motion prediction that may support the example of Figure 9. [Table 7]

[0092] As shown, the example syntax of Table 7 may include elements such as the indicator sps_subpic_wraparound_enabled_flag, which, when set to 1 or true, may indicate the presence of one or more sub-picture wraparound syntax elements in the SPS, such as sps_subpic_wraparound_boundaries_pos_y0[i], sps_subpic_wraparound_boundaries_pos_y1[i], and / or sps_subpic_wraparound_offset_minus1[i]. When the indicator element sps_subpic_wraparound_enabled_flag is set to false or zero, it may indicate the presence of a picture wraparound offset indication in the SPS, such as sps_ref_wraparound_offset_minus1.

[0093] The example syntax of Table 7 may include an element num_wraparound_boundaries_minus1, which may specify the total number of boundary segments for which wraparound padding may be performed. One or more elements in the example syntax (e.g., sps_subpic_wraparound_boundaries_pos_y0[i] and sps_subpic_wraparound_boundaries_pos_y1[i]) may specify the location of the i-th boundary segment (e.g., in units of luma samples or CT). The example syntax may also include an element sps_subpic_wraparound_offset_minus1[i], which specifies an offset value to be applied to the i-th boundary segment.

[0094] The video processing devices described herein may be configured to transmit or receive (e.g., via a video bitstream) subpicture positions, subpicture sizes, and / or subpicture IDs. The subpicture positions, subpicture sizes, and / or subpicture IDs may be signaled based on a subpicture grid, which may have a size of 4x4 (e.g., a minimum grid element size). The bit count associated with the signaling may depend on the number of subpictures in the subpicture grid. For example, for a 4Kx2K picture, the signaling bit count may be 47 bits for 6 subpictures, 149 bits for 24 subpictures, and 701 bits for 96 subpictures. The bit count may be reduced, for example, when the subpictures of the subpicture grid share the same size (e.g., cube-map projection (CMP)), etc.) and the subpicture IDs are derived from the subpicture grid without explicitly signaling the IDs of each subpicture.

[0095] Figure 10 shows three exemplary subpicture grids. The first grid includes 6 subpictures, the second grid includes 24 subpictures, and the third grid includes 10 subpictures. Each of the first and second grids may include subpictures of the same subpicture size, and the third grid may include 10 subpictures of different subpicture sizes (e.g., as indicated by the different shading shown in Figure 10). Syntax elements such as single_subpic_per_grid_flag (e.g., SPS syntax elements) may be used to adjust the signaling of subpic_grid_idx[i][j] (e.g., to indicate whether the signaling of subpic_grid_idx[i][j] is skipped), as shown in Table 8 below. Setting the value of subpic_per_grid_flag to 1 (or another suitable value) may indicate that subpic_grid_idx[i][j] is not present in the SPS RBSP syntax, and setting the value of single_subpic_per_grid_flag to 0 (or another suitable value) may indicate that subpic_grid_idx[i][j] is present in the SPS RBSP syntax. If the element single_subpic_per_grid_flag is not present, its value (e.g., the value of single_subpic_per_grid_flag) may be inferred to be equal to 1 (or another suitable value indicating that subpic_grid_idx[i][j] is not present in the SPS RBSP syntax). [Table 8]

[0096] Using the example syntax shown in Table 8, when single_subpic_per_grid_flag is equal to 1 (or another suitable value indicating that subpic_grid_idx[i][j] is not signaled), subpic_grid_idx[i][j] may be derived as follows:

number

[0097] Subpicture IDs may be signaled using syntax elements such as subpic_grid_idx described herein. The minimum subpicture grid size may be 4x4. A subpicture may correspond to a rectangular region of one or more slices within a picture, and a slice may include several complete tiles or a sequence (e.g., a consecutive sequence) of complete bricks of one tile. Slice location and / or size may be signaled, for example, within a PPS. Slice IDs may be used to indicate subpicture location and / or size to improve signaling efficiency.

[0098] A slice ID and / or slice_address may be signaled in the slice header. The slice_address may be equal to a slice ID set (e.g., explicitly set) in the PPS, or a slice index for a rectangular slice, or a brick ID for a raster scan slice. In an example (e.g., for a rectangular slice), the slice location may be determined by a syntax element (e.g., a parameter) such as bottom_right_brick_idx (e.g., bottom_right_brick_idx may be used to derive TopLeftBrickIdx and / or BottomRightBrickIdx). Raster scan slices may be used at least in low-latency scenarios. A subpicture may be constrained to contain one or more rectangular slices (e.g., contain only rectangular slices), and such constrained subpictures may be signaled based on the slices included in the subpicture, e.g., to facilitate slice extraction. Table 9 below shows an example syntax for subpicture signaling. [Table 9]

[0099] As shown in the table, an example subpicture signaling syntax may include a first element, subpic_per_slice_flag, that may be used to indicate whether a (e.g., respective) slice is a subpicture (e.g., when subpic_per_slice_flag is set to 1) or whether a slice contains one or more slices (e.g., when subpic_per_slice_flag is set to 0). The example syntax may include a second element, num_slices_minus1[i] plus 1, that specifies the total number of slices in the i-th subpicture, and a third element, slice_address[i][j], that specifies the address of the j-th slice of the i-th subpicture. In an example, (e.g., when an element such as signaled_slice_id_flag is signaled in the PPS and set to a value of 1), the value of slice_address[i][j] may be equal to the slice ID of the slice, and the value of slice_address[i][j] may range from 0 to 2. (signalled_slice_id_length_minus1+1) In an example (e.g., when signaled_slice_id_flag is set to 0), the value of slice_address[i][j] can range from 0 to num_slices_in_pic_minus1, inclusive.

