TMS320DM6446

アクティブ

DaVinci デジタル メディア システムオンチップ

製品詳細

CPU 32-/64-bit Operating system INTEGRITY, Linux, Neutrino, PrOS, Windows Embedded CE Rating Catalog Operating temperature range (°C) -40 to 105
CPU 32-/64-bit Operating system INTEGRITY, Linux, Neutrino, PrOS, Windows Embedded CE Rating Catalog Operating temperature range (°C) -40 to 105
NFBGA (ZWT) 361 256 mm² (16 mm × 16 mm)
  • High-Performance Digital Media SoC
    • 513-, 594-, 810-MHz C64x+™ Clock Rates
    • 256.5-, 297-, 405-MHz ARM926EJ-S™ Clock Rates
    • Eight 32-Bit C64x+ Instructions/Cycle
    • 4104, 4752, 6480 C64x+ MIPS
    • Fully Software-Compatible With C64x / ARM9™
    • Extended Temperature Devices Available
  • Advanced Very-Long-Instruction-Word (VLIW) TMS320C64x+™ DSP Core
    • Eight Highly Independent Functional Units
      • Six ALUs (32-/40-Bit), Each Supports Single 32-Bit, Dual 16-Bit, or Quad 8-Bit Arithmetic per Clock Cycle
      • Two Multipliers Support Four 16 x 16-Bit Multiplies (32-Bit Results) per Clock Cycle or Eight 8 x 8-Bit Multiplies (16-Bit Results) per Clock Cycle
    • Load-Store Architecture With Non-Aligned Support
    • 64 32-Bit General-Purpose Registers
    • Instruction Packing Reduces Code Size
    • All Instructions Conditional
    • Additional C64x+™ Enhancements
      • Protected Mode Operation
      • Exceptions Support for Error Detection and Program Redirection
      • Hardware Support for Modulo Loop Operation
  • C64x+ Instruction Set Features
    • Byte-Addressable (8-/16-/32-/64-Bit Data)
    • 8-Bit Overflow Protection
    • Bit-Field Extract, Set, Clear
    • Normalization, Saturation, Bit-Counting
    • Compact 16-Bit Instructions
    • Additional Instructions to Support Complex Multiplies
  • C64x+ L1/L2 Memory Architecture
    • 32K-Byte L1P Program RAM/Cache (Direct Mapped)
    • 80K-Byte L1D Data RAM/Cache (2-Way Set-Associative)
    • 64K-Byte L2 Unified Mapped RAM/Cache (Flexible RAM/Cache Allocation)
  • ARM926EJ-S Core
    • Support for 32-Bit and 16-Bit (Thumb® Mode) Instruction Sets
    • DSP Instruction Extensions and Single Cycle MAC
    • ARM® Jazelle®: Technology
    • EmbeddedICE-RT™ Logic for Real-Time Debug
  • ARM9 Memory Architecture
    • 16K-Byte Instruction Cache
    • 8K-Byte Data Cache
    • 16K-Byte RAM
    • 8K-Byte ROM
  • Embedded Trace Buffer™ (ETB11™) With 4KB Memory for ARM9 Debug
  • Endianness: Little Endian for ARM and DSP
  • Video Imaging Co-Processor (VICP)
  • Video Processing Subsystem
    • Front End Provides:
      • CCD and CMOS Imager Interface
      • BT.601/BT.656 Digital YCbCr 4:2:2 (8-/16-Bit) Interface
      • Preview Engine for Real-Time Image Processing
      • Glueless Interface to Common Video Decoders
      • Histogram Module
      • Auto-Exposure, Auto-White Balance and Auto-Focus Module
      • Resize Engine Resize
        • Images From 1/4x to 4x
        • Separate Horizontal/Vertical Control
    • Back End Provides:
      • Hardware On-Screen Display (OSD)
      • Four 54-MHz DACs for a Combination of
        • Composite NTSC/PAL Video
        • Luma/Chroma Separate Video (S-video)
        • Component (YPbPr or RGB) Video (Progressive)
      • Digital Output
        • 8-/16-bit YUV or up to 24-Bit RGB
        • HD Resolution
        • Up to 2 Video Windows
  • External Memory Interfaces (EMIFs)
    • 32-Bit DDR2 SDRAM Memory Controller With 256M-Byte Address Space (1.8-V I/O)
      • Up to 167-MHz Controller (A-513, -594)
      • Up to 189-MHz Controller (-810)
    • Asynchronous 16-Bit-Wide EMIF (EMIFA) With 128M-Byte Address Reach
      • Flash Memory Interfaces
        • NOR (8-/16-Bit-Wide Data)
        • NAND (8-/16-Bit-Wide Data)
  • Flash Card Interfaces
    • Multimedia Card (MMC)/Secure Digital (SD) with Secure Data I/O (SDIO)
    • Compact Flash Controller With True IDE Mode
    • SmartMedia
  • Enhanced Direct-Memory-Access (EDMA3) Controller (64 Independent Channels)
  • Two 64-Bit General-Purpose Timers (Each Configurable as Two 32-Bit Timers)
  • One 64-Bit Watch Dog Timer
  • Three UARTs (One with RTS and CTS Flow Control)
  • One Serial Peripheral Interface (SPI) With Two Chip-Selects
  • Master/Slave Inter-Integrated Circuit (I2C Bus™)
  • Audio Serial Port (ASP)
    • I2S
    • AC97 Audio Codec Interface
    • Standard Voice Codec Interface (AIC12)
  • 10/100 Mb/s Ethernet MAC (EMAC)
    • IEEE 802.3 Compliant
    • Media Independent Interface (MII)
  • VLYNQ™ Interface (FPGA Interface)
  • Host Port Interface (HPI) with 16-Bit Multiplexed Address/Data
  • USB Port With Integrated 2.0 PHY
    • USB 2.0 High-/Full-Speed (480-Mbps) Client
    • USB 2.0 High-/Full-/Low-Speed Host (Mini-Host, Supporting One External Device)
  • Three Pulse Width Modulator (PWM) Outputs
  • On-Chip ARM ROM Bootloader (RBL) to Boot From NAND Flash or UART
  • ATA/ATAPI I/F (ATA/ATAPI-6 Specification)
  • Individual Power-Saving Modes for ARM/DSP
  • Flexible PLL Clock Generators
  • IEEE-1149.1 (JTAG) Boundary-Scan-Compatible
  • Up to 71 General-Purpose I/O (GPIO) Pins (Multiplexed With Other Device Functions)
  • 361-Pin Pb-Free BGA Package(ZWT Suffix), 0.8-mm Ball Pitch
  • 0.09-µm/6-Level Cu Metal Process (CMOS)
  • 3.3-V and 1.8-V I/O, 1.2-V Internal (513, 594)
  • 3.3-V and 1.8-V I/O, 1.2-V DAC and USB, 1.3-V Internal (810 only)
  • Applications:
    • Digital Media
    • Networked Media Encode/Decode
    • Video Imaging

