US20160283825A1 - Clustered Palette Compression - Google Patents
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Definitions
- Traffic to and from memory is a large power consumer in a computer system. Therefore, it is of utmost importance to develop techniques that reduce the memory traffic.
- One way to reduce power consumption from memory traffic is to use a cache hierarchy and another is to employ different types of compression of the data that is being transported.
- FIG. 1 is a depiction of palette compression according to one embodiment
- FIG. 2 is a depiction of palette compression with clustering according to one embodiment
- FIG. 3 is a flow chart for one embodiment
- FIG. 4 is a depiction of a clustering algorithm according to one embodiment
- FIG. 5 is a graph of red and green channels in one hypothetical example
- FIG. 6 is a block diagram of a processing system according to one embodiment
- FIG. 7 is a block diagram of a processor according to one embodiment
- FIG. 8 is a block diagram of a graphics processor according to one embodiment
- FIG. 9 is a block diagram of a graphics processing engine according to one embodiment.
- FIG. 10 is a block diagram of another embodiment of a graphics processor
- FIG. 11 is a depiction thread execution logic according to one embodiment
- FIG. 12 is a block diagram of a graphics processor instruction format according to some embodiments.
- FIG. 13 is a block diagram of another embodiment of a graphics processor
- FIG. 14A is a block diagram of a graphics processor command format according to some embodiments.
- FIG. 14B is a block diagram illustrating a graphics processor command sequence according to some embodiments.
- FIG. 15 is a depiction of an exemplary graphics software architecture according to some embodiments.
- FIG. 16 is a block diagram illustrating an IP core development system according to some embodiments.
- FIG. 17 is a block diagram showing an exemplary system on chip integrated circuit according to some embodiments.
- palette-based compression may be based on clustering, which makes the actual palette much smaller to store, in turn improving compression success rates.
- the palette in itself is a large portion of the entire compressed representation in a palette-based codec.
- the palette may be compressed using both a clustered approach and by skip encoding color channels that are constant.
- the task at hand is to: (i) collect all individual colors in the tile and store these in a palette, and (ii) assign each sample/pixel value an index to this palette.
- the data collected, depicted in FIG. 1 involves converting each of the colors (in this case these are only three colors), identifying each by a code or index ( 0 , 1 or 2 in this example) and creating a palette which shows which colors ( 3 ) of the palette of available colors (in this case 4 ) is actually being used.
- the total number of bits needed to store the palette along with the palette indices are counted. Then a check determines whether this number of bits fits in the bit budget of the compressed unit. This check may involve determining whether the proposed compression results in fewer number of cache lines than in raw format. If so, compression is achieved.
- the palette itself takes fewer bytes to store than the full representation, and so, this will make the compression success rate higher in some cases. This, in turn, will reduce memory traffic and will increase energy efficiency, in some embodiments.
- the colors in the palette are compressed, so they take up less space.
- each color takes 32 bits (RGBA)
- compression to 64 bytes, i.e., 512 bits is required.
- Each pixel needs k bits for the index, i.e., 32*k bits in total are needed.
- Each color in the palette uses 32 bits (same as original data in the tile), and there are N palette colors. In total, this sums to 32*k+32*N which is less than or equal to 512.
- this means that k+N is less than or equal to 16, and hence, it makes sense to use k 4 bits, which in theory makes it possible to use at most 2 4 or 16 different colors in the palette. Then, there are 512 ⁇ 4*32 or 384 bits left for the color palette, and this means that N is 384/32 or 12 colors in the palette.
- one bit per color channel is used to indicate whether color is constant in one of the color channels. If a bit is 1, as an example, all pixels in the tile have the same value for that channel. For example, all red values may be 23. In this case, the constant value, i.e., 23 is also stored.
- the alpha (A) component is often 0 all over the tile, or 255 all over the tile. If one color channel is skipped, 8 bits are stored for the constant channel, since these are 32 bits for RGBA or 8 bits per channel times 4 values. A skip bit is also stored for each of the four channels to indicate whether the channel is skipped. So, in total, an extra 12 bits are stored in the example of having one constant color, and so each color in the palette is now only 24 (3*8) bits.
- This compression technique can be called the skip bit technique. More than one channel may be constant. If two channels are constant, then the 4 skip bits and then 8+8 bits are stored for the constant channels, and so on.
- the palette encoding method beats other encoding methods. These cases often include tiles where there are distinct groups of colors in the palette.
- the palette may be compressed using clustering.
- Clustering involves finding two or more minimum (lowest color value) colors and then compressing each color in the palette relative to one of these minimum colors.
- the minimum dark gray color may be one minimum color
- the white color is one minimum color. All dark gray colors (called cluster 1 ) are encoded relative the minimum dark gray color
- the two white colors (called cluster 2 ) are encoded relative to the minimum white color.
- skip bits can be used for each cluster. This can actually reduce data more as well.
- FIG. 2 An example of clustering is shown in FIG. 2 for one embodiment using residual bits per sample/pixel, in addition to the color (now cluster) indices.
- FIG. 2 there are only two redish colors (cross-hatched and double cross-hatched) and one blue color (no hatching) (using indices 0 (for the blue color) and 1 (for the two redish colors)).
- the residual bits encode the difference of one of the two redish color values from the minimum color value.
- the palette in this example only has two colors, with one of the variant red colors indicated via residual bits.
- the means can be found, in one embodiment, by finding a minimal bounding box around the color in the space of the remaining color channels, e.g., RGB or RGBA, or RGA (if B is constant and, thus, skipped).
- a minimal bounding box around the color in the space of the remaining color channels, e.g., RGB or RGBA, or RGA (if B is constant and, thus, skipped).
- the minimal bounding box is split in the middle in each color dimension, and this results in a number of sub-boxes.
- the colors that are closest to each corner of this minimal bounding box are found. Two of these “corner colors” are picked, each having the most colors in its sub-box. These colors are the two means to initialize a k-means clustering algorithm.
- the first step is simply to associate each color with the means that it is closest to (in RGB space, for example). When this has been done, each color in the palette has been assigned to one means (which is a color from the palette).
- the second step updates each means as the average of all the colors assigned to that cluster. Then one may do steps one and two a few more times if needed.
- Yet another variant is more iterative. The idea is to take one color from the palette and build a cluster around that color as long as the added colors are sufficiently close. If a color is encountered that is too far away from the current cluster, then a new cluster color is allocated. Continue with the rest of the colors, and attempt to merge them into either of the current two clusters. Then a third cluster can be added, etc. To enable this, one bit per sample/pixel is used to signal if residual bits are stored or not.
- a sequence 40 may be implemented in software, firmware and/or hardware.
- software and firmware embodiments it may be implemented by computer executed instructions stored in one or more non-transitory computer readable media, such as magnetic, optical, or semiconductor storage.
- the sequence begins by looping over all samples or pixels in a tile, as indicated in block 42 . Then, the difference between a given color and colors already in the palette is checked, as indicated in block 44 . If the difference is small because it is less than a threshold, as determined in diamond 46 , then store residual bits and mark the sample, as indicated in block 48 . The residual bits are indicated at 50 .
- a check at diamond 52 determines whether the color is already in the palette. If not, the color is stored in the palette, as indicated in block 54 . Then the palette is updated, as indicated at 56 and the flow iterates back to block 44 .
- the palette entry identifier (ID) is recorded, as indicated in block 48 . Then the sample or pixel is provided in the palette entry list, as indicated at 60 .
- a check at diamond 62 determines whether there are any samples or pixels left. If so, the flow iterates back to block 44 and, otherwise, the flow ends.
- the selection between storing a new palette entry or residual bits against an existing color is arbitrary.
- a gain in number of stored bits can be achieved as long as the number of residual bits per entry plus one bit per sample, is lower than a full color in the palette.
- FIG. 5 an example is given that only visualizes the red and green channels (R and G).
- the red (R) and green (G) axes are labelled. There are 8 pixel colors here. Green pixels or samples are indicated by open circles and red pixels or samples are indicated by solid circles.
- the minimal box around the pixel colors are found. The circle D is at the left-bottom corner, and so this is the minimum color of these 8 pixel colors.
- the minimal boxes B 1 and B 2 are computed for each cell, which created two groups.
- the dark circles D 1 and D 2 show the minimal colors for these two groups.
- each non-empty cell simply encodes each non-empty cell with the minimum color (dark circles D 1 and D 2 in FIG. 4 ) and then add some encoding of residuals inside that box. This may be done with standard methods.
- This example is in two dimensions, but usually there are three (RGB) or four (RGBA) dimensions. Since the coding of the minimal color of a group is rather expensive, sometimes it makes sense to merge two groups into one. One may also choose to transform the colors into another color space, such that YCoGg, in order to reduce the volume of each box, therefore reducing the number of residual bits.
- Merging only needs to continue until the target bit threshold is reached (or less). There is also the possibility to split more than once per dimension. This creates more cells whose minimal boxes must be merged. Each cell may get more direct neighbors in this case.
- the minimum color of each cluster is stored.
- the 4 skip bits may be stored per cluster, and if a channel is constant within a cluster, then that channel need not encode residuals. In this case 3 size bits are stored per channel to indicate how many residual bits are needed per channel. For example, if the maximum difference for the red channel within a cluster is 13, then 4 bits are needed to store such differences, and hence then 3 size bits will be set to 4 in this case.
- Sequence 34 may be implemented in software, firmware and/or hardware.
- software and firmware embodiments it may be implemented by computer executed instructions stored in one or more non-transitory computer readable media such as a magnetic, optical or semiconductor storage.
- the sequence may be implemented for example by a graphics processing unit in some cases.
- the sequence 34 begins by looping over a tile (block 12 ).
- a tile is simply an image portion containing samples or pixels.
- any constant color channels are found as indicated in block 14 .
- clusters are found in block 16 , coded in block 18 and added to palette 24 . Any clusters that are of constant color may also be skipped but encoded as well. One may also use separate skip bits per cluster, which may be useful in some cases.
- the flow loops over all samples or pixels in a tile.
- a cluster or palette entry is selected in block 22 .
- the palette entry identification and residual is encoded, as indicated in block 26 .
- the sample or pixel residual values 30 are stored.
- the sample or pixel is stored in the palette entry list 28 .
- a check at diamond 32 indicates whether there are more samples or pixels left to process and if so, the flow iterates back to loop over the tile. Otherwise, the flow ends.
- FIG. 6 is a block diagram of a processing system 100 , according to an embodiment.
- the system 100 includes one or more processors 102 and one or more graphics processors 108 , and may be a single processor desktop system, a multiprocessor workstation system, or a server system having a large number of processors 102 or processor cores 107 .
- the system 100 is a processing platform incorporated within a system-on-a-chip (SoC) integrated circuit for use in mobile, handheld, or embedded devices.
- SoC system-on-a-chip
- An embodiment of system 100 can include, or be incorporated within a server-based gaming platform, a game console, including a game and media console, a mobile gaming console, a handheld game console, or an online game console.
- system 100 is a mobile phone, smart phone, tablet computing device or mobile Internet device.
- Data processing system 100 can also include, couple with, or be integrated within a wearable device, such as a smart watch wearable device, smart eyewear device, augmented reality device, or virtual reality device.
- data processing system 100 is a television or set top box device having one or more processors 102 and a graphical interface generated by one or more graphics processors 108 .
- the one or more processors 102 each include one or more processor cores 107 to process instructions which, when executed, perform operations for system and user software.
- each of the one or more processor cores 107 is configured to process a specific instruction set 109 .
- instruction set 109 may facilitate Complex Instruction Set Computing (CISC), Reduced Instruction Set Computing (RISC), or computing via a Very Long Instruction Word (VLIW).
- Multiple processor cores 107 may each process a different instruction set 109 , which may include instructions to facilitate the emulation of other instruction sets.
- Processor core 107 may also include other processing devices, such a Digital Signal Processor (DSP).
- DSP Digital Signal Processor
- the processor 102 includes cache memory 104 .
- the processor 102 can have a single internal cache or multiple levels of internal cache.
- the cache memory is shared among various components of the processor 102 .
- the processor 102 also uses an external cache (e.g., a Level-3 (L3) cache or Last Level Cache (LLC)) (not shown), which may be shared among processor cores 107 using known cache coherency techniques.
- L3 cache Level-3
- LLC Last Level Cache
- a register file 106 is additionally included in processor 102 which may include different types of registers for storing different types of data (e.g., integer registers, floating point registers, status registers, and an instruction pointer register). Some registers may be general-purpose registers, while other registers may be specific to the design of the processor 102 .
- processor 102 is coupled to a processor bus 110 to transmit communication signals such as address, data, or control signals between processor 102 and other components in system 100 .
- the system 100 uses an exemplary ‘hub’ system architecture, including a memory controller hub 116 and an Input Output (I/O) controller hub 130 .
- a memory controller hub 116 facilitates communication between a memory device and other components of system 100
- an I/O Controller Hub (ICH) 130 provides connections to I/O devices via a local I/O bus.
- the logic of the memory controller hub 116 is integrated within the processor.
- Memory device 120 can be a dynamic random access memory (DRAM) device, a static random access memory (SRAM) device, flash memory device, phase-change memory device, or some other memory device having suitable performance to serve as process memory.
- the memory device 120 can operate as system memory for the system 100 , to store data 122 and instructions 121 for use when the one or more processors 102 executes an application or process.
- Memory controller hub 116 also couples with an optional external graphics processor 112 , which may communicate with the one or more graphics processors 108 in processors 102 to perform graphics and media operations.
- ICH 130 enables peripherals to connect to memory device 120 and processor 102 via a high-speed I/O bus.
- the I/O peripherals include, but are not limited to, an audio controller 146 , a firmware interface 128 , a wireless transceiver 126 (e.g., Wi-Fi, Bluetooth), a data storage device 124 (e.g., hard disk drive, flash memory, etc.), and a legacy I/O controller 140 for coupling legacy (e.g., Personal System 2 (PS/2)) devices to the system.
- PS/2 Personal System 2
- One or more Universal Serial Bus (USB) controllers 142 connect input devices, such as keyboard and mouse 144 combinations.
- a network controller 134 may also couple to ICH 130 .
- a high-performance network controller (not shown) couples to processor bus 110 .
- the system 100 shown is exemplary and not limiting, as other types of data processing systems that are differently configured may also be used.
- the I/O controller hub 130 may be integrated within the one or more processor 102 , or the memory controller hub 116 and I/O controller hub 130 may be integrated into a discreet external graphics processor, such as the external graphics processor 112 .
- FIG. 7 is a block diagram of an embodiment of a processor 200 having one or more processor cores 202 A- 202 N, an integrated memory controller 214 , and an integrated graphics processor 208 .
- processor 200 can include additional cores up to and including additional core 202 N represented by the dashed lined boxes.