[0100] Syntax elements such as recovery_poc_cnt may be signaled within the slice header of a gradual decoding refresh (GDR) NAL unit. Such elements may specify the recovery point of a decoded picture in output order. A picture may be referred to as a recovery point picture when it follows the current GDR picture in decoding order and its POC value is equal to the GDR's POC value plus the value of recovery_poc_cnt. Figure 11 shows an example of a layer-based coding structure. A layer picture may point to a GDR picture from its dependent layer. Constraints may be imposed such that the NAL unit type (NUT) of a layer picture whose inter-layer reference picture is a GDR picture is set to GDR_NUT (e.g., the NAL unit type of the GDR picture) and / or the value of recovery_poc_cnt of the current slice must be the same as the value of recovery_poc_cnt of the corresponding inter-layer reference picture.

[0101] 12A illustrates an example communication system 1200 in which one or more disclosed embodiments may be implemented. The communication system 1200 may be a multiple access system that provides content, such as voice, data, video, messaging, broadcasts, etc., to multiple wireless users. The communication system 1200 may enable multiple wireless users to access such content through the sharing of system resources, including wireless bandwidth. For example, the communications system 1200 may employ one or more channel access methods such as code division multiple access (CDMA), time division multiple access (TDMA), frequency division multiple access (FDMA), orthogonal FDMA (OFDMA), single-carrier FDMA (SC-FDMA), zero-tail unique-word DFT-Spread OFDM (ZT UW DTS-s OFDM), unique word OFDM (UW-OFDM), resource block filtered OFDM, filter bank multicarrier (FBMC), and / or the like.

[0102] 12A, communications system 1200 may include wireless transmit / receive units (WTRUs) 1202a, 1202b, 1202c, 1202d, RANs 1204 / 1213, CNs 1206 / 1215, a public switched telephone network (PSTN) 1208, the Internet 1210, and other networks 1212, although it will be understood that the disclosed embodiments contemplate any number of WTRUs, base stations, networks, and / or network elements. Each of WTRUs 1202a, 1202b, 1202c, 1202d may be any type of device configured to operate and / or communicate in a wireless environment. By way of example, the WTRUs 1202a, 1202b, 1202c, 1202d, any of which may be referred to as a “station” and / or “STA,” may be configured to transmit and / or receive wireless signals and may include user equipment (UE), mobile stations, fixed or mobile subscriber units, subscription-based units, pagers, cellular phones, personal digital assistants (PDAs), smartphones, laptops, netbooks, personal computers, wireless sensors, hotspots or Mi-Fi devices, Internet of Things (IoT) devices, watches or other wearables, head-mounted displays (HMDs), vehicles, drones, medical devices and applications (e.g., remote surgery), industrial devices and applications (e.g., robots and / or other wireless devices operating in industrial and / or automated processing chain situations), consumer electronics devices, devices operating on commercial and / or industrial wireless networks, etc. Any of the WTRUs 1202a, 1202b, 1202c, and 1202d may be referred to interchangeably as a UE.

[0103] The communications system 1200 may also include a base station 1214a and / or a base station 1214b. Each of the base stations 1214a, 1214b may be any type of device configured to wirelessly interface with at least one of the WTRUs 1202a, 1202b, 1202c, 1202d to facilitate access to one or more communications networks, such as the CN 1206 / 1215, the Internet 1210, and / or other networks 1212. By way of example, the base stations 1214a, 1214b may be a base transceiver station (BTS), a Node B, an eNodeB, a Home Node B, a Home eNodeB, a gNB, an NR NodeB, a site controller, an access point (AP), a wireless router, etc. Although base stations 1214a, 1214b are each shown as a single element, it will be appreciated that base stations 1214a, 1214b may include any number of interconnected base stations and / or network elements.

[0104] The base station 1214a may be part of the RAN 1204 / 1213, which may also include other base stations and / or network elements (not shown), such as a base station controller (BSC), a radio network controller (RNC), a relay node, etc. The base station 1214a and / or base station 1214b may be configured to transmit and / or receive radio signals on one or more carrier frequencies, which may be referred to as a cell (not shown). These frequencies may be licensed spectrum, unlicensed spectrum, or a combination of licensed and unlicensed spectrum. A cell may provide wireless service coverage for a particular geographic area, which may be relatively fixed or may change over time. A cell may be further divided into cell sectors. For example, the cell associated with the base station 1214a may be divided into three sectors. Thus, in one embodiment, the base station 1214a may include three transceivers, i.e., one for each sector of the cell. In one embodiment, the base station 1214a may employ multiple-input multiple output (MIMO) technology and may utilize multiple transceivers per sector of the cell, for example, using beamforming to transmit and / or receive signals in desired spatial directions.

[0105] The base stations 1214a, 1214b may communicate with one or more of the WTRUs 1202a, 1202b, 1202c, 1202d over an air interface 1216, which may be any suitable wireless communication link (e.g., radio frequency (RF), microwave, centimeter wave, micrometer wave, infrared (IR), ultraviolet (UV), visible light, etc.). The air interface 1216 may be established using any suitable radio access technology (RAT).

[0106] More specifically, as noted above, the communications system 1200 may be a multiple access system and may employ one or more channel access schemes, such as CDMA, TDMA, FDMA, OFDMA, SC-FDMA, etc. For example, the base stations 1214a and the WTRUs 1202a, 1202b, 1202c in the RANs 1204 / 1213 may implement a radio technology such as Universal Mobile Telecommunications System (UMTS) Terrestrial Radio Access (UTRA), which may establish the air interfaces 1215 / 1216 / 1217 using wideband CDMA (WCDMA). WCDMA may include communications protocols such as High-Speed ​​Packet Access (HSPA) and / or Evolved HSPA (HSPA+). HSPA may include High-Speed ​​Downlink (DL) Packet Access (HSDPA) and / or High-Speed ​​Uplink Packet Access (HSUPA).

[0107] In one embodiment, the base station 1214a and the WTRUs 1202a, 1202b, 1202c may implement a radio technology such as Evolved UMTS Terrestrial Radio Access (E-UTRA), which may establish the air interface 1216 using Long Term Evolution (LTE) and / or LTE-Advanced (LTE-A) and / or LTE-Advanced Pro (LTE-APro).