All other trademarks are the property of their respective owners

  • High-Performance Digital Media SoC
    • 513-, 594-, 810-MHz C64x+™ Clock Rates
    • 256.5-, 297-, 405-MHz ARM926EJ-S™ Clock Rates
    • Eight 32-Bit C64x+ Instructions/Cycle
    • 4104, 4752, 6480 C64x+ MIPS
    • Fully Software-Compatible With C64x / ARM9™
    • Extended Temperature Devices Available
  • Advanced Very-Long-Instruction-Word (VLIW) TMS320C64x+™ DSP Core
    • Eight Highly Independent Functional Units
      • Six ALUs (32-/40-Bit), Each Supports Single 32-Bit, Dual 16-Bit, or Quad 8-Bit Arithmetic per Clock Cycle
      • Two Multipliers Support Four 16 x 16-Bit Multiplies (32-Bit Results) per Clock Cycle or Eight 8 x 8-Bit Multiplies (16-Bit Results) per Clock Cycle
    • Load-Store Architecture With Non-Aligned Support
    • 64 32-Bit General-Purpose Registers
    • Instruction Packing Reduces Code Size
    • All Instructions Conditional
    • Additional C64x+™ Enhancements
      • Protected Mode Operation
      • Exceptions Support for Error Detection and Program Redirection
      • Hardware Support for Modulo Loop Operation
  • C64x+ Instruction Set Features
    • Byte-Addressable (8-/16-/32-/64-Bit Data)
    • 8-Bit Overflow Protection
    • Bit-Field Extract, Set, Clear
    • Normalization, Saturation, Bit-Counting
    • Compact 16-Bit Instructions
    • Additional Instructions to Support Complex Multiplies
  • C64x+ L1/L2 Memory Architecture
    • 32K-Byte L1P Program RAM/Cache (Direct Mapped)
    • 80K-Byte L1D Data RAM/Cache (2-Way Set-Associative)
    • 64K-Byte L2 Unified Mapped RAM/Cache (Flexible RAM/Cache Allocation)
  • ARM926EJ-S Core
    • Support for 32-Bit and 16-Bit (Thumb® Mode) Instruction Sets
    • DSP Instruction Extensions and Single Cycle MAC
    • ARM® Jazelle®: Technology
    • EmbeddedICE-RT™ Logic for Real-Time Debug
  • ARM9 Memory Architecture
    • 16K-Byte Instruction Cache
    • 8K-Byte Data Cache
    • 16K-Byte RAM
    • 8K-Byte ROM
  • Embedded Trace Buffer™ (ETB11™) With 4KB Memory for ARM9 Debug
  • Endianness: Little Endian for ARM and DSP
  • Video Imaging Co-Processor (VICP)
  • Video Processing Subsystem
    • Front End Provides:
      • CCD and CMOS Imager Interface
      • BT.601/BT.656 Digital YCbCr 4:2:2 (8-/16-Bit) Interface
      • Preview Engine for Real-Time Image Processing
      • Glueless Interface to Common Video Decoders
      • Histogram Module
      • Auto-Exposure, Auto-White Balance and Auto-Focus Module
      • Resize Engine Resize
        • Images From 1/4x to 4x
        • Separate Horizontal/Vertical Control
    • Back End Provides:
      • Hardware On-Screen Display (OSD)
      • Four 54-MHz DACs for a Combination of
        • Composite NTSC/PAL Video
        • Luma/Chroma Separate Video (S-video)
        • Component (YPbPr or RGB) Video (Progressive)
      • Digital Output
        • 8-/16-bit YUV or up to 24-Bit RGB
        • HD Resolution
        • Up to 2 Video Windows
  • External Memory Interfaces (EMIFs)
    • 32-Bit DDR2 SDRAM Memory Controller With 256M-Byte Address Space (1.8-V I/O)
      • Up to 167-MHz Controller (A-513, -594)
      • Up to 189-MHz Controller (-810)
    • Asynchronous 16-Bit-Wide EMIF (EMIFA) With 128M-Byte Address Reach
      • Flash Memory Interfaces
        • NOR (8-/16-Bit-Wide Data)
        • NAND (8-/16-Bit-Wide Data)
  • Flash Card Interfaces
    • Multimedia Card (MMC)/Secure Digital (SD) with Secure Data I/O (SDIO)
    • Compact Flash Controller With True IDE Mode
    • SmartMedia
  • Enhanced Direct-Memory-Access (EDMA3) Controller (64 Independent Channels)
  • Two 64-Bit General-Purpose Timers (Each Configurable as Two 32-Bit Timers)
  • One 64-Bit Watch Dog Timer
  • Three UARTs (One with RTS and CTS Flow Control)
  • One Serial Peripheral Interface (SPI) With Two Chip-Selects
  • Master/Slave Inter-Integrated Circuit (I2C Bus™)
  • Audio Serial Port (ASP)
    • I2S
    • AC97 Audio Codec Interface
    • Standard Voice Codec Interface (AIC12)
  • 10/100 Mb/s Ethernet MAC (EMAC)
    • IEEE 802.3 Compliant
    • Media Independent Interface (MII)
  • VLYNQ™ Interface (FPGA Interface)
  • Host Port Interface (HPI) with 16-Bit Multiplexed Address/Data
  • USB Port With Integrated 2.0 PHY
    • USB 2.0 High-/Full-Speed (480-Mbps) Client
    • USB 2.0 High-/Full-/Low-Speed Host (Mini-Host, Supporting One External Device)
  • Three Pulse Width Modulator (PWM) Outputs
  • On-Chip ARM ROM Bootloader (RBL) to Boot From NAND Flash or UART
  • ATA/ATAPI I/F (ATA/ATAPI-6 Specification)
  • Individual Power-Saving Modes for ARM/DSP
  • Flexible PLL Clock Generators
  • IEEE-1149.1 (JTAG) Boundary-Scan-Compatible
  • Up to 71 General-Purpose I/O (GPIO) Pins (Multiplexed With Other Device Functions)
  • 361-Pin Pb-Free BGA Package(ZWT Suffix), 0.8-mm Ball Pitch
  • 0.09-µm/6-Level Cu Metal Process (CMOS)
  • 3.3-V and 1.8-V I/O, 1.2-V Internal (513, 594)
  • 3.3-V and 1.8-V I/O, 1.2-V DAC and USB, 1.3-V Internal (810 only)
  • Applications:
    • Digital Media
    • Networked Media Encode/Decode
    • Video Imaging

