产品详情

CPU 32-/64-bit Frequency (MHz) 850, 1000, 1200 Hardware accelerators TCP2, VCP2 Operating system DSP/BIOS Rating Catalog Operating temperature range (°C) 0 to 100
CPU 32-/64-bit Frequency (MHz) 850, 1000, 1200 Hardware accelerators TCP2, VCP2 Operating system DSP/BIOS Rating Catalog Operating temperature range (°C) 0 to 100
FCBGA (CMH) 688 529 mm² (23 mm × 23 mm)
  • High-Performance Fixed-Point DSP (C6457)
    • 1.18-ns, 1-ns, and 0.83-ns Instruction Cycle Time/li>
    • 850-MHz, 1-GHz, and 1.2-GHz Clock Rate
    • Eight 32-Bit Instructions/Cycle
    • 8000 and 9600 MIPS/MMACS (16-Bits)
    • Case Temperature
      • Commercial:
        • 0°C to 100°C (850 MHz)
        • 0°C to 100°C (1 GHz)
        • 0°C to 95°C (1.2 GHz)
      • Extended:
        • -40°C to 100°C (1 GHz)
        • -40°C to 95°C (1.2 GHz)
  • TMS320C64x+™ DSP Core
    • Dedicated SPLOOP Instruction
    • Compact Instructions (16-Bit)
    • Instruction Set Enhancements
    • Exception Handling
  • TMS320C64x+ Megamodule L1/L2 Memory Architecture:
    • 256K-Bit (32K-Byte) L1P Program Cache [Direct Mapped]
    • 256K-Bit (32K-Byte) L1D Data Cache [2-Way Set-Associative]
    • 16M-Bit (2048K-Byte) L2 Unified Mapped Ram/Cache [Flexible Allocation]
      • Configurable up to 1MB of L2 Cache
    • 512K-Bit (64K-Byte) L3 ROM
    • Time Stamp Counter
  • Enhanced VCP2
    • Supports Over 694 7.95-Kbps AMR
    • Programmable Code Parameters
  • Two Enhanced Turbo Decoder Coprocessors (TCP2_A and TCP2_B)
    • Each TCP2 Supports up to Eight 2-Mbps 3GPP (6 Iterations)
    • Programmable Turbo Code and Decoding Parameters
  • Endianess: Little Endian, Big Endian
  • 64-Bit External Memory Interface (EMIFA)
    • Glueless Interface to Asynchronous Memories (SRAM, Flash, and EEPROM) and Synchronous Memories (SBSRAM, ZBT SRAM)
    • Supports Interface to Standard Sync Devices and Custom Logic (FPGA, CPLD, ASICs, etc.)
    • 32M-Byte Total Addressable External Memory Space
  • 32-Bit DDR2 Memory Controller (DDR2-667 SDRAM)
  • Four 1× Serial RapidIO® Links (or One 4×), v1.3 Compliant
    • 1.25-, 2.5-, 3.125-Gbps Link Rates
    • Message Passing, DirectIO Support, Error Mgmt Extensions, Congestion Control
    • IEEE 1149.6 Compliant I/Os
  • EDMA3 Controller (64 Independent Channels)
  • 32-/16-Bit Host-Port Interface (HPI)
  • Two 1.8-V McBSPs
  • 10/100/1000 Mb/s Ethernet MAC (EMAC)
    • IEEE 802.3 Compliant
    • Supports SGMII, v1.8 Compliant
    • 8 Independent Transmit (TX) and 8 Independent Receive (RX) Channels
  • Two 64-Bit General-Purpose Timers
    • Configurable as Four 32-Bit Timers
    • Configurable in a Watchdog Timer Mode
  • UTOPIA
    • UTOPIA Level 2 Slave ATM Controller
    • 8-Bit Transmit and Receive Operations up to 50 MHz per Direction
    • User-Defined Cell Format up to 64 Bytes
  • One 1.8-V Inter-Integrated Circuit (I2C) Bus
  • 16 General-Purpose I/O (GPIO) Pins
  • System PLL and PLL Controller
  • DDR PLL, Dedicated to DDR2 Memory Controller
  • Advanced Event Triggering (AET) Compatible
  • Trace-Enabled Device
  • Supports IP Security
  • IEEE-1149.1 and IEEE-1149.6 (JTAG™) Boundary-Scan-Compatible
  • 688-Pin Ball Grid Array (BGA) Package (CMH or GMH Suffix), 0.8-mm Ball Pitch
  • 0.065-µm/7-Level Cu Metal Process (CMOS)
  • 3.3-V, 1.8-V, 1.1-V I/Os, 1.1-V and 1.2-V Internal

All trademarks are the property of their respective owners.