- processor cores 202 A- 202 N includes one or more internal cache units 204 A- 204 N.
- each processor core also has access to one or more shared cached units 206 .
- the internal cache units 204 A- 204 N and shared cache units 206 represent a cache memory hierarchy within the processor 200 .
- the cache memory hierarchy may include at least one level of instruction and data cache within each processor core and one or more levels of shared mid-level cache, such as a Level 2 (L2), Level 3 (L3), Level 4 (L4), or other levels of cache, where the highest level of cache before external memory is classified as the LLC.
- cache coherency logic maintains coherency between the various cache units 206 and 204 A- 204 N.
- processor 200 may also include a set of one or more bus controller units 216 and a system agent core 210 .
- the one or more bus controller units 216 manage a set of peripheral buses, such as one or more Peripheral Component Interconnect buses (e.g., PCI, PCI Express).
- System agent core 210 provides management functionality for the various processor components.
- system agent core 210 includes one or more integrated memory controllers 214 to manage access to various external memory devices (not shown).
- one or more of the processor cores 202 A- 202 N include support for simultaneous multi-threading.
- the system agent core 210 includes components for coordinating and operating cores 202 A- 202 N during multi-threaded processing.
- System agent core 210 may additionally include a power control unit (PCU), which includes logic and components to regulate the power state of processor cores 202 A- 202 N and graphics processor 208 .
- PCU power control unit
- processor 200 additionally includes graphics processor 208 to execute graphics processing operations.
- the graphics processor 208 couples with the set of shared cache units 206 , and the system agent core 210 , including the one or more integrated memory controllers 214 .
- a display controller 211 is coupled with the graphics processor 208 to drive graphics processor output to one or more coupled displays.
- display controller 211 may be a separate module coupled with the graphics processor via at least one interconnect, or may be integrated within the graphics processor 208 or system agent core 210 .
- a ring based interconnect unit 212 is used to couple the internal components of the processor 200 .
- an alternative interconnect unit may be used, such as a point-to-point interconnect, a switched interconnect, or other techniques, including techniques well known in the art.
- graphics processor 208 couples with the ring interconnect 212 via an I/O link 213 .
- the exemplary I/O link 213 represents at least one of multiple varieties of I/O interconnects, including an on package I/O interconnect which facilitates communication between various processor components and a high-performance embedded memory module 218 , such as an eDRAM module.
- a high-performance embedded memory module 218 such as an eDRAM module.
- each of the processor cores 202 - 202 N and graphics processor 208 use embedded memory modules 218 as a shared Last Level Cache.
- processor cores 202 A- 202 N are homogenous cores executing the same instruction set architecture.
- processor cores 202 A- 202 N are heterogeneous in terms of instruction set architecture (ISA), where one or more of processor cores 202 A-N execute a first instruction set, while at least one of the other cores executes a subset of the first instruction set or a different instruction set.
- processor cores 202 A- 202 N are heterogeneous in terms of microarchitecture, where one or more cores having a relatively higher power consumption couple with one or more power cores having a lower power consumption.
- processor 200 can be implemented on one or more chips or as an SoC integrated circuit having the illustrated components, in addition to other components.
- FIG. 8 is a block diagram of a graphics processor 300 , which may be a discrete graphics processing unit, or may be a graphics processor integrated with a plurality of processing cores.
- the graphics processor communicates via a memory mapped I/O interface to registers on the graphics processor and with commands placed into the processor memory.
- graphics processor 300 includes a memory interface 314 to access memory.
- Memory interface 314 can be an interface to local memory, one or more internal caches, one or more shared external caches, and/or to system memory.
- graphics processor 300 also includes a display controller 302 to drive display output data to a display device 320 .
- Display controller 302 includes hardware for one or more overlay planes for the display and composition of multiple layers of video or user interface elements.
- graphics processor 300 includes a video codec engine 306 to encode, decode, or transcode media to, from, or between one or more media encoding formats, including, but not limited to Moving Picture Experts Group (MPEG) formats such as MPEG-2, Advanced Video Coding (AVC) formats such as H.264/MPEG-4 AVC, as well as the Society of Motion Picture & Television Engineers (SMPTE) 421M/VC-1, and Joint Photographic Experts Group (JPEG) formats such as JPEG, and Motion JPEG (MJPEG) formats.
- MPEG Moving Picture Experts Group
- AVC Advanced Video Coding
- SMPTE Society of Motion Picture & Television Engineers
- JPEG Joint Photographic Experts Group
- JPEG Joint Photographic Experts Group
- graphics processor 300 includes a block image transfer (BLIT) engine 304 to perform two-dimensional (2D) rasterizer operations including, for example, bit-boundary block transfers.
- 2D graphics operations are performed using one or more components of graphics processing engine (GPE) 310 .
- graphics processing engine 310 is a compute engine for performing graphics operations, including three-dimensional (3D) graphics operations and media operations.
- GPE 310 includes a 3D pipeline 312 for performing 3D operations, such as rendering three-dimensional images and scenes using processing functions that act upon 3D primitive shapes (e.g., rectangle, triangle, etc.).
- the 3D pipeline 312 includes programmable and fixed function elements that perform various tasks within the element and/or spawn execution threads to a 3D/Media sub-system 315 . While 3D pipeline 312 can be used to perform media operations, an embodiment of GPE 310 also includes a media pipeline 316 that is specifically used to perform media operations, such as video post-processing and image enhancement.
- media pipeline 316 includes fixed function or programmable logic units to perform one or more specialized media operations, such as video decode acceleration, video de-interlacing, and video encode acceleration in place of, or on behalf of video codec engine 306 .
- media pipeline 316 additionally includes a thread spawning unit to spawn threads for execution on 3D/Media sub-system 315 . The spawned threads perform computations for the media operations on one or more graphics execution units included in 3D/Media sub-system 315 .
- 3D/Media subsystem 315 includes logic for executing threads spawned by 3D pipeline 312 and media pipeline 316 .
- the pipelines send thread execution requests to 3D/Media subsystem 315 , which includes thread dispatch logic for arbitrating and dispatching the various requests to available thread execution resources.
- the execution resources include an array of graphics execution units to process the 3D and media threads.
- 3D/Media subsystem 315 includes one or more internal caches for thread instructions and data.
- the subsystem also includes shared memory, including registers and addressable memory, to share data between threads and to store output data.
- FIG. 9 is a block diagram of a graphics processing engine 410 of a graphics processor in accordance with some embodiments.
- the GPE 410 is a version of the GPE 310 shown in FIG. 8 .
- Elements of FIG. 9 having the same reference numbers (or names) as the elements of any other figure herein can operate or function in any manner similar to that described elsewhere herein, but are not limited to such.
- GPE 410 couples with a command streamer 403 , which provides a command stream to the GPE 3D and media pipelines 412 , 416 .
- command streamer 403 is coupled to memory, which can be system memory, or one or more of internal cache memory and shared cache memory.
- command streamer 403 receives commands from the memory and sends the commands to 3D pipeline 412 and/or media pipeline 416 .
- the commands are directives fetched from a ring buffer, which stores commands for the 3D and media pipelines 412 , 416 .
- the ring buffer can additionally include batch command buffers storing batches of multiple commands.
- execution unit array 414 is scalable, such that the array includes a variable number of execution units based on the target power and performance level of GPE 410 .
- a sampling engine 430 couples with memory (e.g., cache memory or system memory) and execution unit array 414 .
- sampling engine 430 provides a memory access mechanism for execution unit array 414 that allows execution array 414 to read graphics and media data from memory.
- sampling engine 430 includes logic to perform specialized image sampling operations for media.
- the specialized media sampling logic in sampling engine 430 includes a de-noise/de-interlace module 432 , a motion estimation module 434 , and an image scaling and filtering module 436 .
- de-noise/de-interlace module 432 includes logic to perform one or more of a de-noise or a de-interlace algorithm on decoded video data.
- the de-interlace logic combines alternating fields of interlaced video content into a single fame of video.
- the de-noise logic reduces or removes data noise from video and image data.
- the de-noise logic and de-interlace logic are motion adaptive and use spatial or temporal filtering based on the amount of motion detected in the video data.
- the de-noise/de-interlace module 432 includes dedicated motion detection logic (e.g., within the motion estimation engine 434 ).
- motion estimation engine 434 provides hardware acceleration for video operations by performing video acceleration functions such as motion vector estimation and prediction on video data.
- the motion estimation engine determines motion vectors that describe the transformation of image data between successive video frames.
- a graphics processor media codec uses video motion estimation engine 434 to perform operations on video at the macro-block level that may otherwise be too computationally intensive to perform with a general-purpose processor.
- motion estimation engine 434 is generally available to graphics processor components to assist with video decode and processing functions that are sensitive or adaptive to the direction or magnitude of the motion within video data.
- image scaling and filtering module 436 performs image-processing operations to enhance the visual quality of generated images and video. In some embodiments, scaling and filtering module 436 processes image and video data during the sampling operation before providing the data to execution unit array 414 .
- the GPE 410 includes a data port 444 , which provides an additional mechanism for graphics subsystems to access memory.
- data port 444 facilitates memory access for operations including render target writes, constant buffer reads, scratch memory space reads/writes, and media surface accesses.
- data port 444 includes cache memory space to cache accesses to memory.
- the cache memory can be a single data cache or separated into multiple caches for the multiple subsystems that access memory via the data port (e.g., a render buffer cache, a constant buffer cache, etc.).
- threads executing on an execution unit in execution unit array 414 communicate with the data port by exchanging messages via a data distribution interconnect that couples each of the sub-systems of GPE 410 .
- FIG. 10 is a block diagram of another embodiment of a graphics processor 500 . Elements of FIG. 10 having the same reference numbers (or names) as the elements of any other figure herein can operate or function in any manner similar to that described elsewhere herein, but are not limited to such.
- graphics processor 500 includes a ring interconnect 502 , a pipeline front-end 504 , a media engine 537 , and graphics cores 580 A- 580 N.
- ring interconnect 502 couples the graphics processor to other processing units, including other graphics processors or one or more general-purpose processor cores.
- the graphics processor is one of many processors integrated within a multi-core processing system.
- graphics processor 500 receives batches of commands via ring interconnect 502 .
- the incoming commands are interpreted by a command streamer 503 in the pipeline front-end 504 .
- graphics processor 500 includes scalable execution logic to perform 3D geometry processing and media processing via the graphics core(s) 580 A- 580 N.
- command streamer 503 supplies commands to geometry pipeline 536 .
- command streamer 503 supplies the commands to a video front end 534 , which couples with a media engine 537 .
- media engine 537 includes a Video Quality Engine (VQE) 530 for video and image post-processing and a multi-format encode/decode (MFX) 533 engine to provide hardware-accelerated media data encode and decode.
- VQE Video Quality Engine
- MFX multi-format encode/decode
- geometry pipeline 536 and media engine 537 each generate execution threads for the thread execution resources provided by at least one graphics core 580 A.
- graphics processor 500 includes scalable thread execution resources featuring modular cores 580 A- 580 N (sometimes referred to as core slices), each having multiple sub-cores 550 A- 550 N, 560 A- 560 N (sometimes referred to as core sub-slices).
- graphics processor 500 can have any number of graphics cores 580 A through 580 N.
- graphics processor 500 includes a graphics core 580 A having at least a first sub-core 550 A and a second core sub-core 560 A.
- the graphics processor is a low power processor with a single sub-core (e.g., 550 A).
- graphics processor 500 includes multiple graphics cores 580 A- 580 N, each including a set of first sub-cores 550 A- 550 N and a set of second sub-cores 560 A- 560 N.
- Each sub-core in the set of first sub-cores 550 A- 550 N includes at least a first set of execution units 552 A- 552 N and media/texture samplers 554 A- 554 N.
- Each sub-core in the set of second sub-cores 560 A- 560 N includes at least a second set of execution units 562 A- 562 N and samplers 564 A- 564 N.
- each sub-core 550 A- 550 N, 560 A- 560 N shares a set of shared resources 570 A- 570 N.
- the shared resources include shared cache memory and pixel operation logic. Other shared resources may also be included in the various embodiments of the graphics processor.
- FIG. 11 illustrates thread execution logic 600 including an array of processing elements employed in some embodiments of a GPE. Elements of FIG. 11 having the same reference numbers (or names) as the elements of any other figure herein can operate or function in any manner similar to that described elsewhere herein, but are not limited to such.
- thread execution logic 600 includes a pixel shader 602 , a thread dispatcher 604 , instruction cache 606 , a scalable execution unit array including a plurality of execution units 608 A- 608 N, a sampler 610 , a data cache 612 , and a data port 614 .
- the included components are interconnected via an interconnect fabric that links to each of the components.
- thread execution logic 600 includes one or more connections to memory, such as system memory or cache memory, through one or more of instruction cache 606 , data port 614 , sampler 610 , and execution unit array 608 A- 608 N.
- each execution unit e.g. 608 A
- execution unit array 608 A- 608 N includes any number individual execution units.
- execution unit array 608 A- 608 N is primarily used to execute “shader” programs.
- the execution units in array 608 A- 608 N execute an instruction set that includes native support for many standard 3D graphics shader instructions, such that shader programs from graphics libraries (e.g., Direct 3D and OpenGL) are executed with a minimal translation.
- the execution units support vertex and geometry processing (e.g., vertex programs, geometry programs, vertex shaders), pixel processing (e.g., pixel shaders, fragment shaders) and general-purpose processing (e.g., compute and media shaders).
- Each execution unit in execution unit array 608 A- 608 N operates on arrays of data elements.
- the number of data elements is the “execution size,” or the number of channels for the instruction.
- An execution channel is a logical unit of execution for data element access, masking, and flow control within instructions.
- the number of channels may be independent of the number of physical Arithmetic Logic Units (ALUs) or Floating Point Units (FPUs) for a particular graphics processor.
- ALUs Arithmetic Logic Units
- FPUs Floating Point Units
- execution units 608 A- 608 N support integer and floating-point data types.
- the execution unit instruction set includes single instruction multiple data (SIMD) instructions.
- SIMD single instruction multiple data
- the various data elements can be stored as a packed data type in a register and the execution unit will process the various elements based on the data size of the elements. For example, when operating on a 256-bit wide vector, the 256 bits of the vector are stored in a register and the execution unit operates on the vector as four separate 64-bit packed data elements (Quad-Word (QW) size data elements), eight separate 32-bit packed data elements (Double Word (DW) size data elements), sixteen separate 16-bit packed data elements (Word (W) size data elements), or thirty-two separate 8-bit data elements (byte (B) size data elements).
- QW Quad-Word
- DW Double Word
- W 16-bit packed data elements
- B thirty-two separate 8-bit data elements
- One or more internal instruction caches are included in the thread execution logic 600 to cache thread instructions for the execution units.
- one or more data caches are included to cache thread data during thread execution.