All other trademarks are the property of their respective owners

The TMS320DM6446 (also referenced as DM6446) leverages TI's DaVinci™ technology to meet the networked media encode and decode application processing needs of next-generation embedded devices.

The DM6446 enables OEMs and ODMs to quickly bring to market devices featuring robust operating systems support, rich user interfaces, high processing performance, and long battery life through the maximum flexibility of a fully integrated mixed processor solution.

The dual-core architecture of the DM6446 provides benefits of both DSP and Reduced Instruction Set Computer (RISC) technologies, incorporating a high-performance TMS320C64x+™ DSP core and an ARM926EJ-S core.

The ARM926EJ-S is a 32-bit RISC processor core that performs 32-bit or 16-bit instructions and processes 32-bit, 16-bit, or 8-bit data. The core uses pipelining so that all parts of the processor and memory system can operate continuously.

The ARM core incorporates: A coprocessor 15 (CP15) and protection module Data and program Memory Management Units (MMUs) with table look-aside buffers. Separate 16K-byte instruction and 8K-byte data caches. Both are four-way associative with virtual index virtual tag (VIVT).

The TMS320C64x+™ DSPs are the highest-performance fixed-point DSP generation in the TMS320C6000™ DSP platform. It is based on an enhanced version of the second-generation high-performance, advanced very-long-instruction-word (VLIW) architecture developed by Texas Instruments (TI), making these DSP cores an excellent choice for digital media applications. The C64x is a code-compatible member of the C6000™ DSP platform. The TMS320C64x+ DSP is an enhancement of the C64x+™ DSP with added functionality and an expanded instruction set.

Any reference to the C64x™ DSP or C64x™ CPU also applies, unless otherwise noted, to the C64x+™ DSP and C64x+™ CPU, respectively.

With performance of up to 6480 million instructions per second (MIPS) at a clock rate of 810 MHz, the C64x+ core offers solutions to high-performance DSP programming challenges. The DSP core possesses the operational flexibility of high-speed controllers and the numerical capability of array processors. The C64x+ DSP core processor has 64 general-purpose registers of 32-bit word length and eight highly independent functional units--two multipliers for a 32-bit result and six arithmetic logic units (ALUs). The eight functional units include instructions to accelerate the performance in video and imaging applications. The DSP core can produce four 16-bit multiply-accumulates (MACs) per cycle for a total of 3240 million MACs per second (MMACS), or eight 8-bit MACs per cycle for a total of 6480 MMACS. For more details on the C64x+ DSP, see the TMS320C64x/C64x+ DSP CPU and Instruction Set Reference Guide (literature number SPRU732).

The DM6446 also has application-specific hardware logic, on-chip memory, and additional on-chip peripherals similar to the other C6000 DSP platform devices. The DM6446 core uses a two-level cache-based architecture. The Level 1 program cache (L1P) is a 256K-bit direct mapped cache and the Level 1 data cache (L1D) is a 640K-bit 2-way set-associative cache. The Level 2 memory/cache (L2) consists of an 512K-bit memory space that is shared between program and data space. L2 memory can be configured as mapped memory, cache, or combinations of the two.

The peripheral set includes: 2 configurable video ports; a 10/100 Mb/s Ethernet MAC (EMAC) with a Management Data Input/Output (MDIO) module; an inter-integrated circuit (I2C) Bus interface; one audio serial port (ASP); 2 64-bit general-purpose timers each configurable as 2 independent 32-bit timers; 1 64-bit watchdog timer; up to 71-pins of general-purpose input/output (GPIO) with programmable interrupt/event generation modes, multiplexed with other peripherals; 3 UARTs with hardware handshaking support on 1 UART; 3 pulse width modulator (PWM) peripherals; and 2 external memory interfaces: an asynchronous external memory interface (EMIFA) for slower memories/peripherals, and a higher speed synchronous memory interface for DDR2.

The DM6446 device includes a Video Processing Subsystem (VPSS) with two configurable video/imaging peripherals: 1 Video Processing Front-End (VPFE) input used for video capture, 1 Video Processing Back-End (VPBE) output with imaging co-processor (VICP) used for display.