[0108] In one embodiment, the base station 1214a and the WTRUs 1202a, 1202b, 1202c may implement a radio technology such as New Radio (NR) radio access, which may establish the air interface 1216 using NR.

[0109] In one embodiment, the base station 1214a and the WTRUs 1202a, 1202b, 1202c may implement multiple radio access technologies. For example, the base station 1214a and the WTRUs 1202a, 1202b, 1202c may jointly implement LTE radio access and NR radio access, e.g., using dual connectivity (DC) principles. Thus, the air interface utilized by the WTRUs 1202a, 1202b, 1202c may be characterized by multiple types of radio access technologies and / or transmissions transmitted to / from multiple types of base stations (e.g., eNBs and gNBs).

[0110] In other embodiments, the base station 1214a and the WTRUs 1202a, 1202b, 1202c may implement a wireless technology such as IEEE 802.11 (i.e., Wireless Fidelity, WiFi), IEEE 802.16 (i.e., Worldwide Interoperative for Microword Access (WiMAX)), CDMA2000, CDMA2000 1X, CDMA2000EV-DO, Interim Standard 2000 (IS-2000), Interim Standard 95 (IS-95), Interim Standard 856 (IS-856), Global System for Mobile communications (GSM), Enhanced Data rates for GSM Evolution (EDGE), GSM EDGE (GERAN), or the like.

[0111] 12A may be, for example, a wireless router, a Home NodeB, a Home eNodeB, or an access point and may utilize any suitable RAT to facilitate wireless connectivity in a localized area, such as a business, a home, a vehicle, a campus, an industrial facility, an air corridor (e.g., for use by a drone), a roadway, or other location. In one embodiment, the base station 1214b and the WTRUs 1202c, 1202d may implement a radio technology such as IEEE 802.11 to establish a wireless local area network (WLAN). In one embodiment, the base station 1214b and the WTRUs 1202c, 1202d may implement a radio technology such as IEEE 802.15 to establish a wireless personal area network (WPAN). In yet another embodiment, the base station 1214b and the WTRUs 1202c, 1202d may establish a picocell or a femtocell using a cellular-based RAT (e.g., WCDMA, CDMA2000, GSM, LTE, LTE-A, LTE-APro, NR, etc.). As shown in FIG. 12A, the base station 1214b may have a direct connection to the Internet 1210. Thus, the base station 1214b may not need to access the Internet 1210 through the CN 1206 / 1215.

[0112] The RAN 1204 / 1213 may communicate with the CN 1206 / 1215, which may be any type of network configured to provide voice, data, application, and / or voice over internet protocol (VoIP) services to one or more of the WTRUs 1202a, 1202b, 1202c, 1202d. The data may have various quality of service (QoS) requirements, such as different throughput requirements, latency requirements, error tolerance requirements, reliability requirements, data throughput requirements, mobility requirements, etc. The CN 1206 / 1215 may provide call control, billing services, mobile location services, prepaid calling, Internet connectivity, video distribution, etc., and / or perform high-level security functions such as user authentication. 12A , it will be understood that the RAN 1204 / 1213 and / or the CN 1206 / 1215 may communicate directly or indirectly with other RANs employing the same RAT as the RAN 1204 / 1213 or a different RAT. For example, in addition to being connected to the RAN 1204 / 1213, which may utilize NR radio technology, the CN 1206 / 1215 may also communicate with another RAN (not shown) employing GSM, UMTS, CDMA2000, WiMAX, E-UTRA, or WiFi radio technology.

[0113] The CNs 1206 / 1215 may also serve as gateways for the WTRUs 1202a, 1202b, 1202c, 1202d to access the PSTN 1208, the Internet 1210, and / or other networks 1212. The PSTN 1208 may include a public switched telephone network providing plain old telephone service (POTS). The Internet 1210 may include a global system of interconnected computer networks and devices that use common communication protocols such as the transmission control protocol (TCP), user datagram protocol (UDP), and / or internet protocol (IP) of the TCP / IP Internet protocol suite. The networks 1212 may include wired and / or wireless communication networks owned and / or operated by other service providers. For example, the networks 1212 may include another CN connected to one or more RANs, which may employ the same RAT as the RANs 1204 / 1213 or a different RAT.

[0114] Some or all of the WTRUs 1202a, 1202b, 1202c, 1202d in the communications system 100 may include multi-mode capabilities (e.g., the WTRUs 1202a, 1202b, 1202c, 1202d may include multiple transceivers for communicating with different wireless networks over different wireless links.) For example, the WTRU 1202c shown in FIG. 12A may be configured to communicate with a base station 1214a that can use cellular-based wireless technology and a base station 1214b that can use IEEE 802 wireless technology.

[0115] 12B is a system diagram illustrating an example WTRU 1202. As shown in FIG. 12B, the WTRU 1202 may include, among other things, a processor 1218, a transceiver 1220, a transmit / receive element 1222, a speaker / microphone 1224, a keypad 1226, a display / touchpad 1228, non-removable memory 1230, removable memory 1232, a power source 1234, a global positioning system (GPS) chipset 1236, and / or other peripherals 1238. It will be understood that the WTRU 1202 may include any sub-combination of the foregoing elements while remaining consistent with an embodiment.

[0116] The processor 1218 may be a general-purpose processor, a special-purpose processor, a conventional processor, a digital signal processor (DSP), multiple microprocessors, one or more microprocessors associated with a DSP core, a controller, a microcontroller, an application specific integrated circuit (ASIC), a field programmable gate array (FPGA) circuit, any other type of integrated circuit (IC), a state machine, etc. The processor 1218 may perform signal coding, data processing, power control, input / output processing, and / or any other functionality that enables the WTRU 1202 to operate in a wireless environment. The processor 1218 may be coupled to the transceiver 1220, which may be coupled to the transmit / receive element 1222. While FIG. 12B depicts the processor 1218 and the transceiver 1220 as separate components, it will be understood that the processor 1218 and the transceiver 1220 may be integrated together in an electronic package or chip.