- sampler 610 is included to provide texture sampling for 3D operations and media sampling for media operations.
- sampler 610 includes specialized texture or media sampling functionality to process texture or media data during the sampling process before providing the sampled data to an execution unit.
- thread execution logic 600 includes a local thread dispatcher 604 that arbitrates thread initiation requests from the graphics and media pipelines and instantiates the requested threads on one or more execution units 608 A- 608 N.
- the geometry pipeline e.g., 536 of FIG. 10
- thread dispatcher 604 can also process runtime thread spawning requests from the executing shader programs.
- pixel shader 602 is invoked to further compute output information and cause results to be written to output surfaces (e.g., color buffers, depth buffers, stencil buffers, etc.).
- pixel shader 602 calculates the values of the various vertex attributes that are to be interpolated across the rasterized object.
- pixel shader 602 then executes an application programming interface (API)-supplied pixel shader program. To execute the pixel shader program, pixel shader 602 dispatches threads to an execution unit (e.g., 608 A) via thread dispatcher 604 .
- API application programming interface
- pixel shader 602 uses texture sampling logic in sampler 610 to access texture data in texture maps stored in memory. Arithmetic operations on the texture data and the input geometry data compute pixel color data for each geometric fragment, or discards one or more pixels from further processing.
- the data port 614 provides a memory access mechanism for the thread execution logic 600 output processed data to memory for processing on a graphics processor output pipeline.
- the data port 614 includes or couples to one or more cache memories (e.g., data cache 612 ) to cache data for memory access via the data port.
- FIG. 12 is a block diagram illustrating a graphics processor instruction formats 700 according to some embodiments.
- the graphics processor execution units support an instruction set having instructions in multiple formats.
- the solid lined boxes illustrate the components that are generally included in an execution unit instruction, while the dashed lines include components that are optional or that are only included in a sub-set of the instructions.
- instruction format 700 described and illustrated are macro-instructions, in that they are instructions supplied to the execution unit, as opposed to micro-operations resulting from instruction decode once the instruction is processed.
- the graphics processor execution units natively support instructions in a 128-bit format 710 .
- a 64-bit compacted instruction format 730 is available for some instructions based on the selected instruction, instruction options, and number of operands.
- the native 128-bit format 710 provides access to all instruction options, while some options and operations are restricted in the 64-bit format 730 .
- the native instructions available in the 64-bit format 730 vary by embodiment.
- the instruction is compacted in part using a set of index values in an index field 713 .
- the execution unit hardware references a set of compaction tables based on the index values and uses the compaction table outputs to reconstruct a native instruction in the 128-bit format 710 .
- instruction opcode 712 defines the operation that the execution unit is to perform.
- the execution units execute each instruction in parallel across the multiple data elements of each operand. For example, in response to an add instruction the execution unit performs a simultaneous add operation across each color channel representing a texture element or picture element. By default, the execution unit performs each instruction across all data channels of the operands.
- instruction control field 714 enables control over certain execution options, such as channels selection (e.g., predication) and data channel order (e.g., swizzle).
- channels selection e.g., predication
- data channel order e.g., swizzle
- exec-size field 716 limits the number of data channels that will be executed in parallel. In some embodiments, exec-size field 716 is not available for use in the 64-bit compact instruction format 730 .
- Some execution unit instructions have up to three operands including two source operands, src 0 722 , src 1 722 , and one destination 718 .
- the execution units support dual destination instructions, where one of the destinations is implied.
- Data manipulation instructions can have a third source operand (e.g., SRC 2 724 ), where the instruction opcode 712 determines the number of source operands.
- An instruction's last source operand can be an immediate (e.g., hard-coded) value passed with the instruction.
- the 128-bit instruction format 710 includes an access/address mode information 726 specifying, for example, whether direct register addressing mode or indirect register addressing mode is used. When direct register addressing mode is used, the register address of one or more operands is directly provided by bits in the instruction 710 .
- the 128-bit instruction format 710 includes an access/address mode field 726 , which specifies an address mode and/or an access mode for the instruction.
- the access mode to define a data access alignment for the instruction.
- Some embodiments support access modes including a 16-byte aligned access mode and a 1-byte aligned access mode, where the byte alignment of the access mode determines the access alignment of the instruction operands. For example, when in a first mode, the instruction 710 may use byte-aligned addressing for source and destination operands and when in a second mode, the instruction 710 may use 16-byte-aligned addressing for all source and destination operands.
- the address mode portion of the access/address mode field 726 determines whether the instruction is to use direct or indirect addressing.
- direct register addressing mode bits in the instruction 710 directly provide the register address of one or more operands.
- indirect register addressing mode the register address of one or more operands may be computed based on an address register value and an address immediate field in the instruction.
- instructions are grouped based on opcode 712 bit-fields to simplify Opcode decode 740 .
- bits 4 , 5 , and 6 allow the execution unit to determine the type of opcode.
- the precise opcode grouping shown is merely an example.
- a move and logic opcode group 742 includes data movement and logic instructions (e.g., move (mov), compare (cmp)).
- move and logic group 742 shares the five most significant bits (MSB), where move (mov) instructions are in the form of 0000xxxxb and logic instructions are in the form of 0001xxxxb.
- a flow control instruction group 744 (e.g., call, jump (jmp)) includes instructions in the form of 0010xxxxb (e.g., 0 ⁇ 20).
- a miscellaneous instruction group 746 includes a mix of instructions, including synchronization instructions (e.g., wait, send) in the form of 0011xxxxb (e.g., 0 ⁇ 30).
- a parallel math instruction group 748 includes component-wise arithmetic instructions (e.g., add, multiply (mul)) in the form of 0100xxxxb (e.g., 0 ⁇ 40). The parallel math group 748 performs the arithmetic operations in parallel across data channels.
- the vector math group 750 includes arithmetic instructions (e.g., dp4) in the form of 0101xxxxb (e.g., 0 ⁇ 50).
- the vector math group performs arithmetic such as dot product calculations on vector operands.
- FIG. 13 is a block diagram of another embodiment of a graphics processor 800 . Elements of FIG. 13 having the same reference numbers (or names) as the elements of any other figure herein can operate or function in any manner similar to that described elsewhere herein, but are not limited to such.
- graphics processor 800 includes a graphics pipeline 820 , a media pipeline 830 , a display engine 840 , thread execution logic 850 , and a render output pipeline 870 .
- graphics processor 800 is a graphics processor within a multi-core processing system that includes one or more general purpose processing cores. The graphics processor is controlled by register writes to one or more control registers (not shown) or via commands issued to graphics processor 800 via a ring interconnect 802 .
- ring interconnect 802 couples graphics processor 800 to other processing components, such as other graphics processors or general-purpose processors. Commands from ring interconnect 802 are interpreted by a command streamer 803 , which supplies instructions to individual components of graphics pipeline 820 or media pipeline 830 .
- command streamer 803 directs the operation of a vertex fetcher 805 that reads vertex data from memory and executes vertex-processing commands provided by command streamer 803 .
- vertex fetcher 805 provides vertex data to a vertex shader 807 , which performs coordinate space transformation and lighting operations to each vertex.
- vertex fetcher 805 and vertex shader 807 execute vertex-processing instructions by dispatching execution threads to execution units 852 A, 852 B via a thread dispatcher 831 .
- execution units 852 A, 852 B are an array of vector processors having an instruction set for performing graphics and media operations. In some embodiments, execution units 852 A, 852 B have an attached L1 cache 851 that is specific for each array or shared between the arrays.
- the cache can be configured as a data cache, an instruction cache, or a single cache that is partitioned to contain data and instructions in different partitions.
- graphics pipeline 820 includes tessellation components to perform hardware-accelerated tessellation of 3D objects.
- a programmable hull shader 811 configures the tessellation operations.
- a programmable domain shader 817 provides back-end evaluation of tessellation output.
- a tessellator 813 operates at the direction of hull shader 811 and contains special purpose logic to generate a set of detailed geometric objects based on a coarse geometric model that is provided as input to graphics pipeline 820 .
- tessellation components 811 , 813 , 817 can be bypassed.
- complete geometric objects can be processed by a geometry shader 819 via one or more threads dispatched to execution units 852 A, 852 B, or can proceed directly to the clipper 829 .
- the geometry shader operates on entire geometric objects, rather than vertices or patches of vertices as in previous stages of the graphics pipeline. If the tessellation is disabled the geometry shader 819 receives input from the vertex shader 807 . In some embodiments, geometry shader 819 is programmable by a geometry shader program to perform geometry tessellation if the tessellation units are disabled.
- a clipper 829 processes vertex data.
- the clipper 829 may be a fixed function clipper or a programmable clipper having clipping and geometry shader functions.
- a rasterizer/depth 873 in the render output pipeline 870 dispatches pixel shaders to convert the geometric objects into their per pixel representations.
- pixel shader logic is included in thread execution logic 850 .
- an application can bypass the rasterizer 873 and access un-rasterized vertex data via a stream out unit 823 .
- the graphics processor 800 has an interconnect bus, interconnect fabric, or some other interconnect mechanism that allows data and message passing amongst the major components of the processor.
- execution units 852 A, 852 B and associated cache(s) 851 , texture and media sampler 854 , and texture/sampler cache 858 interconnect via a data port 856 to perform memory access and communicate with render output pipeline components of the processor.
- sampler 854 , caches 851 , 858 and execution units 852 A, 852 B each have separate memory access paths.
- render output pipeline 870 contains a rasterizer and depth test component 873 that converts vertex-based objects into an associated pixel-based representation.
- the rasterizer logic includes a windower/masker unit to perform fixed function triangle and line rasterization.
- An associated render cache 878 and depth cache 879 are also available in some embodiments.
- a pixel operations component 877 performs pixel-based operations on the data, though in some instances, pixel operations associated with 2D operations (e.g. bit block image transfers with blending) are performed by the 2D engine 841 , or substituted at display time by the display controller 843 using overlay display planes.
- a shared L3 cache 875 is available to all graphics components, allowing the sharing of data without the use of main system memory.
- graphics processor media pipeline 830 includes a media engine 837 and a video front end 834 .
- video front end 834 receives pipeline commands from the command streamer 803 .
- media pipeline 830 includes a separate command streamer.
- video front-end 834 processes media commands before sending the command to the media engine 837 .
- media engine 337 includes thread spawning functionality to spawn threads for dispatch to thread execution logic 850 via thread dispatcher 831 .
- graphics processor 800 includes a display engine 840 .
- display engine 840 is external to processor 800 and couples with the graphics processor via the ring interconnect 802 , or some other interconnect bus or fabric.
- display engine 840 includes a 2D engine 841 and a display controller 843 .
- display engine 840 contains special purpose logic capable of operating independently of the 3D pipeline.
- display controller 843 couples with a display device (not shown), which may be a system integrated display device, as in a laptop computer, or an external display device attached via a display device connector.
- graphics pipeline 820 and media pipeline 830 are configurable to perform operations based on multiple graphics and media programming interfaces and are not specific to any one application programming interface (API).
- driver software for the graphics processor translates API calls that are specific to a particular graphics or media library into commands that can be processed by the graphics processor.
- support is provided for the Open Graphics Library (OpenGL) and Open Computing Language (OpenCL) from the Khronos Group, the Direct3D library from the Microsoft Corporation, or support may be provided to both OpenGL and D3D. Support may also be provided for the Open Source Computer Vision Library (OpenCV).
- OpenGL Open Graphics Library
- OpenCL Open Computing Language
- Support may also be provided for the Open Source Computer Vision Library (OpenCV).
- OpenCV Open Source Computer Vision Library
- a future API with a compatible 3D pipeline would also be supported if a mapping can be made from the pipeline of the future API to the pipeline of the graphics processor.
- FIG. 14A is a block diagram illustrating a graphics processor command format 900 according to some embodiments.
- FIG. 14B is a block diagram illustrating a graphics processor command sequence 910 according to an embodiment.
- the solid lined boxes in FIG. 14A illustrate the components that are generally included in a graphics command while the dashed lines include components that are optional or that are only included in a sub-set of the graphics commands.
- the exemplary graphics processor command format 900 of FIG. 14A includes data fields to identify a target client 902 of the command, a command operation code (opcode) 904 , and the relevant data 906 for the command.
- opcode command operation code
- a sub-opcode 905 and a command size 908 are also included in some commands.
- client 902 specifies the client unit of the graphics device that processes the command data.
- a graphics processor command parser examines the client field of each command to condition the further processing of the command and route the command data to the appropriate client unit.
- the graphics processor client units include a memory interface unit, a render unit, a 2D unit, a 3D unit, and a media unit. Each client unit has a corresponding processing pipeline that processes the commands.
- an explicit command size 908 is expected to specify the size of the command.
- the command parser automatically determines the size of at least some of the commands based on the command opcode. In some embodiments commands are aligned via multiples of a double word.
- the flow diagram in FIG. 14B shows an exemplary graphics processor command sequence 910 .
- software or firmware of a data processing system that features an embodiment of a graphics processor uses a version of the command sequence shown to set up, execute, and terminate a set of graphics operations.
- a sample command sequence is shown and described for purposes of example only as embodiments are not limited to these specific commands or to this command sequence.
- the commands may be issued as batch of commands in a command sequence, such that the graphics processor will process the sequence of commands in at least partially concurrence.
- the graphics processor command sequence 910 may begin with a pipeline flush command 912 to cause any active graphics pipeline to complete the currently pending commands for the pipeline.
- the 3D pipeline 922 and the media pipeline 924 do not operate concurrently.
- the pipeline flush is performed to cause the active graphics pipeline to complete any pending commands.
- the command parser for the graphics processor will pause command processing until the active drawing engines complete pending operations and the relevant read caches are invalidated.
- any data in the render cache that is marked ‘dirty’ can be flushed to memory.
- pipeline flush command 912 can be used for pipeline synchronization or before placing the graphics processor into a low power state.
- a pipeline select command 913 is used when a command sequence requires the graphics processor to explicitly switch between pipelines. In some embodiments, a pipeline select command 913 is required only once within an execution context before issuing pipeline commands unless the context is to issue commands for both pipelines. In some embodiments, a pipeline flush command is 912 is required immediately before a pipeline switch via the pipeline select command 913 .
- a pipeline control command 914 configures a graphics pipeline for operation and is used to program the 3D pipeline 922 and the media pipeline 924 . In some embodiments, pipeline control command 914 configures the pipeline state for the active pipeline. In one embodiment, the pipeline control command 914 is used for pipeline synchronization and to clear data from one or more cache memories within the active pipeline before processing a batch of commands.
- return buffer state commands 916 are used to configure a set of return buffers for the respective pipelines to write data. Some pipeline operations require the allocation, selection, or configuration of one or more return buffers into which the operations write intermediate data during processing. In some embodiments, the graphics processor also uses one or more return buffers to store output data and to perform cross thread communication. In some embodiments, the return buffer state 916 includes selecting the size and number of return buffers to use for a set of pipeline operations.