The Video Processing Front-End (VPFE) is comprised of a CCD Controller (CCDC), a Preview Engine (Previewer), Histogram Module, Auto-Exposure/White Balance/Focus Module (H3A), and Resizer. The CCDC is capable of interfacing to common video decoders, CMOS sensors, and Charge Coupled Devices (CCDs). The Previewer is a real-time image processing engine that takes raw imager data from a CMOS sensor or CCD and converts from an RGB Bayer Pattern to YUV4:2:2. The Histogram and H3A modules provide statistical information on the raw color data for use by the DM6446. The Resizer accepts image data for separate horizontal and vertical resizing from 1/4x to 4x in increments of 256/N, where N is between 64 and 1024.

The Video Processing Back-End (VPBE) is comprised of an On-Screen Display Engine (OSD) and a Video Encoder (VENC). The OSD engine is capable of handling 2 separate video windows and 2 separate OSD windows. Other configurations include 2 video windows, 1 OSD window, and 1 attribute window allowing up to 8 levels of alpha blending. The VENC provides four analog DACs that run at 54 MHz, providing a means for composite NTSC/PAL video, S-Video, and/or Component video output. The VENC also provides up to 24 bits of digital output to interface to RGB888 devices. The digital output is capable of 8/16-bit BT.656 output and/or CCIR.601 with separate horizontal and vertical syncs.

The Ethernet Media Access Controller (EMAC) provides an efficient interface between the DM644x and the network. The DM6446 EMAC support both 10Base-T and 100Base-TX, or 10 Mbits/second (Mbps) and 100 Mbps in either half- or full-duplex mode, with hardware flow control and quality of service (QOS) support.

The Management Data Input/Output (MDIO) module continuously polls all 32 MDIO addresses in order to enumerate all PHY devices in the system. Once a PHY candidate has been selected by the ARM, the MDIO module transparently monitors its link state by reading the PHY status register. Link change events are stored in the MDIO module and can optionally interrupt the ARM, allowing the ARM to poll the link status of the device without continuously performing costly MDIO accesses.

The HPI, I2C, SPI, USB2.0, and VLYNQ ports allow DM6446 to easily control peripheral devices and/or communicate with host processors. The DM6446 also provides multimedia card support, MMC/SD, with SDIO support.

The DM6446 also includes a Video/Imaging Co-processor (VICP) to offload many video and imaging processing tasks from the DSP core, making more DSP MIPS available for common video and imaging algorithms. For more information on the VICP enhanced codecs, such as H.264 and MPEG4, please contact your nearest TI sales representative.

The rich peripheral set provides the ability to control external peripheral devices and communicate with external processors. For details on each of the peripherals, see the related sections later in this document and the associated peripheral reference guides listed in Section 2.8.3.1, Related Documentation From Texas Instruments.

The DM6446 has a complete set of development tools for both the ARM and DSP. These include C compilers, a DSP assembly optimizer to simplify programming and scheduling, and a Windows™ debugger interface for visibility into source code execution.

The TMS320DM6446 (also referenced as DM6446) leverages TI's DaVinci™ technology to meet the networked media encode and decode application processing needs of next-generation embedded devices.

The DM6446 enables OEMs and ODMs to quickly bring to market devices featuring robust operating systems support, rich user interfaces, high processing performance, and long battery life through the maximum flexibility of a fully integrated mixed processor solution.

The dual-core architecture of the DM6446 provides benefits of both DSP and Reduced Instruction Set Computer (RISC) technologies, incorporating a high-performance TMS320C64x+™ DSP core and an ARM926EJ-S core.

The ARM926EJ-S is a 32-bit RISC processor core that performs 32-bit or 16-bit instructions and processes 32-bit, 16-bit, or 8-bit data. The core uses pipelining so that all parts of the processor and memory system can operate continuously.

The ARM core incorporates: A coprocessor 15 (CP15) and protection module Data and program Memory Management Units (MMUs) with table look-aside buffers. Separate 16K-byte instruction and 8K-byte data caches. Both are four-way associative with virtual index virtual tag (VIVT).

The TMS320C64x+™ DSPs are the highest-performance fixed-point DSP generation in the TMS320C6000™ DSP platform. It is based on an enhanced version of the second-generation high-performance, advanced very-long-instruction-word (VLIW) architecture developed by Texas Instruments (TI), making these DSP cores an excellent choice for digital media applications. The C64x is a code-compatible member of the C6000™ DSP platform. The TMS320C64x+ DSP is an enhancement of the C64x+™ DSP with added functionality and an expanded instruction set.

Any reference to the C64x™ DSP or C64x™ CPU also applies, unless otherwise noted, to the C64x+™ DSP and C64x+™ CPU, respectively.

With performance of up to 6480 million instructions per second (MIPS) at a clock rate of 810 MHz, the C64x+ core offers solutions to high-performance DSP programming challenges. The DSP core possesses the operational flexibility of high-speed controllers and the numerical capability of array processors. The C64x+ DSP core processor has 64 general-purpose registers of 32-bit word length and eight highly independent functional units--two multipliers for a 32-bit result and six arithmetic logic units (ALUs). The eight functional units include instructions to accelerate the performance in video and imaging applications. The DSP core can produce four 16-bit multiply-accumulates (MACs) per cycle for a total of 3240 million MACs per second (MMACS), or eight 8-bit MACs per cycle for a total of 6480 MMACS. For more details on the C64x+ DSP, see the TMS320C64x/C64x+ DSP CPU and Instruction Set Reference Guide (literature number SPRU732).