[0117] The transmit / receive element 1222 may be configured to transmit signals to or receive signals from a base station (e.g., base station 1214a) over the air interface 1216. For example, in one embodiment, the transmit / receive element 1222 may be an antenna configured to transmit and / or receive RF signals. In one embodiment, the transmit / receive element 1222 may be an emitter / detector configured to transmit and / or receive IR, UV, or visible light signals, for example. In yet another embodiment, the transmit / receive element 1222 may be configured to transmit and / or receive both RF and light signals. It will be understood that the transmit / receive element 1222 may be configured to transmit and / or receive any combination of wireless signals.

[0118] 9B as a single element, the WTRU 1202 may include any number of transmit / receive elements 1222. More specifically, the WTRU 1202 may employ MIMO technology. Thus, in one embodiment, the WTRU 1202 may include two or more transmit / receive elements 1222 (e.g., multiple antennas) for transmitting and receiving wireless signals over the air interface 1216.

[0119] The transceiver 1220 may be configured to modulate signals transmitted by the transmit / receive element 1222 and demodulate signals received by the transmit / receive element 1222. As mentioned above, the WTRU 1202 may have multi-mode capabilities. Thus, the transceiver 1220 may include multiple transceivers to enable the WTRU 1202 to communicate via multiple RATs, such as NR and IEEE 802.11.

[0120] The processor 1218 of the WTRU 1202 may be coupled to and may receive user input data from a speaker / microphone 1224, a keypad 1226, and / or a display / touchpad 1228 (e.g., a liquid crystal display (LCD) display unit or an organic light-emitting diode (OLED) display unit). The processor 1218 may also output user data to the speaker / microphone 1224, the keypad 1226, and / or the display / touchpad 1228. Furthermore, the processor 1218 may access information from and store data in any type of suitable memory, such as non-removable memory 1230 and / or removable memory 1232. The non-removable memory 1230 may include random access memory (RAM), read-only memory (ROM), a hard disk, or any other type of memory storage device. The removable memory 1232 may include a subscriber identity module (SIM) card, a memory stick, a secure digital (SD) memory card, etc. In other embodiments, the processor 1218 may access information from and store data in memory that is not physically located on the WTRU 1202, such as on a server or home computer (not shown).

[0121] The processor 1218 may receive power from the power source 1234 and may be configured to distribute and / or control the power to other components in the WTRU 1202. The power source 1234 may be any suitable device for providing power to the WTRU 1202. For example, the power source 1234 may include one or more dry batteries (e.g., nickel-cadmium (NiCd), nickel-zinc (NiZn), nickel metal hydride (NiMH), lithium-ion (Li-ion), etc.), solar cells, fuel cells, etc.

[0122] The processor 1218 may also be coupled to a GPS chipset 1236, which may be configured to provide location information (e.g., longitude and latitude) regarding the current location of the WTRU 1202. In addition to or instead of information from the GPS chipset 1236, the WTRU 1202 may receive location information from a base station (e.g., base stations 1214a, 1214b) over the air interface 1216 and / or determine its location based on the timing of signals being received from two or more nearby base stations. It will be understood that the WTRU 1202 may obtain location information by way of any suitable location-determination method while remaining consistent with an embodiment.

[0123] The processor 1218 may further be coupled to other peripherals 1238, which may include one or more software and / or hardware modules that provide additional features, functionality, and / or wired or wireless connectivity. For example, the peripherals 1238 may include an accelerometer, an electronic compass, a satellite transceiver, a digital camera (for pictures and / or video), a universal serial bus (USB) port, a vibration device, a television transceiver, a hands-free headset, a Bluetooth module, a frequency modulated (FM) radio unit, a digital music player, a media player, a video game player module, an internet browser, a virtual reality and / or augmented reality (VR / AR) device, an activity tracker, etc. The peripherals 1238 may include one or more sensors, which may be one or more of a gyroscope, an accelerometer, a Hall effect sensor, a magnetometer, an orientation sensor, a proximity sensor, a temperature sensor, a time sensor, a geolocation sensor, an altimeter, a light sensor, a touch sensor, a magnetometer, a barometer, a gesture sensor, a biometric sensor, and / or a humidity sensor.

[0124] The WTRU 1202 may include a full-duplex radio where transmission and reception of some or all of the signals (e.g., associated with a particular subframe on both the UL (e.g., for transmission) and DL (e.g., for reception)) may be simultaneous and / or together. The full-duplex radio may include an interference management unit to reduce and / or substantially eliminate self-interference via hardware (e.g., a choke) or via signal processing via a processor (e.g., a separate processor (not shown) or processor 1218). In one embodiment, the WTRU 1202 may include a half-duplex radio for transmission and reception of either some or all of the signals (e.g., associated with a particular subframe for either the UL (e.g., for transmission) or downlink (e.g., for reception)).

[0125] 12C is a system diagram illustrating the RAN 1204 and the CN 1206 according to one embodiment. As mentioned above, the RAN 1204 may communicate with the WTRUs 1202a, 1202b, 1202c over the air interface 1216 using E-UTRA radio technology. The RAN 1204 may also communicate with the CN 1206.

[0126] The RAN 1204 may include eNode-Bs 1260a, 1260b, and 1260c, although it will be understood that the RAN 1204 may include any number of eNode-Bs while remaining consistent with an embodiment. The eNode-Bs 1260a, 1260b, and 1260c may each include one or more transceivers for communicating with the WTRUs 1202a, 1202b, and 1202c over the air interface 1216. In an embodiment, the eNode-Bs 1260a, 1260b, and 1260c may implement MIMO technology. Thus, the eNode-B 1260a may, for example, use multiple antennas to transmit wireless signals to and / or receive wireless signals from the WTRU 1202a.

[0127] Each of the eNode-Bs 1260a, 1260b, 1260c may be associated with a particular cell (not shown) and may be configured to handle radio resource management decisions, handover decisions, user scheduling, etc. in the UL and / or DL. As shown in FIG. 12C, the eNode-Bs 1260a, 1260b, 1260c may communicate with one another via an X2 interface.