  • High-Performance Fixed-Point DSP (C6457)
    • 1.18-ns, 1-ns, and 0.83-ns Instruction Cycle Time/li>
    • 850-MHz, 1-GHz, and 1.2-GHz Clock Rate
    • Eight 32-Bit Instructions/Cycle
    • 8000 and 9600 MIPS/MMACS (16-Bits)
    • Case Temperature
      • Commercial:
        • 0°C to 100°C (850 MHz)
        • 0°C to 100°C (1 GHz)
        • 0°C to 95°C (1.2 GHz)
      • Extended:
        • -40°C to 100°C (1 GHz)
        • -40°C to 95°C (1.2 GHz)
  • TMS320C64x+™ DSP Core
    • Dedicated SPLOOP Instruction
    • Compact Instructions (16-Bit)
    • Instruction Set Enhancements
    • Exception Handling
  • TMS320C64x+ Megamodule L1/L2 Memory Architecture:
    • 256K-Bit (32K-Byte) L1P Program Cache [Direct Mapped]
    • 256K-Bit (32K-Byte) L1D Data Cache [2-Way Set-Associative]
    • 16M-Bit (2048K-Byte) L2 Unified Mapped Ram/Cache [Flexible Allocation]
      • Configurable up to 1MB of L2 Cache
    • 512K-Bit (64K-Byte) L3 ROM
    • Time Stamp Counter
  • Enhanced VCP2
    • Supports Over 694 7.95-Kbps AMR
    • Programmable Code Parameters
  • Two Enhanced Turbo Decoder Coprocessors (TCP2_A and TCP2_B)
    • Each TCP2 Supports up to Eight 2-Mbps 3GPP (6 Iterations)
    • Programmable Turbo Code and Decoding Parameters
  • Endianess: Little Endian, Big Endian
  • 64-Bit External Memory Interface (EMIFA)
    • Glueless Interface to Asynchronous Memories (SRAM, Flash, and EEPROM) and Synchronous Memories (SBSRAM, ZBT SRAM)
    • Supports Interface to Standard Sync Devices and Custom Logic (FPGA, CPLD, ASICs, etc.)
    • 32M-Byte Total Addressable External Memory Space
  • 32-Bit DDR2 Memory Controller (DDR2-667 SDRAM)
  • Four 1× Serial RapidIO® Links (or One 4×), v1.3 Compliant
    • 1.25-, 2.5-, 3.125-Gbps Link Rates
    • Message Passing, DirectIO Support, Error Mgmt Extensions, Congestion Control
    • IEEE 1149.6 Compliant I/Os
  • EDMA3 Controller (64 Independent Channels)
  • 32-/16-Bit Host-Port Interface (HPI)
  • Two 1.8-V McBSPs
  • 10/100/1000 Mb/s Ethernet MAC (EMAC)
    • IEEE 802.3 Compliant
    • Supports SGMII, v1.8 Compliant
    • 8 Independent Transmit (TX) and 8 Independent Receive (RX) Channels
  • Two 64-Bit General-Purpose Timers
    • Configurable as Four 32-Bit Timers
    • Configurable in a Watchdog Timer Mode
  • UTOPIA
    • UTOPIA Level 2 Slave ATM Controller
    • 8-Bit Transmit and Receive Operations up to 50 MHz per Direction
    • User-Defined Cell Format up to 64 Bytes
  • One 1.8-V Inter-Integrated Circuit (I2C) Bus
  • 16 General-Purpose I/O (GPIO) Pins
  • System PLL and PLL Controller
  • DDR PLL, Dedicated to DDR2 Memory Controller
  • Advanced Event Triggering (AET) Compatible
  • Trace-Enabled Device
  • Supports IP Security
  • IEEE-1149.1 and IEEE-1149.6 (JTAG™) Boundary-Scan-Compatible
  • 688-Pin Ball Grid Array (BGA) Package (CMH or GMH Suffix), 0.8-mm Ball Pitch
  • 0.065-µm/7-Level Cu Metal Process (CMOS)
  • 3.3-V, 1.8-V, 1.1-V I/Os, 1.1-V and 1.2-V Internal

All trademarks are the property of their respective owners.