The DM6446 also has application-specific hardware logic, on-chip memory, and additional on-chip peripherals similar to the other C6000 DSP platform devices. The DM6446 core uses a two-level cache-based architecture. The Level 1 program cache (L1P) is a 256K-bit direct mapped cache and the Level 1 data cache (L1D) is a 640K-bit 2-way set-associative cache. The Level 2 memory/cache (L2) consists of an 512K-bit memory space that is shared between program and data space. L2 memory can be configured as mapped memory, cache, or combinations of the two.

The peripheral set includes: 2 configurable video ports; a 10/100 Mb/s Ethernet MAC (EMAC) with a Management Data Input/Output (MDIO) module; an inter-integrated circuit (I2C) Bus interface; one audio serial port (ASP); 2 64-bit general-purpose timers each configurable as 2 independent 32-bit timers; 1 64-bit watchdog timer; up to 71-pins of general-purpose input/output (GPIO) with programmable interrupt/event generation modes, multiplexed with other peripherals; 3 UARTs with hardware handshaking support on 1 UART; 3 pulse width modulator (PWM) peripherals; and 2 external memory interfaces: an asynchronous external memory interface (EMIFA) for slower memories/peripherals, and a higher speed synchronous memory interface for DDR2.

The DM6446 device includes a Video Processing Subsystem (VPSS) with two configurable video/imaging peripherals: 1 Video Processing Front-End (VPFE) input used for video capture, 1 Video Processing Back-End (VPBE) output with imaging co-processor (VICP) used for display.

The Video Processing Front-End (VPFE) is comprised of a CCD Controller (CCDC), a Preview Engine (Previewer), Histogram Module, Auto-Exposure/White Balance/Focus Module (H3A), and Resizer. The CCDC is capable of interfacing to common video decoders, CMOS sensors, and Charge Coupled Devices (CCDs). The Previewer is a real-time image processing engine that takes raw imager data from a CMOS sensor or CCD and converts from an RGB Bayer Pattern to YUV4:2:2. The Histogram and H3A modules provide statistical information on the raw color data for use by the DM6446. The Resizer accepts image data for separate horizontal and vertical resizing from 1/4x to 4x in increments of 256/N, where N is between 64 and 1024.

The Video Processing Back-End (VPBE) is comprised of an On-Screen Display Engine (OSD) and a Video Encoder (VENC). The OSD engine is capable of handling 2 separate video windows and 2 separate OSD windows. Other configurations include 2 video windows, 1 OSD window, and 1 attribute window allowing up to 8 levels of alpha blending. The VENC provides four analog DACs that run at 54 MHz, providing a means for composite NTSC/PAL video, S-Video, and/or Component video output. The VENC also provides up to 24 bits of digital output to interface to RGB888 devices. The digital output is capable of 8/16-bit BT.656 output and/or CCIR.601 with separate horizontal and vertical syncs.

The Ethernet Media Access Controller (EMAC) provides an efficient interface between the DM644x and the network. The DM6446 EMAC support both 10Base-T and 100Base-TX, or 10 Mbits/second (Mbps) and 100 Mbps in either half- or full-duplex mode, with hardware flow control and quality of service (QOS) support.

The Management Data Input/Output (MDIO) module continuously polls all 32 MDIO addresses in order to enumerate all PHY devices in the system. Once a PHY candidate has been selected by the ARM, the MDIO module transparently monitors its link state by reading the PHY status register. Link change events are stored in the MDIO module and can optionally interrupt the ARM, allowing the ARM to poll the link status of the device without continuously performing costly MDIO accesses.

The HPI, I2C, SPI, USB2.0, and VLYNQ ports allow DM6446 to easily control peripheral devices and/or communicate with host processors. The DM6446 also provides multimedia card support, MMC/SD, with SDIO support.

The DM6446 also includes a Video/Imaging Co-processor (VICP) to offload many video and imaging processing tasks from the DSP core, making more DSP MIPS available for common video and imaging algorithms. For more information on the VICP enhanced codecs, such as H.264 and MPEG4, please contact your nearest TI sales representative.

The rich peripheral set provides the ability to control external peripheral devices and communicate with external processors. For details on each of the peripherals, see the related sections later in this document and the associated peripheral reference guides listed in Section 2.8.3.1, Related Documentation From Texas Instruments.

The DM6446 has a complete set of development tools for both the ARM and DSP. These include C compilers, a DSP assembly optimizer to simplify programming and scheduling, and a Windows™ debugger interface for visibility into source code execution.