- the remaining commands in the command sequence differ based on the active pipeline for operations. Based on a pipeline determination 920 , the command sequence is tailored to the 3D pipeline 922 beginning with the 3D pipeline state 930 , or the media pipeline 924 beginning at the media pipeline state 940 .
- the commands for the 3D pipeline state 930 include 3D state setting commands for vertex buffer state, vertex element state, constant color state, depth buffer state, and other state variables that are to be configured before 3D primitive commands are processed. The values of these commands are determined at least in part based the particular 3D API in use. In some embodiments, 3D pipeline state 930 commands are also able to selectively disable or bypass certain pipeline elements if those elements will not be used.
- 3D primitive 932 command is used to submit 3D primitives to be processed by the 3D pipeline. Commands and associated parameters that are passed to the graphics processor via the 3D primitive 932 command are forwarded to the vertex fetch function in the graphics pipeline.
- the vertex fetch function uses the 3D primitive 932 command data to generate vertex data structures. The vertex data structures are stored in one or more return buffers.
- 3D primitive 932 command is used to perform vertex operations on 3D primitives via vertex shaders. To process vertex shaders, 3D pipeline 922 dispatches shader execution threads to graphics processor execution units.
- 3D pipeline 922 is triggered via an execute 934 command or event.
- a register write triggers command execution.
- execution is triggered via a ‘go’ or ‘kick’ command in the command sequence.
- command execution is triggered using a pipeline synchronization command to flush the command sequence through the graphics pipeline.
- the 3D pipeline will perform geometry processing for the 3D primitives. Once operations are complete, the resulting geometric objects are rasterized and the pixel engine colors the resulting pixels. Additional commands to control pixel shading and pixel back end operations may also be included for those operations.
- the graphics processor command sequence 910 follows the media pipeline 924 path when performing media operations.
- the specific use and manner of programming for the media pipeline 924 depends on the media or compute operations to be performed. Specific media decode operations may be offloaded to the media pipeline during media decode.
- the media pipeline can also be bypassed and media decode can be performed in whole or in part using resources provided by one or more general purpose processing cores.
- the media pipeline also includes elements for general-purpose graphics processor unit (GPGPU) operations, where the graphics processor is used to perform SIMD vector operations using computational shader programs that are not explicitly related to the rendering of graphics primitives.
- GPGPU general-purpose graphics processor unit
- media pipeline 924 is configured in a similar manner as the 3D pipeline 922 .
- a set of media pipeline state commands 940 are dispatched or placed into in a command queue before the media object commands 942 .
- media pipeline state commands 940 include data to configure the media pipeline elements that will be used to process the media objects. This includes data to configure the video decode and video encode logic within the media pipeline, such as encode or decode format.
- media pipeline state commands 940 also support the use one or more pointers to “indirect” state elements that contain a batch of state settings.
- media object commands 942 supply pointers to media objects for processing by the media pipeline.
- the media objects include memory buffers containing video data to be processed.
- all media pipeline states must be valid before issuing a media object command 942 .
- the media pipeline 924 is triggered via an execute command 944 or an equivalent execute event (e.g., register write).
- Output from media pipeline 924 may then be post processed by operations provided by the 3D pipeline 922 or the media pipeline 924 .
- GPGPU operations are configured and executed in a similar manner as media operations.
- FIG. 15 illustrates exemplary graphics software architecture for a data processing system 1000 according to some embodiments.
- software architecture includes a 3D graphics application 1010 , an operating system 1020 , and at least one processor 1030 .
- processor 1030 includes a graphics processor 1032 and one or more general-purpose processor core(s) 1034 .
- the graphics application 1010 and operating system 1020 each execute in the system memory 1050 of the data processing system.
- 3D graphics application 1010 contains one or more shader programs including shader instructions 1012 .
- the shader language instructions may be in a high-level shader language, such as the High Level Shader Language (HLSL) or the OpenGL Shader Language (GLSL).
- the application also includes executable instructions 1014 in a machine language suitable for execution by the general-purpose processor core 1034 .
- the application also includes graphics objects 1016 defined by vertex data.
- operating system 1020 is a Microsoft® Windows® operating system from the Microsoft Corporation, a proprietary UNIX-like operating system, or an open source UNIX-like operating system using a variant of the Linux kernel.
- the operating system 1020 uses a front-end shader compiler 1024 to compile any shader instructions 1012 in HLSL into a lower-level shader language.
- the compilation may be a just-in-time (JIT) compilation or the application can perform shader pre-compilation.
- high-level shaders are compiled into low-level shaders during the compilation of the 3D graphics application 1010 .
- user mode graphics driver 1026 contains a back-end shader compiler 1027 to convert the shader instructions 1012 into a hardware specific representation.
- shader instructions 1012 in the GLSL high-level language are passed to a user mode graphics driver 1026 for compilation.
- user mode graphics driver 1026 uses operating system kernel mode functions 1028 to communicate with a kernel mode graphics driver 1029 .
- kernel mode graphics driver 1029 communicates with graphics processor 1032 to dispatch commands and instructions.
- One or more aspects of at least one embodiment may be implemented by representative code stored on a machine-readable medium which represents and/or defines logic within an integrated circuit such as a processor.
- the machine-readable medium may include instructions which represent various logic within the processor. When read by a machine, the instructions may cause the machine to fabricate the logic to perform the techniques described herein.
- Such representations known as “IP cores,” are reusable units of logic for an integrated circuit that may be stored on a tangible, machine-readable medium as a hardware model that describes the structure of the integrated circuit.
- the hardware model may be supplied to various customers or manufacturing facilities, which load the hardware model on fabrication machines that manufacture the integrated circuit.
- the integrated circuit may be fabricated such that the circuit performs operations described in association with any of the embodiments described herein.
- FIG. 16 is a block diagram illustrating an IP core development system 1100 that may be used to manufacture an integrated circuit to perform operations according to an embodiment.
- the IP core development system 1100 may be used to generate modular, re-usable designs that can be incorporated into a larger design or used to construct an entire integrated circuit (e.g., an SOC integrated circuit).
- a design facility 1130 can generate a software simulation 1110 of an IP core design in a high level programming language (e.g., C/C++).
- the software simulation 1110 can be used to design, test, and verify the behavior of the IP core.
- a register transfer level (RTL) design can then be created or synthesized from the simulation model 1100 .
- RTL register transfer level
- the RTL design 1115 is an abstraction of the behavior of the integrated circuit that models the flow of digital signals between hardware registers, including the associated logic performed using the modeled digital signals.
- lower-level designs at the logic level or transistor level may also be created, designed, or synthesized. Thus, the particular details of the initial design and simulation may vary.
- the RTL design 1115 or equivalent may be further synthesized by the design facility into a hardware model 1120 , which may be in a hardware description language (HDL), or some other representation of physical design data.
- the HDL may be further simulated or tested to verify the IP core design.
- the IP core design can be stored for delivery to a 3 rd party fabrication facility 1165 using non-volatile memory 1140 (e.g., hard disk, flash memory, or any non-volatile storage medium).
- the IP core design may be transmitted (e.g., via the Internet) over a wired connection 1150 or wireless connection 1160 .
- the fabrication facility 1165 may then fabricate an integrated circuit that is based at least in part on the IP core design.
- the fabricated integrated circuit can be configured to perform operations in accordance with at least one embodiment described herein.
- FIG. 17 is a block diagram illustrating an exemplary system on a chip integrated circuit 1200 that may be fabricated using one or more IP cores, according to an embodiment.
- the exemplary integrated circuit includes one or more application processors 1205 (e.g., CPUs), at least one graphics processor 1210 , and may additionally include an image processor 1215 and/or a video processor 1220 , any of which may be a modular IP core from the same or multiple different design facilities.
- the integrated circuit includes peripheral or bus logic including a USB controller 1225 , UART controller 1230 , an SPI/SDIO controller 1235 , and an I 2 S/I 2 C controller 1240 .
- the integrated circuit can include a display device 1245 coupled to one or more of a high-definition multimedia interface (HDMI) controller 1250 and a mobile industry processor interface (MIPI) display interface 1255 .
- Storage may be provided by a flash memory subsystem 1260 including flash memory and a flash memory controller.
- Memory interface may be provided via a memory controller 1265 for access to SDRAM or SRAM memory devices.
- Some integrated circuits additionally include an embedded security engine 1270 .
- processors of integrated circuit 1200 may be included in the processor of integrated circuit 1200 , including additional graphics processors/cores, peripheral interface controllers, or general purpose processor cores.
- One example embodiment may be a method comprising compressing color values using a palette based encoder, finding clusters of color values and encoding color values within the cluster with respect to a color value having a predefined characteristic, and encoding clusters that have pixels or samples with constant color value.
- the method may also include wherein said pre-defined characteristic is the sample or pixel with the minimum color value within the cluster.
- the method may also include encoding the fact that a color channel is constant.
- the method may also include encoding residuals relative to the sample or pixel with the predefined characteristic of the cluster that minimizes cost.
- the method may also include refraining from encoding residuals for a cluster with a constant color.
- the method may also include using a bit for each channel to encode whether it is constant color or not.
- the method may also include providing a group of bits per color channel to indicate how many residual bits are needed per channel.
- the method may also include wherein finding clusters includes using a K-means clustering algorithm.
- the method may also include finding a minimal bounding box around a color.
- the method may also include taking a first color from a palette, building a cluster around the first color and then, if a second color that is different by a threshold from the first color, forming a second cluster including the second color, and fitting ensuring colors into the first and second clusters.
- In another example embodiment may be one or more non-transitory computer readable media storing instructions executed by a processor to perform a sequence comprising compressing color values using a palette based encoder, finding clusters of color values and encoding color values within the cluster with respect to a color value having a predefined characteristic, and encoding clusters that have pixels or samples with constant color value.
- the media may further store instructions wherein said pre-defined characteristic is the sample or pixel with the minimum color value within the cluster.
- the media may further store instructions to perform a sequence including encoding the fact that a color channel is constant.
- the media may further store instructions to perform a sequence including encoding residuals relative to the sample or pixel with the predefined characteristic of the cluster that minimizes cost.
- the media may further store instructions to perform a sequence including refraining from encoding residuals for a cluster with a constant color.
- the media may further store instructions to perform a sequence including using a bit for each channel to encode whether it is constant color or not.
- the media may further store instructions to perform a sequence including providing a group of bits per color channel to indicate how many residual bits are needed per channel.
- the media may further store instructions wherein finding clusters includes using a K-means clustering algorithm.
- the media may further store instructions to perform a sequence including finding a minimal bounding box around a color.
- the media may further store instructions to perform a sequence including taking a first color from a palette, building a cluster around the first color and then, if a second color that is different by a threshold from the first color, forming a second cluster including the second color, and fitting ensuring colors into the first and second clusters.
- Another example embodiment may be an apparatus comprising a processor to compress color values using a palette based encoder, find clusters of color values and encoding color values within the cluster with respect to a color value having a predefined characteristic, and encode clusters that have pixels or samples with constant color value, and a storage coupled to said processor.
- the apparatus may include wherein said pre-defined characteristic is the sample or pixel with the minimum color value within the cluster.
- the apparatus may include said processor to encode the fact that a color channel is constant.
- the apparatus may include said processor to encode residuals relative to the sample or pixel with the predefined characteristic of the cluster that minimizes cost.
- the apparatus may include said processor to refrain from encoding residuals for a cluster with a constant color.
- the apparatus may include said processor to use a bit for each channel to encode whether it is constant color or not.
- the apparatus may include said processor to provide a group of bits per color channel to indicate how many residual bits are needed per channel.
- the apparatus may include said processor to find clusters using a K-means clustering algorithm.
- the apparatus may include said processor to find a minimal bounding box around a color.
- the apparatus may include said processor to take a first color from a palette, build a cluster around the first color and then, if a second color that is different by a threshold from the first color, form a second cluster including the second color, and fit ensuring colors into the first and second clusters.
- graphics processing techniques described herein may be implemented in various hardware architectures. For example, graphics functionality may be integrated within a chipset. Alternatively, a discrete graphics processor may be used. As still another embodiment, the graphics functions may be implemented by a general purpose processor, including a multicore processor.
- references throughout this specification to “one embodiment” or “an embodiment” mean that a particular feature, structure, or characteristic described in connection with the embodiment is included in at least one implementation encompassed within the present disclosure. Thus, appearances of the phrase “one embodiment” or “in an embodiment” are not necessarily referring to the same embodiment. Furthermore, the particular features, structures, or characteristics may be instituted in other suitable forms other than the particular embodiment illustrated and all such forms may be encompassed within the claims of the present application.
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Abstract
Description
- Traffic to and from memory is a large power consumer in a computer system. Therefore, it is of utmost importance to develop techniques that reduce the memory traffic.
- One way to reduce power consumption from memory traffic is to use a cache hierarchy and another is to employ different types of compression of the data that is being transported.
- Some embodiments are described with respect to the following figures:
-
FIG. 1 is a depiction of palette compression according to one embodiment; -
FIG. 2 is a depiction of palette compression with clustering according to one embodiment; -
FIG. 3 is a flow chart for one embodiment; -
FIG. 4 is a depiction of a clustering algorithm according to one embodiment; -
FIG. 5 is a graph of red and green channels in one hypothetical example; -
FIG. 6 is a block diagram of a processing system according to one embodiment; -
FIG. 7 is a block diagram of a processor according to one embodiment; -
FIG. 8 is a block diagram of a graphics processor according to one embodiment; -
FIG. 9 is a block diagram of a graphics processing engine according to one embodiment; -
FIG. 10 is a block diagram of another embodiment of a graphics processor; -
FIG. 11 is a depiction thread execution logic according to one embodiment; -
FIG. 12 is a block diagram of a graphics processor instruction format according to some embodiments; -
FIG. 13 is a block diagram of another embodiment of a graphics processor; -
FIG. 14A is a block diagram of a graphics processor command format according to some embodiments; -
FIG. 14B is a block diagram illustrating a graphics processor command sequence according to some embodiments; -
FIG. 15 is a depiction of an exemplary graphics software architecture according to some embodiments; -
FIG. 16 is a block diagram illustrating an IP core development system according to some embodiments; and -
FIG. 17 is a block diagram showing an exemplary system on chip integrated circuit according to some embodiments. - For certain areas of a rendered image, the best choice of compression-decompression (codec) is to use a palette-based codec. Palette-based compression may be based on clustering, which makes the actual palette much smaller to store, in turn improving compression success rates.
- The palette in itself is a large portion of the entire compressed representation in a palette-based codec. The palette may be compressed using both a clustered approach and by skip encoding color channels that are constant.