[0128] 12C may include a mobility management entity (MME) 1262, a serving gateway (SGW) 1264, and a packet data network (PDN) gateway (or PGW) 1266. While each of the foregoing elements is depicted as part of the CN 1206, it will be understood that any of these elements may be owned and / or operated by an entity other than the CN operator.

[0129] The MME 1262 may be connected to each of the eNode-Bs 1260a, 1260b, 1260c in the RAN 1204 via an S1 interface and may function as a control node. For example, the MME 1262 may be responsible for authenticating users of the WTRUs 1202a, 1202b, 1202c, bearer activation / deactivation, selecting a particular serving gateway during initial attach of the WTRUs 1202a, 1202b, 1202c, etc. The MME 1262 may provide a control plane function for switching between the RAN 1204 and other RANs (not shown) that employ other radio technologies, such as GSM and / or WCDMA.

[0130] The SGW 1264 may be connected to each of the eNode Bs 1260a, 1260b, 1260c in the RAN 1204 via an S1 interface. The SGW 1264 may generally route and forward user data packets to and from the WTRUs 1202a, 1202b, 1202c. The SGW 1264 may perform other functions such as anchoring the user plane during inter-eNode B handovers, triggering paging when DL data is available to the WTRUs 1202a, 1202b, 1202c, and managing and storing the context of the WTRUs 1202a, 1202b, 1202c.

[0131] The SGW 1264 may be connected to a PGW 1266, which may provide the WTRUs 1202a, 1202b, 1202c with access to packet-switched networks, such as the Internet 1210, to facilitate communications between the WTRUs 1202a, 1202b, 1202c and IP-enabled devices.

[0132] The CN 1206 may facilitate communication with other networks. For example, the CN 1206 may provide the WTRUs 1202a, 1202b, 1202c with access to circuit-switched networks, such as the PSTN 1208, to facilitate communication between the WTRUs 1202a, 1202b, 1202c and traditional landline communication devices. For example, the CN 1206 may include or communicate with an IP gateway (e.g., an IP multimedia subsystem (IMS) server) that serves as an interface between the CN 1206 and the PSTN 1208. Furthermore, the CN 1206 may provide the WTRUs 1202a, 1202b, 1202c with access to other networks 1212, which may include other wired and / or wireless networks owned and / or operated by other service providers.

[0133] Although the WTRU is depicted in Figures 12A-12D as a wireless terminal, it is contemplated that in certain representative embodiments, such a terminal may use a wired communication interface with the communication network (e.g., temporarily or permanently).

[0134] In a representative embodiment, the other network 1212 may be a WLAN.

[0135] A WLAN in infrastructure Basic Service Set (BSS) mode may have an access point (AP) of the BSS and one or more stations (STAs) associated with the AP. The AP may have access or interface to a Distribution System (DS) or another type of wired / wireless network that carries traffic into and / or out of the BSS. Traffic to a STA originating from outside the BSS may arrive through the AP and be delivered to the STA. Traffic originating from a STA to a destination outside the BSS may be sent to the AP and transmitted to the respective destination. Traffic between STAs within a BSS may be transmitted, for example, through the AP, where a source STA may send traffic to the AP, which may deliver the traffic to the destination STA. Traffic between STAs within a BSS may be considered and / or referred to as peer-to-peer traffic. Peer-to-peer traffic may be sent (e.g., directly) between a source STA and a destination STA using a direct link setup (DLS). In certain representative embodiments, the DLS may use 802.11e DLS or 802.11z tunneled DLS (TDLS). A WLAN using an Independent BSS (IBSS) mode may not have an AP, and STAs within or using the IBSS (e.g., all of the STAs) may communicate directly with each other. The IBSS mode of communication may be referred to herein as an "ad hoc" communication mode.

[0136] When using the 802.11ac infrastructure mode of operation or a similar mode of operation, an AP may transmit beacons on a fixed channel, such as a primary channel. The primary channel may be a fixed width (e.g., a 20 MHz wide bandwidth) or a width that is dynamically set via signaling. The primary channel may be the operating channel of the BSS and may be used by STAs to establish a connection with the AP. In some representative embodiments, for example, in an 802.11 system, Carrier Sense Multiple Access / Collision Avoidance (CSMA / CA) with collision avoidance may be implemented. With CSMA / CA, STAs (e.g., all STAs), including the AP, may sense the primary channel. If the primary channel is sensed / detected and / or determined to be busy by a particular STA, the particular STA may back off. One STA (e.g., only one station) may transmit at any given time in a given BSS.

[0137] High Throughput (HT) STAs may, for example, use 40 MHz wide channels for communication via a combination of a primary 20 MHz channel and adjacent or non-adjacent 20 MHz channels to form a 40 MHz wide channel.

[0138] A Very High Throughput (VHT) STA may support 20 MHz, 40 MHz, 80 MHz, and / or 160 MHz wide channels. 40 MHz and / or 80 MHz may be formed by combining contiguous 20 MHz channels. A 160 MHz channel may be formed by combining eight contiguous 20 MHz channels or by combining two non-contiguous 80 MHz channels, which may be referred to as an 80+80 configuration. For the 80+80 configuration, after channel encoding, the data may pass through a segment parser that may split the data into two streams. Inverse Fast Fourier Transform (IFFT) processing and time-domain processing may be performed separately on each stream. The streams may be mapped to two 80 MHz channels, and the data may be transmitted by the transmitting STA. At the receiver of the receiving STA, the above operations for the 80+80 configuration may be reversed, and the combined data may be sent to Medium Access Control (MAC).

[0139] Sub-1 GHz operating modes are supported by 802.11af and 802.11ah. Channel operating bandwidths and carriers are reduced in 802.11af and 802.11ah compared to those used in 802.11n and 802.11ac. 802.11af supports 5 MHz, 10 MHz, and 20 MHz bandwidths in the TV White Space (TVWS) spectrum, while 802.11ah supports 1 MHz, 2 MHz, 4 MHz, 8 MHz, and 16 MHz bandwidths using non-TVWS spectrum. According to representative embodiments, 802.11ah may support meter-type control / machine-type communications, such as MTC devices within macro coverage areas. MTC devices may have limited capabilities, including, for example, support for (e.g., only for) specific and / or limited bandwidths. MTC devices may include batteries with above-threshold battery life (e.g., to maintain very long battery life).