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上位の文書 タイプ タイトル フォーマットオプション 最新の英語版をダウンロード 日付
* データシート TMS320DM6446 Digital Media System-on-Chip データシート (Rev. H) 2010/09/30
* エラッタ TMS320DM6446 Digital Media SoC Silicon Errata (Revs 2.3, 2.1, 1.3, 1.2 & 1.1) (Rev. N) 2010/07/23
アプリケーション・ノート High-Speed Interface Layout Guidelines (Rev. J) PDF | HTML 2023/02/24
ユーザー・ガイド TMS320C6000 Optimizing Compiler v 7.4 User's Guide (Rev. U) 2012/08/21
ユーザー・ガイド TMS320C6000 Assembly Language Tools v 7.4 User's Guide (Rev. W) 2012/08/21
ユーザー・ガイド Emulation and Trace Headers Technical Reference Manual (Rev. I) 2012/08/09
アプリケーション・ノート Introduction to TMS320C6000 DSP Optimization 2011/10/06
ユーザー・ガイド TMS320DM644x DMSoC 64-bit Timer User's Guide 2011/08/01
ユーザー・ガイド TMS320C6000 Programmer's Guide (Rev. K) 2011/07/11
ユーザー・ガイド TMS320DM644x DMSoC Inter-Integrated Circuit (I2C) Peripheral User's Guide (Rev. F) 2011/03/25
ユーザー・ガイド TMS320DM644x DMSoC Video Processing Back End (VPBE) User's Guide (Rev. D) 2011/01/27
ユーザー・ガイド TMS320DM644x DMSoC DDR2 Memory Controller User's Guide (Rev. E) 2011/01/12
ユーザー・ガイド TMS320DM644x DMSoC EMAC/MDIO Module User's Guide (Rev. B) 2010/12/23
ユーザー・ガイド TMS320DM644x DMSoC Video Processing Front End (VPFE) User's Guide (Rev. H) 2010/08/25
ユーザー・ガイド TMS320DM644x DMSoC General-Purpose Input/Output (GPIO) User's Guide (Rev. A) 2010/08/19
アプリケーション・ノート TMS320DM6446/3 Power Consumption Summary (Rev. B) 2010/08/16
ユーザー・ガイド TMS320DM644x DMSoC Pulse-Width Modulator (PWM) User's Guide (Rev. A) 2010/08/06
ユーザー・ガイド TMS320C64x+ DSP Megamodule Reference Guide (Rev. K) 2010/08/03
ユーザー・ガイド TMS320C64x/C64x+ DSP CPU and Instruction Set Reference Guide (Rev. J) 2010/07/30
ユーザー・ガイド TMS320DM644x DMSoC ARM Subsystem Reference Guide (Rev. C) 2010/07/21
アプリケーション・ノート Migrating From TMS320DM644x v.2.1 ROM Bootloader to 2.3 Version 2010/07/20
アプリケーション・ノート Migrating From TMS320DM6446 594 MHz to 810 MHz 2010/07/20
ユーザー・ガイド TMS320DM644x DMSoC Universal Serial Bus (USB) Controller User's Guide (Rev. G) 2010/06/02
アプリケーション・ノート USB Compliance Checklist (Rev. A) 2010/03/10
アプリケーション・ノート Running a TMS320C64x+ Codec Across TMS320C64x+ Based DSP Platforms 2009/09/24
アプリケーション・ノート Booting and Flashing via the DaVinci TMS320DM644x Serial Interface (Rev. A) 2009/09/10
アプリケーション・ノート LSP 2.10 DaVinci Linux Drivers (Rev. A) 2009/07/08
アプリケーション・ノート Common Object File Format (COFF) 2009/04/15
アプリケーション・ノート Ultrasound Scan Conversion on TI's C64x+ DSPs 2009/04/03
ユーザー・ガイド TMS320DM644x DMSoC Asynchronous External Memory Interface (EMIF) User's Guide (Rev. C) 2009/02/24
ユーザー・ガイド TMS320DM644x DMSoC Host Port Interface (HPI) User's Guide (Rev. B) 2009/02/22
ユーザー・ガイド TMS320C64x+ DSP Cache User's Guide (Rev. B) 2009/02/11
アプリケーション・ノート De-Interlacing and YUV 4:2:2 to 4:2:0 Conversion on DM6446 Using the Resizer (Rev. B) 2008/12/17
アプリケーション・ノート Booting DaVinci EVM from NAND Flash (Rev. A) 2008/12/15
アプリケーション・ノート 5 VIN solution using DCDC Controllers, a LDO, and a Digitally Prog. Sequencer 2008/11/24
アプリケーション・ノート Migrating from TMS320DM6446 to TMS320DM6467 2008/11/17
製品概要 TMS320C6000 高性能 DSP シリーズ プロダクト・ブリテン (Rev. B 翻訳版) 2008/11/17
ホワイト・ペーパー See the difference:DSPs in medical imaging 2008/10/31
その他の技術資料 DaVinci Technology Overview Brochure (Rev. B) 2008/09/27
アプリケーション・ノート Migrating from EDMA v2.0 to EDMA v3.0 TMS320C64X DSP (Rev. A) 2008/08/21
アプリケーション・ノート Understanding the Davinci Preview Engine (Rev. A) 2008/07/23
アプリケーション・ノート Understanding TI's PCB Routing Rule-Based DDR Timing Specification (Rev. A) 2008/07/17
アプリケーション・ノート Understanding the Davinci Resizer (Rev. B) 2008/07/17
アプリケーション・ノート Implementing the DDR2 PCB Layout on the TMS320DM644x DMSoC (Rev. G) 2008/06/16
アプリケーション・ノート Building a Small Embedded Linux Kernel Example (Rev. A) 2008/05/27
ユーザー・ガイド TMS320DM644x DMSoC Multimedia Card (MMC)/Secure Digital (SD) Card Controller UG (Rev. D) 2008/05/27
ユーザー・ガイド TMS320C64x+ DSP Image/Video Processing Library (v2.0) Programmer's Reference (Rev. A) 2008/05/05
アプリケーション・ノート TMS320DM644x Thermal Considerations (Rev. A) 2008/04/23
ユーザー・ガイド TMS320DM644x DMSoC Universal Asynchronous Receiver/Transmitter (UART) UG (Rev. A) 2008/04/08
アプリケーション・ノート TMS320DM6441 Power Consumption Summary Application Report 2008/04/08
ユーザー・ガイド TMS320C64x+ DSP Little-Endian Library Programmer's Reference (Rev. B) 2008/03/06
アプリケーション・ノート Creating a TMS320DM6446 Audio Encode Example Using XDC Tools (Rev. A) 2008/02/26
ユーザー・ガイド TMS320DM644x DMSoC Enhanced Direct Memory Access (EDMA) Controller User's Guide (Rev. D) 2008/02/25
アプリケーション・ノート Building GStreamer 2008/01/11
アプリケーション・ノート Migrating from TMS320DM6446 to TMS320DM6437 2007/11/05
アプリケーション・ノート Changing the DVEVM Memory Map 2007/09/26
ユーザー・ガイド TMS320DM644x DMSoC VLYNQ Port User's Guide (Rev. A) 2007/09/20
ユーザー・ガイド TMS320DM644x DMSoC Audio Serial Port (ASP) User's Guide (Rev. B) 2007/09/17
アプリケーション・ノート Motion JPEG Demo on TMS320DM6446 (Rev. A) 2007/09/11
アプリケーション・ノート Running Demo via ddd on the DVEVM 2007/07/30
アプリケーション・ノート Using Static IP Between Linux Host and the DVEVM 2007/07/30
アプリケーション・ノート Compact Flash (CF) Support on the DVEVM 2007/07/25
アプリケーション・ノート Host USB Support on the DVEVM 2007/07/20
アプリケーション・ノート Encode Demo for the DaVinci DVEVM/DVSDK 1.2 (Rev. A) 2007/06/27
アプリケーション・ノート Digital Video Using DaVinci SoC 2007/06/27
アプリケーション・ノート Decode Demo for the DaVinci DVEVM/DVSDK 1.2 (Rev. A) 2007/06/27
アプリケーション・ノート EncodeDecode Demo for the DaVinci DVEVM/DVSDK 1.2 (Rev. A) 2007/06/27
アプリケーション・ノート Measuring Video Quality With the TMS320DM6446 DVSDK 2007/05/08
ユーザー・ガイド TMS320DM644x DMSoC Peripherals Overview Reference Guide (Rev. C) 2007/04/18
製品概要 TMS320C6000 DSP TCP/IP Stack Software (Rev. C) 2007/04/04
EVM ユーザー ガイド (英語) TMS320DM644x DVEVM Windows CE v5.0 Codec Engine Binary User's Guide 2007/03/23
EVM ユーザー ガイド (英語) TMS320DM644x DVEVM Windows CE v5.0 BSP Codec Engine User’s Guide 2007/03/23
製品概要 DaVinci Technology - Digital Video Innovation Product Bulletin (Rev. D) 2007/02/13
その他の技術資料 Overview of DaVinci™ TMS320DM644x Digital Media Portfolio (Rev. B) 2007/02/13
ユーザー・ガイド TMS320DM644x DMSoC Serial Peripheral Interface (SPI) User's Guide (Rev. A) 2007/02/07
アプリケーション・ノート DaVinci Technology Background and Specifications (Rev. A) 2007/01/04
アプリケーション・ノート Basic Application Loading over the Serial Interface for the DaVinci TMS320DM644x 2006/12/21
製品概要 Portable Media Player Based on DaVinci Technology 2006/11/14
製品概要 Universal IP Player Solution from ATEME 2006/11/02
アプリケーション・ノート DaVinci System Level Benchmarking Measurements 2006/09/28
製品概要 DaVinci Benchmarks Product Bulletin (Rev. A) 2006/09/12
アプリケーション・ノート Fast Development with DaVinci On Screen Display (OSD) 2006/07/06
ユーザー・ガイド TMS320C64x+ Image/Video Processing Library Programmer's Reference 2006/03/10
ユーザー・ガイド TMS320C64x+ DSP Big-Endian Library Programmer's Reference 2006/03/10
アプリケーション・ノート Migrating from EDMA v2.0 to EDMA v3.0 for TMS320DM644X DMSoC 2005/12/03
ユーザー・ガイド TMS320DM644x DMSoC DSP Subsystem Reference Guide 2005/12/03
ユーザー・ガイド TMS320DM644x DMSoC ATA Controller User's Guide 2005/12/03
アプリケーション・ノート Migrating from TMS320C64x to TMS320C64x+ (Rev. A) 2005/10/20