- The task at hand is to: (i) collect all individual colors in the tile and store these in a palette, and (ii) assign each sample/pixel value an index to this palette. The data collected, depicted in
FIG. 1 , involves converting each of the colors (in this case these are only three colors), identifying each by a code or index (0, 1 or 2 in this example) and creating a palette which shows which colors (3) of the palette of available colors (in this case 4) is actually being used. - At the end of this process, the total number of bits needed to store the palette along with the palette indices are counted. Then a check determines whether this number of bits fits in the bit budget of the compressed unit. This check may involve determining whether the proposed compression results in fewer number of cache lines than in raw format. If so, compression is achieved.
- The palette itself takes fewer bytes to store than the full representation, and so, this will make the compression success rate higher in some cases. This, in turn, will reduce memory traffic and will increase energy efficiency, in some embodiments.
- Given a palette-based codec, consisting of N colors, a palette is stored and then each pixel/sample needs k=ceil(log2 N) index bits to “point” into the color palette. The colors in the palette are compressed, so they take up less space.
- For example, for an 8×4 pixel tile, where each color takes 32 bits (RGBA), the uncompressed tile uses 32*4=128 bytes. Assume compression to 64 bytes, i.e., 512 bits is required. Each pixel needs k bits for the index, i.e., 32*k bits in total are needed. Each color in the palette uses 32 bits (same as original data in the tile), and there are N palette colors. In total, this sums to 32*k+32*N which is less than or equal to 512.
- In this case, this means that k+N is less than or equal to 16, and hence, it makes sense to use k=4 bits, which in theory makes it possible to use at most 24 or 16 different colors in the palette. Then, there are 512−4*32 or 384 bits left for the color palette, and this means that N is 384/32 or 12 colors in the palette.
- However, one could compress more tiles if one were able to store 16 colors in the palette, and by using compression of the colors in the palette, this goal can be achieved. Alternatively, one can use k=5 bits, which gives (512−32*5)/32 or 11 colors in the palette. Since there are 5 bits per index, one can potentially use a palette with up to 32 colors. However, this can only be done if the palette is compressed.
- As a first simple technique, one bit per color channel is used to indicate whether color is constant in one of the color channels. If a bit is 1, as an example, all pixels in the tile have the same value for that channel. For example, all red values may be 23. In this case, the constant value, i.e., 23 is also stored.
- As an example, using the RGBA color space, the alpha (A) component is often 0 all over the tile, or 255 all over the tile. If one color channel is skipped, 8 bits are stored for the constant channel, since these are 32 bits for RGBA or 8 bits per
channel times 4 values. A skip bit is also stored for each of the four channels to indicate whether the channel is skipped. So, in total, an extra 12 bits are stored in the example of having one constant color, and so each color in the palette is now only 24 (3*8) bits. - In the case with k=5 bits, N equals (512−12−32*5)/24=14.167 colors, or rounding down, 14 colors in the palette, compared to 11 colors before.
- This compression technique can be called the skip bit technique. More than one channel may be constant. If two channels are constant, then the 4 skip bits and then 8+8 bits are stored for the constant channels, and so on.
- In addition, one can store the minimum color value of all colors in the palette, and then encode the difference between a color in the palette and this minimum color. These differences can often be encoded done with fewer bits.
- However, in many cases, the palette encoding method beats other encoding methods. These cases often include tiles where there are distinct groups of colors in the palette.
- For example, assume a very dark gray background with a bit of noise in it, and then suddenly two white pixels appear. The difference from the minimum color (which would be the darkest gray) and the white pixels is huge, and all differences would be encoded with as many bits that are needed for the difference between white and the darkest gray pixel. As a result, no compression can be obtained. In this case, there were only two pixels that destroyed the possibility of compression. However these situations often occur in user interfaces, for example, and it is advantageous if they are very compressible.
- The palette may be compressed using clustering. Clustering involves finding two or more minimum (lowest color value) colors and then compressing each color in the palette relative to one of these minimum colors. In the example above, the minimum dark gray color may be one minimum color, and the white color is one minimum color. All dark gray colors (called cluster 1) are encoded relative the minimum dark gray color, and the two white colors (called cluster 2) are encoded relative to the minimum white color.
- Then skip bits can be used for each cluster. This can actually reduce data more as well.
- An example of clustering is shown in
FIG. 2 for one embodiment using residual bits per sample/pixel, in addition to the color (now cluster) indices. InFIG. 2 there are only two redish colors (cross-hatched and double cross-hatched) and one blue color (no hatching) (using indices 0 (for the blue color) and 1 (for the two redish colors)). The residual bits encode the difference of one of the two redish color values from the minimum color value. The palette in this example only has two colors, with one of the variant red colors indicated via residual bits. - There are several ways to find clusters. Assume that one wants to find only two clusters. In this case, two colors that can act as “means” are found. The better these guesses are for the means, the faster the method will converge.
- The means can be found, in one embodiment, by finding a minimal bounding box around the color in the space of the remaining color channels, e.g., RGB or RGBA, or RGA (if B is constant and, thus, skipped). Next, assume that the minimal bounding box is split in the middle in each color dimension, and this results in a number of sub-boxes. Next, the colors that are closest to each corner of this minimal bounding box are found. Two of these “corner colors” are picked, each having the most colors in its sub-box. These colors are the two means to initialize a k-means clustering algorithm.
- Next, apply one or more steps of k-means clustering. The first step is simply to associate each color with the means that it is closest to (in RGB space, for example). When this has been done, each color in the palette has been assigned to one means (which is a color from the palette). The second step updates each means as the average of all the colors assigned to that cluster. Then one may do steps one and two a few more times if needed.
- Yet another variant is more iterative. The idea is to take one color from the palette and build a cluster around that color as long as the added colors are sufficiently close. If a color is encountered that is too far away from the current cluster, then a new cluster color is allocated. Continue with the rest of the colors, and attempt to merge them into either of the current two clusters. Then a third cluster can be added, etc. To enable this, one bit per sample/pixel is used to signal if residual bits are stored or not.
- Thus, referring to
FIG. 4 , asequence 40 may be implemented in software, firmware and/or hardware. In software and firmware embodiments, it may be implemented by computer executed instructions stored in one or more non-transitory computer readable media, such as magnetic, optical, or semiconductor storage. - The sequence begins by looping over all samples or pixels in a tile, as indicated in
block 42. Then, the difference between a given color and colors already in the palette is checked, as indicated inblock 44. If the difference is small because it is less than a threshold, as determined indiamond 46, then store residual bits and mark the sample, as indicated inblock 48. The residual bits are indicated at 50. - On the other hand, if the difference is not small, a check at
diamond 52 determines whether the color is already in the palette. If not, the color is stored in the palette, as indicated inblock 54. Then the palette is updated, as indicated at 56 and the flow iterates back to block 44. - If the color is already in the palette, as determined in
diamond 52, the palette entry identifier (ID) is recorded, as indicated inblock 48. Then the sample or pixel is provided in the palette entry list, as indicated at 60. - A check at
diamond 62 determines whether there are any samples or pixels left. If so, the flow iterates back to block 44 and, otherwise, the flow ends. - The selection between storing a new palette entry or residual bits against an existing color, is arbitrary. In the general case, a gain in number of stored bits can be achieved as long as the number of residual bits per entry plus one bit per sample, is lower than a full color in the palette.
- Assume that we have a tile with N colors, with RGB, for example. There is nothing that restricts this technique to any particular color space.
- In
FIG. 5 , an example is given that only visualizes the red and green channels (R and G). To the left, the red (R) and green (G) axes are labelled. There are 8 pixel colors here. Green pixels or samples are indicated by open circles and red pixels or samples are indicated by solid circles. In the middle, the minimal box around the pixel colors are found. The circle D is at the left-bottom corner, and so this is the minimum color of these 8 pixel colors. In the middle, split the minimal box into four 2×2 cells (indicated in dashed lines). To the right, the minimal boxes B1 and B2 are computed for each cell, which created two groups. The dark circles D1 and D2 show the minimal colors for these two groups. - In one clustering algorithm, simply encode each non-empty cell with the minimum color (dark circles D1 and D2 in
FIG. 4 ) and then add some encoding of residuals inside that box. This may be done with standard methods. - This example is in two dimensions, but usually there are three (RGB) or four (RGBA) dimensions. Since the coding of the minimal color of a group is rather expensive, sometimes it makes sense to merge two groups into one. One may also choose to transform the colors into another color space, such that YCoGg, in order to reduce the volume of each box, therefore reducing the number of residual bits.
- In an iterative scheme, one pair of groups (boxes) that increases the total volume of the resulting merged groups (boxes) the least, are merged. In RGB-space, 8 cells are obtained by splitting once per dimension. Each group only has one direct neighbor in x, y or z. There are several heuristics to use here including the following examples:
-
- 1) Merge the smallest box with the neighbor that gives the smallest volume. Do this iteratively until the cost falls below the bit threshold for successful compression.
- 2) Merge the smallest box with the neighbor that gives the largest volume. Do this iteratively until the cost falls below the bit threshold for successful compression.
- Merging only needs to continue until the target bit threshold is reached (or less). There is also the possibility to split more than once per dimension. This creates more cells whose minimal boxes must be merged. Each cell may get more direct neighbors in this case.
- After two or more clusters have been generated, the minimum color of each cluster is stored. In addition, as mentioned above, the 4 skip bits may be stored per cluster, and if a channel is constant within a cluster, then that channel need not encode residuals. In this
case 3 size bits are stored per channel to indicate how many residual bits are needed per channel. For example, if the maximum difference for the red channel within a cluster is 13, then 4 bits are needed to store such differences, and hence then 3 size bits will be set to 4 in this case. -
Sequence 34, as shown inFIG. 3 , for compression using clustering, may be implemented in software, firmware and/or hardware. In software and firmware embodiments it may be implemented by computer executed instructions stored in one or more non-transitory computer readable media such as a magnetic, optical or semiconductor storage. The sequence may be implemented for example by a graphics processing unit in some cases. - The
sequence 34 begins by looping over a tile (block 12). A tile is simply an image portion containing samples or pixels. First any constant color channels are found as indicated inblock 14. Then clusters are found inblock 16, coded inblock 18 and added topalette 24. Any clusters that are of constant color may also be skipped but encoded as well. One may also use separate skip bits per cluster, which may be useful in some cases. Inblock 20, the flow loops over all samples or pixels in a tile. A cluster or palette entry is selected inblock 22. - The palette entry identification and residual is encoded, as indicated in
block 26. The sample or pixelresidual values 30 are stored. The sample or pixel is stored in thepalette entry list 28. - A check at
diamond 32 indicates whether there are more samples or pixels left to process and if so, the flow iterates back to loop over the tile. Otherwise, the flow ends. - With the described difference encoding in each cluster, better compression of the palette may be obtained, and this will make the succession rate for compression substantially higher, and compression hardware for color buffers will succeed more often, and as a result, the power usage will be reduced in some embodiments.