[0140] WLAN systems that can support multiple channels and channel bandwidths, such as 802.11n, 802.11ac, 802.11af, and 802.11ah, include a channel that can be designated as a primary channel. The primary channel can have a bandwidth equal to the maximum common operating bandwidth supported by all STAs in the BSS. The bandwidth of the primary channel can be configured and / or limited by the STA among all STAs operating in the BSS that support the minimum bandwidth operating mode. In an 802.11ah example, the primary channel can be 1 MHz wide for STAs (e.g., MTC-type devices) that support (e.g., only) the 1 MHz mode, even if the AP and other STAs in the BSS support 2 MHz, 4 MHz, 8 MHz, 16 MHz, and / or other channel bandwidth operating modes. Carrier sensing and / or Network Allocation Vector (NAV) configuration can depend on the conditions of the primary channel. For example, if the primary channel is busy due to STAs (that only support 1 MHz operating mode) transmitting to the AP, the entire available frequency band may be considered busy, even though most of the frequency band may remain idle and be available for use.

[0141] In the United States, the available frequency band that can be used by 802.11ah is 902MHz to 928MHz. In South Korea, the available frequency band is 917.5MHz to 923.5MHz. In Japan, the available frequency band is 916.5MHz to 927.5MHz. The total bandwidth available for 802.11ah is 6MHz to 26MHz depending on the country code.

[0142] 12D is a system diagram illustrating the RAN 1213 and the CN 1215 according to one embodiment. As mentioned above, the RAN 1213 may communicate with the WTRUs 1202a, 1202b, 1202c over the air interface 1216 using NR radio technology. The RAN 1213 may also communicate with the CN 1215.

[0143] The RAN 1213 may include gNBs 1280a, 1280b, and 1280c, although it will be understood that the RAN 1213 may include any number of gNBs while remaining consistent with an embodiment. The gNBs 1280a, 1280b, and 1280c may each include one or more transceivers for communicating with the WTRUs 1202a, 1202b, and 1202c over the air interface 1216. In an embodiment, the gNBs 1280a, 1280b, and 1280c may implement MIMO technology. For example, the gNBs 1280a, 1280b may utilize beamforming to transmit signals to and / or receive signals from the gNBs 1280a, 1280b, and 1280c. Thus, the gNB 1280a may, for example, transmit wireless signals to and / or receive wireless signals from the WTRU 1202a using multiple antennas. In one embodiment, the gNBs 1280a, 1280b, 1280c may implement carrier aggregation technology. For example, the gNB 1280a may transmit multiple component carriers to the WTRU 1202a (not shown). A subset of these component carriers may be on an unlicensed spectrum, and the remaining component carriers may be on a licensed spectrum. In one embodiment, the gNBs 1280a, 1280b, 1280c may implement Coordinated Multi-Point (CoMP) technology. For example, the WTRU 1202a may receive coordinated transmissions from the gNBs 1280a and 1280b (and / or gNB 1280c).

[0144] The WTRUs 1202a, 1202b, 1202c may communicate with the gNBs 1280a, 1280b, 1280c using transmissions associated with a scalable numerology. For example, the OFDM symbol spacing and / or OFDM subcarrier spacing may vary for different transmissions, different cells, and / or different portions of the wireless transmission spectrum. The WTRUs 1202a, 1202b, 1202c may communicate with the gNBs 1280a, 1280b, 1280c using subframes or transmission time intervals (TTIs) of different or scalable lengths (e.g., including different numbers of OFDM symbols and / or lasting different lengths of absolute time).

[0145] The gNBs 1280a, 1280b, 1280c may be configured to communicate with the WTRUs 1202a, 1202b, 1202c in a standalone configuration and / or a non-standalone configuration. In a standalone configuration, the WTRUs 1202a, 1202b, 1202c may communicate with the gNBs 1280a, 1280b, 1280c without accessing another RAN (e.g., eNode-Bs 1260a, 1260b, 1260c, etc.). In a standalone configuration, the WTRUs 1202a, 1202b, 1202c may utilize one or more of the gNBs 1280a, 1280b, 1280c as mobility anchor points. In a standalone configuration, the WTRUs 1202a, 1202b, 1202c may communicate with the gNBs 1280a, 1280b, 1280c using signals in unlicensed bands. The non-standalone configuration WTRUs 1202a, 1202b, 1202c may communicate with and connect to the gNBs 1280a, 1280b, 1280c while also communicating with and connecting to another RAN, such as the eNode-Bs 1260a, 1260b, 1260c. For example, the WTRUs 1202a, 1202b, 1202c may implement a DC principle to communicate with one or more gNBs 1280a, 1280b, 1280c and one or more eNode-Bs 1260a, 1260b, 1260c substantially simultaneously. In a non-standalone configuration, the eNode-Bs 1260a, 1260b, 1260c may act as mobility anchors for the WTRUs 1202a, 1202b, 1202c, and the gNBs 1280a, 1280b, 1280c may provide additional coverage and / or throughput for serving the WTRUs 1202a, 1202b, 1202c.

[0146] Each of the gNBs 1280a, 1280b, 1280c may be associated with a particular cell (not shown) and may be configured to handle radio resource management decisions, handover decisions, scheduling of users in the UL and / or DL, support for network slicing, dual connectivity, interworking between NR and E-UTRA, routing of user plane data to User Plane Functions (UPFs) 1284a, 1284b, routing of control plane information to Access and Mobility Management Functions (AMFs) 1282a, 1282b, etc. As shown in FIG. 12D, the gNBs 1280a, 1280b, 1280c may communicate with each other via an Xn interface.