設計と開発

その他のアイテムや必要なリソースを参照するには、以下のタイトルをクリックして詳細ページをご覧ください。

デバッグ・プローブ

TMDSEMU200-U — XDS200 USB デバッグ プローブ

XDS200 は、TI の組込みデバイスのデバッグに使用するデバッグ プローブ (エミュレータ) です。大半のデバイスでは、より新しく低コストな XDS110 (www.ti.com/tool/TMDSEMU110-U) の使用が推奨されます。XDS200 は、単一のポッドで IEEE1149.1、IEEE1149.7、SWD などの幅広い規格をサポートします。すべての XDS デバッグ プローブは、ETB (Embedded Trace Buffer、組込みトレース バッファ) 搭載のすべての Arm® と DSP プロセッサに対し、コア トレースとシステム トレースをサポートしています。

(...)

サポート対象の製品とハードウェア
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制限:
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デバッグ・プローブ

TMDSEMU560V2STM-U — XDS560™ ソフトウェア v2 システム トレース USB デバッグ プローブ

XDS560v2 は、XDS560™ デバッグ プローブ ファミリの中で最高の性能を提供し、従来型の JTAG 規格(IEEE1149.1)と、cJTAG(IEEE1149.7)の両方をサポートしています。  シリアル ワイヤ デバッグ (SWD) はサポートしていないことに注意してください。

すべての XDS デバッグ プローブは、ETB(Embedded Trace Buffer、組込みトレース バッファ)搭載のすべての ARM と DSP プロセッサに対し、コア トレースとシステム トレースをサポートしています。  ピンのトレースには、XDS560v2 PRO TRACE が必要です。

(...)

サポート対象の製品とハードウェア
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制限:
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デバッグ・プローブ

TMDSEMU560V2STM-UE — Spectrum Digital XDS560v2 システム・トレース USB およびイーサネット

The XDS560v2 System Trace is the first model of the XDS560v2 family of high-performance debug probes (emulators) for TI processors. The XDS560v2 is the highest performance of the XDS family of debug probes and supports both the traditional JTAG standard (IEEE1149.1) and cJTAG (IEEE1149.7).

The (...)

サポート対象の製品とハードウェア
在庫あり
制限:
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デバッグ・プローブ

LB-3P-TRACE32-DSP — デジタル信号プロセッサ(DSP)用 Lauterbach TRACE32デバッグおよびトレースシステム

Lauterbach‘s TRACE32® tools are a suite of leading-edge hardware and software components that enables developers to analyze, optimize and certify all kinds of single- or multi-core Digital Signal processors (DSPs) which are a popular choice for audio and video processing as well as radar data (...)