-
FIG. 6 is a block diagram of aprocessing system 100, according to an embodiment. In various embodiments thesystem 100 includes one ormore processors 102 and one ormore graphics processors 108, and may be a single processor desktop system, a multiprocessor workstation system, or a server system having a large number ofprocessors 102 or processor cores 107. In on embodiment, thesystem 100 is a processing platform incorporated within a system-on-a-chip (SoC) integrated circuit for use in mobile, handheld, or embedded devices. - An embodiment of
system 100 can include, or be incorporated within a server-based gaming platform, a game console, including a game and media console, a mobile gaming console, a handheld game console, or an online game console. In someembodiments system 100 is a mobile phone, smart phone, tablet computing device or mobile Internet device.Data processing system 100 can also include, couple with, or be integrated within a wearable device, such as a smart watch wearable device, smart eyewear device, augmented reality device, or virtual reality device. In some embodiments,data processing system 100 is a television or set top box device having one ormore processors 102 and a graphical interface generated by one ormore graphics processors 108. - In some embodiments, the one or
more processors 102 each include one or more processor cores 107 to process instructions which, when executed, perform operations for system and user software. In some embodiments, each of the one or more processor cores 107 is configured to process aspecific instruction set 109. In some embodiments,instruction set 109 may facilitate Complex Instruction Set Computing (CISC), Reduced Instruction Set Computing (RISC), or computing via a Very Long Instruction Word (VLIW). Multiple processor cores 107 may each process adifferent instruction set 109, which may include instructions to facilitate the emulation of other instruction sets. Processor core 107 may also include other processing devices, such a Digital Signal Processor (DSP). - In some embodiments, the
processor 102 includescache memory 104. Depending on the architecture, theprocessor 102 can have a single internal cache or multiple levels of internal cache. In some embodiments, the cache memory is shared among various components of theprocessor 102. In some embodiments, theprocessor 102 also uses an external cache (e.g., a Level-3 (L3) cache or Last Level Cache (LLC)) (not shown), which may be shared among processor cores 107 using known cache coherency techniques. Aregister file 106 is additionally included inprocessor 102 which may include different types of registers for storing different types of data (e.g., integer registers, floating point registers, status registers, and an instruction pointer register). Some registers may be general-purpose registers, while other registers may be specific to the design of theprocessor 102. - In some embodiments,
processor 102 is coupled to aprocessor bus 110 to transmit communication signals such as address, data, or control signals betweenprocessor 102 and other components insystem 100. In one embodiment thesystem 100 uses an exemplary ‘hub’ system architecture, including amemory controller hub 116 and an Input Output (I/O)controller hub 130. Amemory controller hub 116 facilitates communication between a memory device and other components ofsystem 100, while an I/O Controller Hub (ICH) 130 provides connections to I/O devices via a local I/O bus. In one embodiment, the logic of thememory controller hub 116 is integrated within the processor. -
Memory device 120 can be a dynamic random access memory (DRAM) device, a static random access memory (SRAM) device, flash memory device, phase-change memory device, or some other memory device having suitable performance to serve as process memory. In one embodiment thememory device 120 can operate as system memory for thesystem 100, to storedata 122 andinstructions 121 for use when the one ormore processors 102 executes an application or process.Memory controller hub 116 also couples with an optionalexternal graphics processor 112, which may communicate with the one ormore graphics processors 108 inprocessors 102 to perform graphics and media operations. - In some embodiments,
ICH 130 enables peripherals to connect tomemory device 120 andprocessor 102 via a high-speed I/O bus. The I/O peripherals include, but are not limited to, anaudio controller 146, afirmware interface 128, a wireless transceiver 126 (e.g., Wi-Fi, Bluetooth), a data storage device 124 (e.g., hard disk drive, flash memory, etc.), and a legacy I/O controller 140 for coupling legacy (e.g., Personal System 2 (PS/2)) devices to the system. One or more Universal Serial Bus (USB) controllers 142 connect input devices, such as keyboard and mouse 144 combinations. Anetwork controller 134 may also couple toICH 130. In some embodiments, a high-performance network controller (not shown) couples toprocessor bus 110. It will be appreciated that thesystem 100 shown is exemplary and not limiting, as other types of data processing systems that are differently configured may also be used. For example, the I/O controller hub 130 may be integrated within the one ormore processor 102, or thememory controller hub 116 and I/O controller hub 130 may be integrated into a discreet external graphics processor, such as theexternal graphics processor 112. -
FIG. 7 is a block diagram of an embodiment of aprocessor 200 having one ormore processor cores 202A-202N, anintegrated memory controller 214, and anintegrated graphics processor 208. Those elements ofFIG. 7 having the same reference numbers (or names) as the elements of any other figure herein can operate or function in any manner similar to that described elsewhere herein, but are not limited to such.Processor 200 can include additional cores up to and includingadditional core 202N represented by the dashed lined boxes. Each ofprocessor cores 202A-202N includes one or moreinternal cache units 204A-204N. In some embodiments each processor core also has access to one or more shared cached units 206. - The
internal cache units 204A-204N and shared cache units 206 represent a cache memory hierarchy within theprocessor 200. The cache memory hierarchy may include at least one level of instruction and data cache within each processor core and one or more levels of shared mid-level cache, such as a Level 2 (L2), Level 3 (L3), Level 4 (L4), or other levels of cache, where the highest level of cache before external memory is classified as the LLC. In some embodiments, cache coherency logic maintains coherency between thevarious cache units 206 and 204A-204N. - In some embodiments,
processor 200 may also include a set of one or morebus controller units 216 and asystem agent core 210. The one or morebus controller units 216 manage a set of peripheral buses, such as one or more Peripheral Component Interconnect buses (e.g., PCI, PCI Express).System agent core 210 provides management functionality for the various processor components. In some embodiments,system agent core 210 includes one or moreintegrated memory controllers 214 to manage access to various external memory devices (not shown). - In some embodiments, one or more of the
processor cores 202A-202N include support for simultaneous multi-threading. In such embodiment, thesystem agent core 210 includes components for coordinating andoperating cores 202A-202N during multi-threaded processing.System agent core 210 may additionally include a power control unit (PCU), which includes logic and components to regulate the power state ofprocessor cores 202A-202N andgraphics processor 208. - In some embodiments,
processor 200 additionally includesgraphics processor 208 to execute graphics processing operations. In some embodiments, thegraphics processor 208 couples with the set of shared cache units 206, and thesystem agent core 210, including the one or moreintegrated memory controllers 214. In some embodiments, adisplay controller 211 is coupled with thegraphics processor 208 to drive graphics processor output to one or more coupled displays. In some embodiments,display controller 211 may be a separate module coupled with the graphics processor via at least one interconnect, or may be integrated within thegraphics processor 208 orsystem agent core 210. - In some embodiments, a ring based
interconnect unit 212 is used to couple the internal components of theprocessor 200. However, an alternative interconnect unit may be used, such as a point-to-point interconnect, a switched interconnect, or other techniques, including techniques well known in the art. In some embodiments,graphics processor 208 couples with thering interconnect 212 via an I/O link 213. - The exemplary I/O link 213 represents at least one of multiple varieties of I/O interconnects, including an on package I/O interconnect which facilitates communication between various processor components and a high-performance embedded
memory module 218, such as an eDRAM module. In some embodiments, each of the processor cores 202-202N andgraphics processor 208 use embeddedmemory modules 218 as a shared Last Level Cache. - In some embodiments,
processor cores 202A-202N are homogenous cores executing the same instruction set architecture. In another embodiment,processor cores 202A-202N are heterogeneous in terms of instruction set architecture (ISA), where one or more ofprocessor cores 202A-N execute a first instruction set, while at least one of the other cores executes a subset of the first instruction set or a different instruction set. In oneembodiment processor cores 202A-202N are heterogeneous in terms of microarchitecture, where one or more cores having a relatively higher power consumption couple with one or more power cores having a lower power consumption. Additionally,processor 200 can be implemented on one or more chips or as an SoC integrated circuit having the illustrated components, in addition to other components. -
FIG. 8 is a block diagram of agraphics processor 300, which may be a discrete graphics processing unit, or may be a graphics processor integrated with a plurality of processing cores. In some embodiments, the graphics processor communicates via a memory mapped I/O interface to registers on the graphics processor and with commands placed into the processor memory. In some embodiments,graphics processor 300 includes amemory interface 314 to access memory.Memory interface 314 can be an interface to local memory, one or more internal caches, one or more shared external caches, and/or to system memory. - In some embodiments,
graphics processor 300 also includes adisplay controller 302 to drive display output data to adisplay device 320.Display controller 302 includes hardware for one or more overlay planes for the display and composition of multiple layers of video or user interface elements. In some embodiments,graphics processor 300 includes avideo codec engine 306 to encode, decode, or transcode media to, from, or between one or more media encoding formats, including, but not limited to Moving Picture Experts Group (MPEG) formats such as MPEG-2, Advanced Video Coding (AVC) formats such as H.264/MPEG-4 AVC, as well as the Society of Motion Picture & Television Engineers (SMPTE) 421M/VC-1, and Joint Photographic Experts Group (JPEG) formats such as JPEG, and Motion JPEG (MJPEG) formats. - In some embodiments,
graphics processor 300 includes a block image transfer (BLIT)engine 304 to perform two-dimensional (2D) rasterizer operations including, for example, bit-boundary block transfers. However, in one embodiment, 2D graphics operations are performed using one or more components of graphics processing engine (GPE) 310. In some embodiments,graphics processing engine 310 is a compute engine for performing graphics operations, including three-dimensional (3D) graphics operations and media operations. - In some embodiments,
GPE 310 includes a3D pipeline 312 for performing 3D operations, such as rendering three-dimensional images and scenes using processing functions that act upon 3D primitive shapes (e.g., rectangle, triangle, etc.). The3D pipeline 312 includes programmable and fixed function elements that perform various tasks within the element and/or spawn execution threads to a 3D/Media sub-system 315. While3D pipeline 312 can be used to perform media operations, an embodiment ofGPE 310 also includes amedia pipeline 316 that is specifically used to perform media operations, such as video post-processing and image enhancement. - In some embodiments,
media pipeline 316 includes fixed function or programmable logic units to perform one or more specialized media operations, such as video decode acceleration, video de-interlacing, and video encode acceleration in place of, or on behalf ofvideo codec engine 306. In some embodiments,media pipeline 316 additionally includes a thread spawning unit to spawn threads for execution on 3D/Media sub-system 315. The spawned threads perform computations for the media operations on one or more graphics execution units included in 3D/Media sub-system 315. - In some embodiments, 3D/
Media subsystem 315 includes logic for executing threads spawned by3D pipeline 312 andmedia pipeline 316. In one embodiment, the pipelines send thread execution requests to 3D/Media subsystem 315, which includes thread dispatch logic for arbitrating and dispatching the various requests to available thread execution resources. The execution resources include an array of graphics execution units to process the 3D and media threads. In some embodiments, 3D/Media subsystem 315 includes one or more internal caches for thread instructions and data. In some embodiments, the subsystem also includes shared memory, including registers and addressable memory, to share data between threads and to store output data. -
FIG. 9 is a block diagram of agraphics processing engine 410 of a graphics processor in accordance with some embodiments. In one embodiment, theGPE 410 is a version of theGPE 310 shown inFIG. 8 . Elements ofFIG. 9 having the same reference numbers (or names) as the elements of any other figure herein can operate or function in any manner similar to that described elsewhere herein, but are not limited to such. - In some embodiments,
GPE 410 couples with acommand streamer 403, which provides a command stream to theGPE 3D andmedia pipelines command streamer 403 is coupled to memory, which can be system memory, or one or more of internal cache memory and shared cache memory. In some embodiments,command streamer 403 receives commands from the memory and sends the commands to3D pipeline 412 and/ormedia pipeline 416. The commands are directives fetched from a ring buffer, which stores commands for the 3D andmedia pipelines media pipelines execution unit array 414. In some embodiments,execution unit array 414 is scalable, such that the array includes a variable number of execution units based on the target power and performance level ofGPE 410. - In some embodiments, a
sampling engine 430 couples with memory (e.g., cache memory or system memory) andexecution unit array 414. In some embodiments,sampling engine 430 provides a memory access mechanism forexecution unit array 414 that allowsexecution array 414 to read graphics and media data from memory. In some embodiments,sampling engine 430 includes logic to perform specialized image sampling operations for media. - In some embodiments, the specialized media sampling logic in
sampling engine 430 includes a de-noise/de-interlace module 432, amotion estimation module 434, and an image scaling andfiltering module 436. In some embodiments, de-noise/de-interlace module 432 includes logic to perform one or more of a de-noise or a de-interlace algorithm on decoded video data. The de-interlace logic combines alternating fields of interlaced video content into a single fame of video. The de-noise logic reduces or removes data noise from video and image data. In some embodiments, the de-noise logic and de-interlace logic are motion adaptive and use spatial or temporal filtering based on the amount of motion detected in the video data. In some embodiments, the de-noise/de-interlace module 432 includes dedicated motion detection logic (e.g., within the motion estimation engine 434). - In some embodiments,
motion estimation engine 434 provides hardware acceleration for video operations by performing video acceleration functions such as motion vector estimation and prediction on video data. The motion estimation engine determines motion vectors that describe the transformation of image data between successive video frames. In some embodiments, a graphics processor media codec uses videomotion estimation engine 434 to perform operations on video at the macro-block level that may otherwise be too computationally intensive to perform with a general-purpose processor. In some embodiments,motion estimation engine 434 is generally available to graphics processor components to assist with video decode and processing functions that are sensitive or adaptive to the direction or magnitude of the motion within video data. - In some embodiments, image scaling and
filtering module 436 performs image-processing operations to enhance the visual quality of generated images and video. In some embodiments, scaling andfiltering module 436 processes image and video data during the sampling operation before providing the data toexecution unit array 414. - In some embodiments, the
GPE 410 includes adata port 444, which provides an additional mechanism for graphics subsystems to access memory. In some embodiments,data port 444 facilitates memory access for operations including render target writes, constant buffer reads, scratch memory space reads/writes, and media surface accesses. In some embodiments,data port 444 includes cache memory space to cache accesses to memory. The cache memory can be a single data cache or separated into multiple caches for the multiple subsystems that access memory via the data port (e.g., a render buffer cache, a constant buffer cache, etc.). In some embodiments, threads executing on an execution unit inexecution unit array 414 communicate with the data port by exchanging messages via a data distribution interconnect that couples each of the sub-systems ofGPE 410. -
FIG. 10 is a block diagram of another embodiment of agraphics processor 500. Elements ofFIG. 10 having the same reference numbers (or names) as the elements of any other figure herein can operate or function in any manner similar to that described elsewhere herein, but are not limited to such. - In some embodiments,
graphics processor 500 includes aring interconnect 502, a pipeline front-end 504, amedia engine 537, andgraphics cores 580A-580N. In some embodiments,ring interconnect 502 couples the graphics processor to other processing units, including other graphics processors or one or more general-purpose processor cores. In some embodiments, the graphics processor is one of many processors integrated within a multi-core processing system. - In some embodiments,
graphics processor 500 receives batches of commands viaring interconnect 502. The incoming commands are interpreted by acommand streamer 503 in the pipeline front-end 504. In some embodiments,graphics processor 500 includes scalable execution logic to perform 3D geometry processing and media processing via the graphics core(s) 580A-580N. For 3D geometry processing commands,command streamer 503 supplies commands togeometry pipeline 536. For at least some media processing commands,command streamer 503 supplies the commands to a videofront end 534, which couples with amedia engine 537. In some embodiments,media engine 537 includes a Video Quality Engine (VQE) 530 for video and image post-processing and a multi-format encode/decode (MFX) 533 engine to provide hardware-accelerated media data encode and decode. In some embodiments,geometry pipeline 536 andmedia engine 537 each generate execution threads for the thread execution resources provided by at least onegraphics core 580A. - In some embodiments,
graphics processor 500 includes scalable thread execution resources featuringmodular cores 580A-580N (sometimes referred to as core slices), each havingmultiple sub-cores 550A-550N, 560A-560N (sometimes referred to as core sub-slices). In some embodiments,graphics processor 500 can have any number ofgraphics cores 580A through 580N. In some embodiments,graphics processor 500 includes agraphics core 580A having at least a first sub-core 550A and asecond core sub-core 560A. In other embodiments, the graphics processor is a low power processor with a single sub-core (e.g., 550A). In some embodiments,graphics processor 500 includesmultiple graphics cores 580A-580N, each including a set of first sub-cores 550A-550N and a set of second sub-cores 560A-560N. Each sub-core in the set of first sub-cores 550A-550N includes at least a first set ofexecution units 552A-552N and media/texture samplers 554A-554N. Each sub-core in the set of second sub-cores 560A-560N includes at least a second set ofexecution units 562A-562N and samplers 564A-564N. In some embodiments, each sub-core 550A-550N, 560A-560N shares a set of sharedresources 570A-570N. In some embodiments, the shared resources include shared cache memory and pixel operation logic. Other shared resources may also be included in the various embodiments of the graphics processor. -
FIG. 11 illustratesthread execution logic 600 including an array of processing elements employed in some embodiments of a GPE. Elements ofFIG. 11 having the same reference numbers (or names) as the elements of any other figure herein can operate or function in any manner similar to that described elsewhere herein, but are not limited to such. - In some embodiments,
thread execution logic 600 includes apixel shader 602, athread dispatcher 604,instruction cache 606, a scalable execution unit array including a plurality ofexecution units 608A-608N, asampler 610, adata cache 612, and adata port 614. In one embodiment the included components are interconnected via an interconnect fabric that links to each of the components. In some embodiments,thread execution logic 600 includes one or more connections to memory, such as system memory or cache memory, through one or more ofinstruction cache 606,data port 614,sampler 610, andexecution unit array 608A-608N. In some embodiments, each execution unit (e.g. 608A) is an individual vector processor capable of executing multiple simultaneous threads and processing multiple data elements in parallel for each thread. In some embodiments,execution unit array 608A-608N includes any number individual execution units. - In some embodiments,
execution unit array 608A-608N is primarily used to execute “shader” programs. In some embodiments, the execution units inarray 608A-608N execute an instruction set that includes native support for many standard 3D graphics shader instructions, such that shader programs from graphics libraries (e.g., Direct 3D and OpenGL) are executed with a minimal translation. The execution units support vertex and geometry processing (e.g., vertex programs, geometry programs, vertex shaders), pixel processing (e.g., pixel shaders, fragment shaders) and general-purpose processing (e.g., compute and media shaders). - Each execution unit in
execution unit array 608A-608N operates on arrays of data elements. The number of data elements is the “execution size,” or the number of channels for the instruction. An execution channel is a logical unit of execution for data element access, masking, and flow control within instructions. The number of channels may be independent of the number of physical Arithmetic Logic Units (ALUs) or Floating Point Units (FPUs) for a particular graphics processor. In some embodiments,execution units 608A-608N support integer and floating-point data types. - The execution unit instruction set includes single instruction multiple data (SIMD) instructions. The various data elements can be stored as a packed data type in a register and the execution unit will process the various elements based on the data size of the elements. For example, when operating on a 256-bit wide vector, the 256 bits of the vector are stored in a register and the execution unit operates on the vector as four separate 64-bit packed data elements (Quad-Word (QW) size data elements), eight separate 32-bit packed data elements (Double Word (DW) size data elements), sixteen separate 16-bit packed data elements (Word (W) size data elements), or thirty-two separate 8-bit data elements (byte (B) size data elements). However, different vector widths and register sizes are possible.