[0147] The CN 1215 shown in Figure 12D may include at least one AMF 1282a, 1282b, at least one UPF 1284a, 1284b, at least one Session Management Function (SMF) 1283a, 1283b, and possibly a Data Network (DN) 1285a, 1285b. While each of the foregoing elements is depicted as part of the CN 1215, it will be understood that any of these elements may be owned and / or operated by an entity other than the CN operator.

[0148] The AMF 1282a, 1282b may be connected to one or more of the gNBs 1280a, 1280b, 1280c in the RAN 1213 via an N2 interface and may function as a control node. For example, the AMF 1282a, 1282b may be responsible for authenticating users of the WTRUs 1202a, 1202b, 1202c, support for network slicing (e.g., handling different PDU sessions with different requirements), selecting a particular SMF 1283a, 1283b, managing registration areas, terminating NAS signaling, mobility management, etc. The network slices may be used by the AMF 1282a, 1282b to customize the CN support of the WTRUs 1202a, 1202b, 1202c based on the type of service utilizing the WTRUs 1202a, 1202b, 1202c. For example, different network slices may be established for different use cases, such as services relying on ultra-reliable low latency (URLLC) access, services relying on enhanced massive mobile broadband (eMBB) access, services for machine type communication (MTC) access, and / or the like. The AMF 1282 may provide a control plane function for switching between the RAN 1213 and other RANs (not shown) employing other radio technologies, such as LTE, LTE-A, LTE-A Pro, and / or non-3GPP access technologies, such as WiFi.

[0149] The SMFs 1283a and 1283b may be connected to the AMFs 1282a and 1282b in the CN 1215 via an N11 interface. The SMFs 1283a and 1283b may also be connected to the UPFs 1284a and 1284b in the CN 1215 via an N4 interface. The SMFs 1283a and 1283b may select and control the UPFs 1284a and 1284b and configure the routing of traffic through the UPFs 1284a and 1284b. The SMFs 1283a and 1283b may perform other functions, such as managing and assigning UE IP addresses, managing PDU sessions, controlling policy enforcement and QoS, providing downlink data notification, etc. The PDU session type may be IP-based, non-IP-based, Ethernet-based, etc.

[0150] The UPFs 1284a, 1284b may be connected to one or more of the gNBs 1280a, 1280b, 1280c in the RAN 1213 via an N3 interface, which may provide the WTRUs 1202a, 1202b, 1202c with access to packet-switched networks such as the Internet 1210 to facilitate communications between the WTRUs 1202a, 1202b, 1202c and IP-enabled devices. The UPFs 1284, 1284b may perform other functions such as routing and forwarding packets, enforcing user plane policy, supporting multi-homed PDU sessions, handling user plane QoS, buffering downlink packets, providing mobility anchoring, etc.

[0151] The CN 1215 may facilitate communication with other networks. For example, the CN 1215 may include or communicate with an IP gateway (e.g., an IP multimedia subsystem (IMS) server) that serves as an interface between the CN 1215 and the PSTN 1208. Additionally, the CN 1215 may provide the WTRUs 1202a, 1202b, 1202c with access to other networks 1212, which may include other wired and / or wireless networks owned and / or operated by other service providers. In one embodiment, the WTRUs 1202a, 1202b, 1202c may be connected to local data networks (DNs) 1285a, 1285b through the UPFs 1284a, 1284b via an N3 interface to the UPFs 1284a, 1284b and an N6 interface between the UPFs 1284a, 1284b and the DNs 1285a, 1285b.

[0152] 12A-12D and the corresponding descriptions thereof, one or more or all of the functions described herein with respect to one or more of the WTRUs 1202a-d, base stations 1214a-b, eNode-Bs 1260a-c, MME 1262, SGW 1264, PGW 1266, gNBs 1280a-c, AMFs 1282a-b, UPFs 1284a-b, SMFs 1283a-b, DNs 1285a-b, and / or any other devices described herein may be performed by one or more emulation devices (not shown). The emulation devices may be one or more devices configured to emulate one or more or all of the functions described herein. For example, the emulation devices may be used to test other devices and / or simulate network and / or WTRU functions.

[0153] The emulation devices may be designed to implement one or more tests of other devices in a lab environment and / or an operator network environment. For example, one or more emulation devices may perform one or more or all functions while fully or partially implemented and / or deployed as part of a wired and / or wireless communication network to test other devices in the communication network. One or more emulation devices may perform one or more or all functions while temporarily implemented / deployed as part of a wired and / or wireless communication network. The emulation devices may be directly coupled to another device for testing purposes and / or may perform testing using terrestrial wireless communication.

[0154] One or more emulation devices may perform one or more functions, including but not limited to, while not implemented / deployed as part of a wired and / or wireless communication network. For example, the emulation devices may be utilized in a test scenario in a test lab and / or in an undeployed (e.g., test) wired and / or wireless communication network to implement testing of one or more components. One or more emulation devices may be test equipment. Direct RF coupling and / or wireless communication via RF circuitry (which may include, e.g., one or more antennas) may be used by the emulation devices to transmit and / or receive data.

[0155] Although features and elements are described above in particular combinations, those skilled in the art will understand that each feature or element can be used alone or in any combination with the other features and elements. Furthermore, the methods described herein may be implemented in a computer program, software, or firmware embodied in a computer-readable medium for execution by a computer or processor. Examples of computer-readable media include electronic signals (transmitted via wired or wireless connections) and computer-readable storage media. Examples of computer-readable storage media include, but are not limited to, read-only memory (ROM), random-access memory (RAM), registers, cache memory, semiconductor memory devices, magnetic media such as internal hard disks and removable disks, magneto-optical media, and optical media such as CD-ROM disks and digital versatile disks (DVDs). A processor in association with software may be used to implement a radio frequency transceiver for use in a WTRU, UE, terminal, base station, RNC, or any host computer.