購入先:Lauterbach GmbH
サポート対象の製品とハードウェア
ソフトウェア開発キット (SDK)

LINUXDVSDK-DV — Linux デジタル・ビデオ・ソフトウェア開発キット(DVSDK)v2x/v3x - DaVinci デジタル・メディア・プロセッサ

発効日:2010 年 10 月 - Linux DVSDK v4 のリリース日。 上記に掲載されていない各種 DaVinci™ デバイスについては、ご希望のデバイスの型番を TIウェブサイトで検索してください。今後、この製品ページに、お客様がご使用になっている最新の DVSDK へのリンクを掲載する予定です。

DaVinci システムのインテグレータの皆様は、Linux™ デジタル・ビデオ・ソフトウェア開発キット (DVSDK) を使用すると、Linux ベースのマルチメディア・アプリケーションを迅速に開発し、DaVinci (...)

サポート対象の製品とハードウェア
アプリケーション・ソフトウェアとフレームワーク

TMDMFP — マルチメディア・フレームワーク製品(MFP)- コーデック・エンジン、フレームワーク・コンポーネントおよび XDAIS

Multimedia Framework Products (MFP)

A major advantage of programmable DSPs over fixed-function devices is their ability to accelerate multiple multimedia functions in a single device. TI multimedia framework products are designed to enable users to easily share a DSP between algorithms by handling (...)

サポート対象の製品とハードウェア
ドライバまたはライブラリ

SPRC122 — C62x/C64x Fast Run-Time Support Library

C62x/64x FastRTS ライブラリは、最適化済みの浮動小数点関数ライブラリであり、TMS320C62x または TMS320C64x どちらかのデバイスを使用する C プログラマ向けです。これらのルーチンは通常、最適な実行速度を重視する演算集中型のリアルタイム アプリケーションで使用します。現行の浮動小数点ライブラリ (RTS) の関数を FastRTS ライブラリで置き換えると、既存のコードを書き換えずに実行速度を大幅に高速化することができます。

また、このリリースは、FastRTS ライブラリで使用できる一部の関数に対応する C の実装も収録しています。これらの C (...)

サポート対象の製品とハードウェア
ドライバまたはライブラリ

SPRC831 — ビデオイメージング コプロセッサ(VICP)シグナル プロセッシング ライブラリ

テキサス インスツルメンツのVICP信号処理ライブラリは、VICP H/Wアクセラレータ上で実行される高度に調整されたSWアルゴリズムの集合です。このライブラリにより、アプリケーション開発者は、アクセラレータ用のソフトウェア開発に膨大な時間を費やすことなく、VICPの性能を効果的に活用することができます。VICP信号処理ライブラリで十分にテストされ、パフォーマンスが調整されたアルゴリズムを利用できることで、アプリケーションの開発時間を大幅に短縮できます。DSPで解放されたMIPSにより、アプリケーション開発者は最終的なアプリケーションにさらに多くの差別化機能を盛り込むことができます。

VICP (...)

サポート対象の製品とハードウェア
ドライバまたはライブラリ

TELECOMLIB — テレコムおよびメディア向けライブラリ - FAXLIB、VoLIB および AEC/AER、TMS320C64x+ および TMS320C55x プロセッサ用

Voice Library - VoLIB provides components that, together, facilitate the development of the signal processing chain for Voice over IP applications such as infrastructure, enterprise, residential gateways and IP phones. Together with optimized implementations of ITU-T voice codecs, that can be (...)

サポート対象の製品とハードウェア
ソフトウェア・コーデック

C64XPLUSCODECS — CODECS - ビデオおよびスピーチ C64x+-ベース・デバイス (OMAP35x、C645x、C647x、DM646、DM644x、DM643x)

TI のコーデックは無償であり、量産ライセンスが付属しているほか、今すぐダウンロードできます。いずれも量産テスト済みで、ビデオや音声の各アプリケーションに簡単に統合可能です。(上にある) 「GET SOFTWARE」 (ソフトウェアを入手) ボタンをクリックすると、最新のテスト済みコーデック・バージョンを入手できます。各インストーラやダウンロード・ページから、データシートとリリース・ノートが利用可能です。

 

追加情報:

サポート対象の製品とハードウェア
ソフトウェア・コーデック

DM644XCODECS — DM644x 用コーデック - ソフトウェアとドキュメント

TI のコーデックは無償であり、量産ライセンスが付属しているほか、今すぐダウンロードできます。いずれも量産テスト済みで、オーディオ、ビデオ、音声の各アプリケーションに簡単に統合可能です。(上にある) 「GET SOFTWARE」 (ソフトウェアを入手) ボタンをクリックすると、最新のテスト済みコーデック・バージョンを入手できます。各インストーラやダウンロード・ページから、データシートとリリース・ノートが利用可能です。

 

追加情報:

サポート対象の製品とハードウェア
シミュレーション・モデル

DM6446 ZWT BSDL Model

SPRM203.ZIP (10 KB) - BSDL モデル
サポート対象の製品とハードウェア
シミュレーション・モデル

DM6446 ZWT BSDL version 2.1 Model (Rev. A)

SPRM325 (8 KB) - BSDL モデル
サポート対象の製品とハードウェア
シミュレーション・モデル

DM6446 ZWT IBIS Model (Rev. C)

SPRM202 (520 KB) - IBIS モデル
サポート対象の製品とハードウェア
シミュレーション・モデル

DM6446_DDR2 ZWT IBIS Model

SPRM450.ZIP (50 KB) - IBIS モデル
サポート対象の製品とハードウェア
パッケージ ピン数 CAD シンボル、フットプリント、および 3D モデル
NFBGA (ZWT) 361 Ultra Librarian

購入と品質

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