- One or more internal instruction caches (e.g., 606) are included in the
thread execution logic 600 to cache thread instructions for the execution units. In some embodiments, one or more data caches (e.g., 612) are included to cache thread data during thread execution. In some embodiments,sampler 610 is included to provide texture sampling for 3D operations and media sampling for media operations. In some embodiments,sampler 610 includes specialized texture or media sampling functionality to process texture or media data during the sampling process before providing the sampled data to an execution unit. - During execution, the graphics and media pipelines send thread initiation requests to
thread execution logic 600 via thread spawning and dispatch logic. In some embodiments,thread execution logic 600 includes alocal thread dispatcher 604 that arbitrates thread initiation requests from the graphics and media pipelines and instantiates the requested threads on one ormore execution units 608A-608N. For example, the geometry pipeline (e.g., 536 ofFIG. 10 ) dispatches vertex processing, tessellation, or geometry processing threads to thread execution logic 600 (FIG. 11 ). In some embodiments,thread dispatcher 604 can also process runtime thread spawning requests from the executing shader programs. - Once a group of geometric objects has been processed and rasterized into pixel data,
pixel shader 602 is invoked to further compute output information and cause results to be written to output surfaces (e.g., color buffers, depth buffers, stencil buffers, etc.). In some embodiments,pixel shader 602 calculates the values of the various vertex attributes that are to be interpolated across the rasterized object. In some embodiments,pixel shader 602 then executes an application programming interface (API)-supplied pixel shader program. To execute the pixel shader program,pixel shader 602 dispatches threads to an execution unit (e.g., 608A) viathread dispatcher 604. In some embodiments,pixel shader 602 uses texture sampling logic insampler 610 to access texture data in texture maps stored in memory. Arithmetic operations on the texture data and the input geometry data compute pixel color data for each geometric fragment, or discards one or more pixels from further processing. - In some embodiments, the
data port 614 provides a memory access mechanism for thethread execution logic 600 output processed data to memory for processing on a graphics processor output pipeline. In some embodiments, thedata port 614 includes or couples to one or more cache memories (e.g., data cache 612) to cache data for memory access via the data port. -
FIG. 12 is a block diagram illustrating a graphicsprocessor instruction formats 700 according to some embodiments. In one or more embodiment, the graphics processor execution units support an instruction set having instructions in multiple formats. The solid lined boxes illustrate the components that are generally included in an execution unit instruction, while the dashed lines include components that are optional or that are only included in a sub-set of the instructions. In some embodiments,instruction format 700 described and illustrated are macro-instructions, in that they are instructions supplied to the execution unit, as opposed to micro-operations resulting from instruction decode once the instruction is processed. - In some embodiments, the graphics processor execution units natively support instructions in a 128-
bit format 710. A 64-bitcompacted instruction format 730 is available for some instructions based on the selected instruction, instruction options, and number of operands. The native 128-bit format 710 provides access to all instruction options, while some options and operations are restricted in the 64-bit format 730. The native instructions available in the 64-bit format 730 vary by embodiment. In some embodiments, the instruction is compacted in part using a set of index values in anindex field 713. The execution unit hardware references a set of compaction tables based on the index values and uses the compaction table outputs to reconstruct a native instruction in the 128-bit format 710. - For each format,
instruction opcode 712 defines the operation that the execution unit is to perform. The execution units execute each instruction in parallel across the multiple data elements of each operand. For example, in response to an add instruction the execution unit performs a simultaneous add operation across each color channel representing a texture element or picture element. By default, the execution unit performs each instruction across all data channels of the operands. In some embodiments,instruction control field 714 enables control over certain execution options, such as channels selection (e.g., predication) and data channel order (e.g., swizzle). For 128-bit instructions 710 an exec-size field 716 limits the number of data channels that will be executed in parallel. In some embodiments, exec-size field 716 is not available for use in the 64-bitcompact instruction format 730. - Some execution unit instructions have up to three operands including two source operands,
src0 722,src1 722, and onedestination 718. In some embodiments, the execution units support dual destination instructions, where one of the destinations is implied. Data manipulation instructions can have a third source operand (e.g., SRC2 724), where theinstruction opcode 712 determines the number of source operands. An instruction's last source operand can be an immediate (e.g., hard-coded) value passed with the instruction. - In some embodiments, the 128-
bit instruction format 710 includes an access/address mode information 726 specifying, for example, whether direct register addressing mode or indirect register addressing mode is used. When direct register addressing mode is used, the register address of one or more operands is directly provided by bits in theinstruction 710. - In some embodiments, the 128-
bit instruction format 710 includes an access/address mode field 726, which specifies an address mode and/or an access mode for the instruction. In one embodiment the access mode to define a data access alignment for the instruction. Some embodiments support access modes including a 16-byte aligned access mode and a 1-byte aligned access mode, where the byte alignment of the access mode determines the access alignment of the instruction operands. For example, when in a first mode, theinstruction 710 may use byte-aligned addressing for source and destination operands and when in a second mode, theinstruction 710 may use 16-byte-aligned addressing for all source and destination operands. - In one embodiment, the address mode portion of the access/
address mode field 726 determines whether the instruction is to use direct or indirect addressing. When direct register addressing mode is used bits in theinstruction 710 directly provide the register address of one or more operands. When indirect register addressing mode is used, the register address of one or more operands may be computed based on an address register value and an address immediate field in the instruction. - In some embodiments instructions are grouped based on
opcode 712 bit-fields to simplifyOpcode decode 740. For an 8-bit opcode,bits logic opcode group 742 includes data movement and logic instructions (e.g., move (mov), compare (cmp)). In some embodiments, move andlogic group 742 shares the five most significant bits (MSB), where move (mov) instructions are in the form of 0000xxxxb and logic instructions are in the form of 0001xxxxb. A flow control instruction group 744 (e.g., call, jump (jmp)) includes instructions in the form of 0010xxxxb (e.g., 0×20). A miscellaneous instruction group 746 includes a mix of instructions, including synchronization instructions (e.g., wait, send) in the form of 0011xxxxb (e.g., 0×30). A parallelmath instruction group 748 includes component-wise arithmetic instructions (e.g., add, multiply (mul)) in the form of 0100xxxxb (e.g., 0×40). Theparallel math group 748 performs the arithmetic operations in parallel across data channels. Thevector math group 750 includes arithmetic instructions (e.g., dp4) in the form of 0101xxxxb (e.g., 0×50). The vector math group performs arithmetic such as dot product calculations on vector operands. -
FIG. 13 is a block diagram of another embodiment of agraphics processor 800. Elements ofFIG. 13 having the same reference numbers (or names) as the elements of any other figure herein can operate or function in any manner similar to that described elsewhere herein, but are not limited to such. - In some embodiments,
graphics processor 800 includes agraphics pipeline 820, amedia pipeline 830, adisplay engine 840,thread execution logic 850, and a renderoutput pipeline 870. In some embodiments,graphics processor 800 is a graphics processor within a multi-core processing system that includes one or more general purpose processing cores. The graphics processor is controlled by register writes to one or more control registers (not shown) or via commands issued tographics processor 800 via aring interconnect 802. In some embodiments,ring interconnect 802couples graphics processor 800 to other processing components, such as other graphics processors or general-purpose processors. Commands fromring interconnect 802 are interpreted by acommand streamer 803, which supplies instructions to individual components ofgraphics pipeline 820 ormedia pipeline 830. - In some embodiments,
command streamer 803 directs the operation of avertex fetcher 805 that reads vertex data from memory and executes vertex-processing commands provided bycommand streamer 803. In some embodiments,vertex fetcher 805 provides vertex data to avertex shader 807, which performs coordinate space transformation and lighting operations to each vertex. In some embodiments,vertex fetcher 805 andvertex shader 807 execute vertex-processing instructions by dispatching execution threads toexecution units thread dispatcher 831. - In some embodiments,
execution units execution units L1 cache 851 that is specific for each array or shared between the arrays. The cache can be configured as a data cache, an instruction cache, or a single cache that is partitioned to contain data and instructions in different partitions. - In some embodiments,
graphics pipeline 820 includes tessellation components to perform hardware-accelerated tessellation of 3D objects. In some embodiments, aprogrammable hull shader 811 configures the tessellation operations. Aprogrammable domain shader 817 provides back-end evaluation of tessellation output. Atessellator 813 operates at the direction ofhull shader 811 and contains special purpose logic to generate a set of detailed geometric objects based on a coarse geometric model that is provided as input tographics pipeline 820. In some embodiments, if tessellation is not used,tessellation components - In some embodiments, complete geometric objects can be processed by a
geometry shader 819 via one or more threads dispatched toexecution units clipper 829. In some embodiments, the geometry shader operates on entire geometric objects, rather than vertices or patches of vertices as in previous stages of the graphics pipeline. If the tessellation is disabled thegeometry shader 819 receives input from thevertex shader 807. In some embodiments,geometry shader 819 is programmable by a geometry shader program to perform geometry tessellation if the tessellation units are disabled. - Before rasterization, a
clipper 829 processes vertex data. Theclipper 829 may be a fixed function clipper or a programmable clipper having clipping and geometry shader functions. In some embodiments, a rasterizer/depth 873 in the renderoutput pipeline 870 dispatches pixel shaders to convert the geometric objects into their per pixel representations. In some embodiments, pixel shader logic is included inthread execution logic 850. In some embodiments, an application can bypass therasterizer 873 and access un-rasterized vertex data via a stream outunit 823. - The
graphics processor 800 has an interconnect bus, interconnect fabric, or some other interconnect mechanism that allows data and message passing amongst the major components of the processor. In some embodiments,execution units media sampler 854, and texture/sampler cache 858 interconnect via adata port 856 to perform memory access and communicate with render output pipeline components of the processor. In some embodiments,sampler 854,caches execution units - In some embodiments, render
output pipeline 870 contains a rasterizer anddepth test component 873 that converts vertex-based objects into an associated pixel-based representation. In some embodiments, the rasterizer logic includes a windower/masker unit to perform fixed function triangle and line rasterization. An associated rendercache 878 anddepth cache 879 are also available in some embodiments. Apixel operations component 877 performs pixel-based operations on the data, though in some instances, pixel operations associated with 2D operations (e.g. bit block image transfers with blending) are performed by the2D engine 841, or substituted at display time by thedisplay controller 843 using overlay display planes. In some embodiments, a sharedL3 cache 875 is available to all graphics components, allowing the sharing of data without the use of main system memory. - In some embodiments, graphics
processor media pipeline 830 includes amedia engine 837 and a video front end 834. In some embodiments, video front end 834 receives pipeline commands from thecommand streamer 803. In some embodiments,media pipeline 830 includes a separate command streamer. In some embodiments, video front-end 834 processes media commands before sending the command to themedia engine 837. In some embodiments, media engine 337 includes thread spawning functionality to spawn threads for dispatch tothread execution logic 850 viathread dispatcher 831. - In some embodiments,
graphics processor 800 includes adisplay engine 840. In some embodiments,display engine 840 is external toprocessor 800 and couples with the graphics processor via thering interconnect 802, or some other interconnect bus or fabric. In some embodiments,display engine 840 includes a2D engine 841 and adisplay controller 843. In some embodiments,display engine 840 contains special purpose logic capable of operating independently of the 3D pipeline. In some embodiments,display controller 843 couples with a display device (not shown), which may be a system integrated display device, as in a laptop computer, or an external display device attached via a display device connector. - In some embodiments,
graphics pipeline 820 andmedia pipeline 830 are configurable to perform operations based on multiple graphics and media programming interfaces and are not specific to any one application programming interface (API). In some embodiments, driver software for the graphics processor translates API calls that are specific to a particular graphics or media library into commands that can be processed by the graphics processor. In some embodiments, support is provided for the Open Graphics Library (OpenGL) and Open Computing Language (OpenCL) from the Khronos Group, the Direct3D library from the Microsoft Corporation, or support may be provided to both OpenGL and D3D. Support may also be provided for the Open Source Computer Vision Library (OpenCV). A future API with a compatible 3D pipeline would also be supported if a mapping can be made from the pipeline of the future API to the pipeline of the graphics processor. -
FIG. 14A is a block diagram illustrating a graphicsprocessor command format 900 according to some embodiments.FIG. 14B is a block diagram illustrating a graphicsprocessor command sequence 910 according to an embodiment. The solid lined boxes inFIG. 14A illustrate the components that are generally included in a graphics command while the dashed lines include components that are optional or that are only included in a sub-set of the graphics commands. The exemplary graphicsprocessor command format 900 ofFIG. 14A includes data fields to identify atarget client 902 of the command, a command operation code (opcode) 904, and therelevant data 906 for the command. A sub-opcode 905 and acommand size 908 are also included in some commands. - In some embodiments,
client 902 specifies the client unit of the graphics device that processes the command data. In some embodiments, a graphics processor command parser examines the client field of each command to condition the further processing of the command and route the command data to the appropriate client unit. In some embodiments, the graphics processor client units include a memory interface unit, a render unit, a 2D unit, a 3D unit, and a media unit. Each client unit has a corresponding processing pipeline that processes the commands. Once the command is received by the client unit, the client unit reads theopcode 904 and, if present, sub-opcode 905 to determine the operation to perform. The client unit performs the command using information indata field 906. For some commands anexplicit command size 908 is expected to specify the size of the command. In some embodiments, the command parser automatically determines the size of at least some of the commands based on the command opcode. In some embodiments commands are aligned via multiples of a double word. - The flow diagram in
FIG. 14B shows an exemplary graphicsprocessor command sequence 910. In some embodiments, software or firmware of a data processing system that features an embodiment of a graphics processor uses a version of the command sequence shown to set up, execute, and terminate a set of graphics operations. A sample command sequence is shown and described for purposes of example only as embodiments are not limited to these specific commands or to this command sequence. Moreover, the commands may be issued as batch of commands in a command sequence, such that the graphics processor will process the sequence of commands in at least partially concurrence. - In some embodiments, the graphics
processor command sequence 910 may begin with a pipelineflush command 912 to cause any active graphics pipeline to complete the currently pending commands for the pipeline. In some embodiments, the3D pipeline 922 and themedia pipeline 924 do not operate concurrently. The pipeline flush is performed to cause the active graphics pipeline to complete any pending commands. In response to a pipeline flush, the command parser for the graphics processor will pause command processing until the active drawing engines complete pending operations and the relevant read caches are invalidated. Optionally, any data in the render cache that is marked ‘dirty’ can be flushed to memory. In some embodiments, pipelineflush command 912 can be used for pipeline synchronization or before placing the graphics processor into a low power state. - In some embodiments, a pipeline