Claims

1. 1. An apparatus for video decoding, comprising one or more processors, the one or more processors comprising: obtaining video data, the video data including an encoded picture, the encoded picture including a first sub-picture, the video data further including information indicating whether wraparound motion compensation is enabled for the first sub-picture; determining whether to apply wraparound motion compensation to the first sub-picture based on the information included in the video data; in response to determining that wraparound motion compensation is applied to the first subpicture, performing wraparound motion compensation on the first subpicture, the wraparound compensation being performed based on at least a wraparound offset associated with the first subpicture.

2. The apparatus of claim 1 , wherein the one or more processors are further configured to determine the wraparound offset associated with the first subpicture based on the information included in the video data.

3. 2. The apparatus of claim 1, wherein the coded picture further includes a second sub-picture, and the information included in the video data indicates that wraparound motion compensation is enabled for the first sub-picture and disabled for the second sub-picture.

4. 2. The apparatus of claim 1, wherein the video data includes a picture parameter set (PPS) syntax element indicating that wraparound motion compensation is enabled and a sequence parameter set (SPS) syntax element indicating that the first subpicture is to be treated as a picture, and the one or more processors are configured to determine whether to apply wraparound motion compensation to the first subpicture based on at least the PPS syntax element and the SPS syntax element.

5. 2. The apparatus of claim 1, wherein the one or more processors configured to perform the wraparound motion compensation for the first subpicture comprise the one or more processors configured to perform luma sample bilinear interpolation for the first subpicture based on the wraparound offset associated with the first subpicture.

6. 1. A method for video decoding, comprising: obtaining video data, the video data including an encoded picture, the encoded picture including a first sub-picture, the video data further including information indicating whether wraparound motion compensation is enabled for the first sub-picture; determining whether to apply wraparound motion compensation to the first sub-picture based on the information included in the video data; and in response to determining that wraparound motion compensation is applied to the first subpicture, performing wraparound motion compensation on the first subpicture, the wraparound compensation being performed based on a wraparound offset associated with the first subpicture.

7. The method of claim 6 , further comprising determining the wrap-around offset associated with the first sub-picture based on the information included in the video data.

8. 7. The method of claim 6, wherein the coded picture further includes a second sub-picture, and the information included in the video data indicates that wraparound motion compensation is enabled for the first sub-picture and disabled for the second sub-picture.

9. 7. The method of claim 6, wherein the video data includes a picture parameter set (PPS) syntax element indicating that wraparound motion compensation is enabled and a sequence parameter set (SPS) syntax element indicating that the first sub-picture is to be treated as a picture, and determining whether to apply wraparound motion compensation to the first sub-picture includes determining whether to apply wraparound motion compensation to the first sub-picture based on at least the PPS syntax element and the SPS syntax element.

10. 7. The method of claim 6, wherein performing wraparound motion compensation on the first subpicture comprises performing luma sample bilinear interpolation on the first subpicture based on the wraparound offset associated with the first subpicture.

11. 11. The apparatus of claim 1 or the method of claim 6, wherein in response to the determination that wraparound motion compensation is to be applied to the first sub-picture, the wraparound motion compensation is performed horizontally on the first sub-picture.

12. The device of any one of claims 1 to 5 or the method of any one of claims 6 to 10, wherein the encoded pictures are associated with a 360° video.

13. 1. An apparatus for video encoding, comprising one or more processors, the one or more processors comprising: encoding a picture, the picture including a first sub-picture; obtaining information indicating whether wraparound motion compensation is enabled for the first sub-picture and a wraparound offset associated with the first sub-picture; forming a set of coded data including the coded picture and the captured information.

14. 14. The apparatus of claim 13, wherein the picture further includes a second subpicture, and the obtained information further indicates that wraparound motion compensation is enabled for the first subpicture and disabled for the second subpicture.

15. 14. The apparatus of claim 13, wherein the obtained information includes a picture parameter set (PPS) syntax element indicating that wraparound motion compensation is enabled and a sequence parameter set (SPS) syntax element indicating that the first subpicture is to be treated as a picture.

16. The apparatus of claim 13 , wherein the one or more processors are further configured to transmit the encoded sets of data to a receiving device.

17. 1. A method for video encoding, the method comprising: encoding a picture, the picture including a first sub-picture; obtaining information indicating whether wraparound motion compensation is enabled for the first sub-picture and a wraparound offset associated with the first sub-picture; forming a set of coded data including the coded picture and the captured information.

18. 18. The method of claim 17, wherein the picture further includes a second sub-picture, and the obtained information further indicates that wraparound motion compensation is enabled for the first sub-picture and disabled for the second sub-picture.

19. 18. The method of claim 17, wherein the obtained information includes a picture parameter set (PPS) syntax element indicating that wraparound motion compensation is enabled and a sequence parameter set (SPS) syntax element indicating that the first subpicture is to be treated as a picture.

20. 20. The method of claim 17, further comprising transmitting the set of encoded data to a receiving device.

21. A non-transitory computer readable medium containing data content generated according to the method of any one of claims 6 to 12 and claims 17 to 20.

22. A computer readable medium comprising instructions for causing one or more processors to perform the method of any one of claims 6 to 12 and claims 17 to 20.

23. A computer program product comprising instructions for carrying out the method of any one of claims 6 to 12 and claims 17 to 20 when executed by one or more processors.

24. A device, A device according to any one of claims 1 to 5, 11 and 12; 1. A device comprising: (i) an antenna configured to receive a signal, the signal including data representing an image; (ii) a band limiter configured to limit the received signal to a band of frequencies including the data representing the image; or (iii) a display configured to display the image.

25. The device of any one of claims 1 to 5, 11 and 12, comprising a TV, a mobile phone, a tablet or a set-top box (STB).

26. A signal comprising a residual generated based on the wrap-around motion compensation according to the method of any one of claims 6 to 12.

27. 1. An apparatus comprising: an access unit configured to access data comprising residuals generated based on the wrap-around motion compensation according to the method of any one of claims 6 to 12; a transmitter configured to transmit the data including the residual.

28. 1. A method comprising: Accessing data comprising residuals generated based on the wrap-around motion compensation according to the method of any one of claims 6 to 12; transmitting the data including the residual.

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