select command 913 is used when a command sequence requires the graphics processor to explicitly switch between pipelines. In some embodiments, a pipelineselect command 913 is required only once within an execution context before issuing pipeline commands unless the context is to issue commands for both pipelines. In some embodiments, a pipeline flush command is 912 is required immediately before a pipeline switch via the pipelineselect command 913. - In some embodiments, a
pipeline control command 914 configures a graphics pipeline for operation and is used to program the3D pipeline 922 and themedia pipeline 924. In some embodiments,pipeline control command 914 configures the pipeline state for the active pipeline. In one embodiment, thepipeline control command 914 is used for pipeline synchronization and to clear data from one or more cache memories within the active pipeline before processing a batch of commands. - In some embodiments, return buffer state commands 916 are used to configure a set of return buffers for the respective pipelines to write data. Some pipeline operations require the allocation, selection, or configuration of one or more return buffers into which the operations write intermediate data during processing. In some embodiments, the graphics processor also uses one or more return buffers to store output data and to perform cross thread communication. In some embodiments, the
return buffer state 916 includes selecting the size and number of return buffers to use for a set of pipeline operations. - The remaining commands in the command sequence differ based on the active pipeline for operations. Based on a
pipeline determination 920, the command sequence is tailored to the3D pipeline 922 beginning with the3D pipeline state 930, or themedia pipeline 924 beginning at themedia pipeline state 940. - The commands for the
3D pipeline state 930 include 3D state setting commands for vertex buffer state, vertex element state, constant color state, depth buffer state, and other state variables that are to be configured before 3D primitive commands are processed. The values of these commands are determined at least in part based the particular 3D API in use. In some embodiments,3D pipeline state 930 commands are also able to selectively disable or bypass certain pipeline elements if those elements will not be used. - In some embodiments, 3D primitive 932 command is used to submit 3D primitives to be processed by the 3D pipeline. Commands and associated parameters that are passed to the graphics processor via the 3D primitive 932 command are forwarded to the vertex fetch function in the graphics pipeline. The vertex fetch function uses the 3D primitive 932 command data to generate vertex data structures. The vertex data structures are stored in one or more return buffers. In some embodiments, 3D primitive 932 command is used to perform vertex operations on 3D primitives via vertex shaders. To process vertex shaders,
3D pipeline 922 dispatches shader execution threads to graphics processor execution units. - In some embodiments,
3D pipeline 922 is triggered via an execute 934 command or event. In some embodiments, a register write triggers command execution. In some embodiments execution is triggered via a ‘go’ or ‘kick’ command in the command sequence. In one embodiment command execution is triggered using a pipeline synchronization command to flush the command sequence through the graphics pipeline. The 3D pipeline will perform geometry processing for the 3D primitives. Once operations are complete, the resulting geometric objects are rasterized and the pixel engine colors the resulting pixels. Additional commands to control pixel shading and pixel back end operations may also be included for those operations. - In some embodiments, the graphics
processor command sequence 910 follows themedia pipeline 924 path when performing media operations. In general, the specific use and manner of programming for themedia pipeline 924 depends on the media or compute operations to be performed. Specific media decode operations may be offloaded to the media pipeline during media decode. In some embodiments, the media pipeline can also be bypassed and media decode can be performed in whole or in part using resources provided by one or more general purpose processing cores. In one embodiment, the media pipeline also includes elements for general-purpose graphics processor unit (GPGPU) operations, where the graphics processor is used to perform SIMD vector operations using computational shader programs that are not explicitly related to the rendering of graphics primitives. - In some embodiments,
media pipeline 924 is configured in a similar manner as the3D pipeline 922. A set of media pipeline state commands 940 are dispatched or placed into in a command queue before the media object commands 942. In some embodiments, media pipeline state commands 940 include data to configure the media pipeline elements that will be used to process the media objects. This includes data to configure the video decode and video encode logic within the media pipeline, such as encode or decode format. In some embodiments, media pipeline state commands 940 also support the use one or more pointers to “indirect” state elements that contain a batch of state settings. - In some embodiments, media object commands 942 supply pointers to media objects for processing by the media pipeline. The media objects include memory buffers containing video data to be processed. In some embodiments, all media pipeline states must be valid before issuing a
media object command 942. Once the pipeline state is configured and media object commands 942 are queued, themedia pipeline 924 is triggered via an executecommand 944 or an equivalent execute event (e.g., register write). Output frommedia pipeline 924 may then be post processed by operations provided by the3D pipeline 922 or themedia pipeline 924. In some embodiments, GPGPU operations are configured and executed in a similar manner as media operations. -
FIG. 15 illustrates exemplary graphics software architecture for adata processing system 1000 according to some embodiments. In some embodiments, software architecture includes a3D graphics application 1010, anoperating system 1020, and at least oneprocessor 1030. In some embodiments,processor 1030 includes agraphics processor 1032 and one or more general-purpose processor core(s) 1034. Thegraphics application 1010 andoperating system 1020 each execute in thesystem memory 1050 of the data processing system. - In some embodiments,
3D graphics application 1010 contains one or more shader programs includingshader instructions 1012. The shader language instructions may be in a high-level shader language, such as the High Level Shader Language (HLSL) or the OpenGL Shader Language (GLSL). The application also includesexecutable instructions 1014 in a machine language suitable for execution by the general-purpose processor core 1034. The application also includes graphics objects 1016 defined by vertex data. - In some embodiments,
operating system 1020 is a Microsoft® Windows® operating system from the Microsoft Corporation, a proprietary UNIX-like operating system, or an open source UNIX-like operating system using a variant of the Linux kernel. When the Direct3D API is in use, theoperating system 1020 uses a front-end shader compiler 1024 to compile anyshader instructions 1012 in HLSL into a lower-level shader language. The compilation may be a just-in-time (JIT) compilation or the application can perform shader pre-compilation. In some embodiments, high-level shaders are compiled into low-level shaders during the compilation of the3D graphics application 1010. - In some embodiments, user mode graphics driver 1026 contains a back-
end shader compiler 1027 to convert theshader instructions 1012 into a hardware specific representation. When the OpenGL API is in use,shader instructions 1012 in the GLSL high-level language are passed to a user mode graphics driver 1026 for compilation. In some embodiments, user mode graphics driver 1026 uses operating systemkernel mode functions 1028 to communicate with a kernelmode graphics driver 1029. In some embodiments, kernelmode graphics driver 1029 communicates withgraphics processor 1032 to dispatch commands and instructions. - One or more aspects of at least one embodiment may be implemented by representative code stored on a machine-readable medium which represents and/or defines logic within an integrated circuit such as a processor. For example, the machine-readable medium may include instructions which represent various logic within the processor. When read by a machine, the instructions may cause the machine to fabricate the logic to perform the techniques described herein. Such representations, known as “IP cores,” are reusable units of logic for an integrated circuit that may be stored on a tangible, machine-readable medium as a hardware model that describes the structure of the integrated circuit. The hardware model may be supplied to various customers or manufacturing facilities, which load the hardware model on fabrication machines that manufacture the integrated circuit. The integrated circuit may be fabricated such that the circuit performs operations described in association with any of the embodiments described herein.
-
FIG. 16 is a block diagram illustrating an IPcore development system 1100 that may be used to manufacture an integrated circuit to perform operations according to an embodiment. The IPcore development system 1100 may be used to generate modular, re-usable designs that can be incorporated into a larger design or used to construct an entire integrated circuit (e.g., an SOC integrated circuit). Adesign facility 1130 can generate asoftware simulation 1110 of an IP core design in a high level programming language (e.g., C/C++). Thesoftware simulation 1110 can be used to design, test, and verify the behavior of the IP core. A register transfer level (RTL) design can then be created or synthesized from thesimulation model 1100. TheRTL design 1115 is an abstraction of the behavior of the integrated circuit that models the flow of digital signals between hardware registers, including the associated logic performed using the modeled digital signals. In addition to anRTL design 1115, lower-level designs at the logic level or transistor level may also be created, designed, or synthesized. Thus, the particular details of the initial design and simulation may vary. - The
RTL design 1115 or equivalent may be further synthesized by the design facility into ahardware model 1120, which may be in a hardware description language (HDL), or some other representation of physical design data. The HDL may be further simulated or tested to verify the IP core design. The IP core design can be stored for delivery to a 3 rdparty fabrication facility 1165 using non-volatile memory 1140 (e.g., hard disk, flash memory, or any non-volatile storage medium). Alternatively, the IP core design may be transmitted (e.g., via the Internet) over awired connection 1150 orwireless connection 1160. Thefabrication facility 1165 may then fabricate an integrated circuit that is based at least in part on the IP core design. The fabricated integrated circuit can be configured to perform operations in accordance with at least one embodiment described herein. -
FIG. 17 is a block diagram illustrating an exemplary system on a chip integratedcircuit 1200 that may be fabricated using one or more IP cores, according to an embodiment. The exemplary integrated circuit includes one or more application processors 1205 (e.g., CPUs), at least onegraphics processor 1210, and may additionally include animage processor 1215 and/or avideo processor 1220, any of which may be a modular IP core from the same or multiple different design facilities. The integrated circuit includes peripheral or bus logic including aUSB controller 1225,UART controller 1230, an SPI/SDIO controller 1235, and an I2S/I2C controller 1240. Additionally, the integrated circuit can include adisplay device 1245 coupled to one or more of a high-definition multimedia interface (HDMI)controller 1250 and a mobile industry processor interface (MIPI)display interface 1255. Storage may be provided by aflash memory subsystem 1260 including flash memory and a flash memory controller. Memory interface may be provided via amemory controller 1265 for access to SDRAM or SRAM memory devices. Some integrated circuits additionally include an embeddedsecurity engine 1270. - Additionally, other logic and circuits may be included in the processor of
integrated circuit 1200, including additional graphics processors/cores, peripheral interface controllers, or general purpose processor cores. - The following clauses and/or examples pertain to further embodiments:
- One example embodiment may be a method comprising compressing color values using a palette based encoder, finding clusters of color values and encoding color values within the cluster with respect to a color value having a predefined characteristic, and encoding clusters that have pixels or samples with constant color value. The method may also include wherein said pre-defined characteristic is the sample or pixel with the minimum color value within the cluster. The method may also include encoding the fact that a color channel is constant. The method may also include encoding residuals relative to the sample or pixel with the predefined characteristic of the cluster that minimizes cost. The method may also include refraining from encoding residuals for a cluster with a constant color. The method may also include using a bit for each channel to encode whether it is constant color or not. The method may also include providing a group of bits per color channel to indicate how many residual bits are needed per channel. The method may also include wherein finding clusters includes using a K-means clustering algorithm. The method may also include finding a minimal bounding box around a color. The method may also include taking a first color from a palette, building a cluster around the first color and then, if a second color that is different by a threshold from the first color, forming a second cluster including the second color, and fitting ensuring colors into the first and second clusters.
- In another example embodiment may be one or more non-transitory computer readable media storing instructions executed by a processor to perform a sequence comprising compressing color values using a palette based encoder, finding clusters of color values and encoding color values within the cluster with respect to a color value having a predefined characteristic, and encoding clusters that have pixels or samples with constant color value. The media may further store instructions wherein said pre-defined characteristic is the sample or pixel with the minimum color value within the cluster. The media may further store instructions to perform a sequence including encoding the fact that a color channel is constant. The media may further store instructions to perform a sequence including encoding residuals relative to the sample or pixel with the predefined characteristic of the cluster that minimizes cost. The media may further store instructions to perform a sequence including refraining from encoding residuals for a cluster with a constant color. The media may further store instructions to perform a sequence including using a bit for each channel to encode whether it is constant color or not. The media may further store instructions to perform a sequence including providing a group of bits per color channel to indicate how many residual bits are needed per channel. The media may further store instructions wherein finding clusters includes using a K-means clustering algorithm. The media may further store instructions to perform a sequence including finding a minimal bounding box around a color. The media may further store instructions to perform a sequence including taking a first color from a palette, building a cluster around the first color and then, if a second color that is different by a threshold from the first color, forming a second cluster including the second color, and fitting ensuring colors into the first and second clusters.
- Another example embodiment may be an apparatus comprising a processor to compress color values using a palette based encoder, find clusters of color values and encoding color values within the cluster with respect to a color value having a predefined characteristic, and encode clusters that have pixels or samples with constant color value, and a storage coupled to said processor. The apparatus may include wherein said pre-defined characteristic is the sample or pixel with the minimum color value within the cluster. The apparatus may include said processor to encode the fact that a color channel is constant. The apparatus may include said processor to encode residuals relative to the sample or pixel with the predefined characteristic of the cluster that minimizes cost. The apparatus may include said processor to refrain from encoding residuals for a cluster with a constant color. The apparatus may include said processor to use a bit for each channel to encode whether it is constant color or not. The apparatus may include said processor to provide a group of bits per color channel to indicate how many residual bits are needed per channel. The apparatus may include said processor to find clusters using a K-means clustering algorithm. The apparatus may include said processor to find a minimal bounding box around a color. The apparatus may include said processor to take a first color from a palette, build a cluster around the first color and then, if a second color that is different by a threshold from the first color, form a second cluster including the second color, and fit ensuring colors into the first and second clusters.
- The graphics processing techniques described herein may be implemented in various hardware architectures. For example, graphics functionality may be integrated within a chipset. Alternatively, a discrete graphics processor may be used. As still another embodiment, the graphics functions may be implemented by a general purpose processor, including a multicore processor.
- References throughout this specification to “one embodiment” or “an embodiment” mean that a particular feature, structure, or characteristic described in connection with the embodiment is included in at least one implementation encompassed within the present disclosure. Thus, appearances of the phrase “one embodiment” or “in an embodiment” are not necessarily referring to the same embodiment. Furthermore, the particular features, structures, or characteristics may be instituted in other suitable forms other than the particular embodiment illustrated and all such forms may be encompassed within the claims of the present application.
- While a limited number of embodiments have been described, those skilled in the art will appreciate numerous modifications and variations therefrom. It is intended that the appended claims cover all such modifications and variations as fall within the true spirit and scope of this disclosure.
Claims (30)
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