The TMS320C64x+™ DSPs (including the TMS320C6457 device) are the highest-performance fixed-point DSP generation in the TMS320C6000™ DSP platform. The C6457 device is based on the third-generation high-performance, advanced VelociTI™ very-long-instruction-word (VLIW) architecture developed by Texas Instruments (TI), making these DSPs an excellent choice for applications including video and telecom infrastructure, imaging/medical, and wireless infrastructure (WI). The C64x+ devices are upward code-compatible from previous devices that are part of the C6000™ DSP platform.

Based on 65-nm process technology and with performance of up to 9600 million instructions per second (MIPS) [or 9600 16-bit MMACs per cycle] at a 1.2-GHz clock rate, the C6457 device offers cost-effective solutions to high-performance DSP programming challenges. The C6457 DSP possesses the operational flexibility of high-speed controllers and the numerical capability of array processors.

The C64x+ DSP core employs eight functional units, two register files, and two data paths. Like the earlier C6000 devices, two of these eight functional units are multipliers or .M units. Each C64x+ .M unit doubles the multiply throughput versus the C64x core by performing four 16-bit × 16-bit multiply-accumulates (MACs) every clock cycle. Thus, eight 16-bit × 16-bit MACs can be executed every cycle on the C64x+ core. At a 1.2-GHz clock rate, this means 9600 16-bit MMACs can occur every second. Moreover, each multiplier on the C64x+ core can compute one 32-bit × 32-bit MAC or four 8-bit × 8-bit MACs every clock cycle.

The C6457 device includes Serial RapidIO®. This high-bandwidth peripheral dramatically improves system performance and reduces system cost for applications that include multiple DSPs on a board, such as video and telecom infrastructures and medical/imaging.

The C6457 DSP integrates a large amount of on-chip memory organized as a two-level memory system. The level-1 (L1) program and data memories on the C6457 device are 32KB each. This memory can be configured as mapped RAM, cache, or some combination of the two. When configured as cache, L1 program (L1P) is a direct mapped cache whereas L1 data (L1D) is a two-way set associative cache. The level 2 (L2) memory is shared between program and data space and is 2048KB in size. L2 memory can also be configured as mapped RAM, cache, or some combination of the two. L2 is configurable up to 1MB of cache. The C64x+ Megamodule also has a 32-bit peripheral configuration (CFG) port, an internal DMA (IDMA) controller, a system component with reset/boot control, interrupt/exception control, a power-down control, and a free-running 32-bit timer for time stamp.

The peripheral set includes: an inter-integrated circuit bus module (I2C); two multichannel buffered serial ports (McBSPs); an 8-bit Universal Test and Operations PHY Interface for Asynchronous Transfer Mode (ATM) Slave [UTOPIA Slave] port; two 64-bit general-purpose timers (also configurable as four 32-bit timers); a user-configurable 16-bit or 32-bit host-port interface (HPI16/HPI32); a 16-pin general-purpose input/output port (GPIO) with programmable interrupt/event generation modes; an 10/100/1000 Ethernet media access controller (EMAC), which provides an efficient interface between the C6457 DSP core processor and the network; a management data input/output (MDIO) module (also part of the EMAC) that continuously polls all 32 MDIO addresses in order to enumerate all PHY devices in the system; a glueless external memory interface (64-bit EMIFA), which is capable of interfacing to synchronous and asynchronous peripherals; and a 32-bit DDR2 SDRAM interface.

The C6457 device has three high-performance embedded coprocessors [one enhanced Viterbi Decoder Coprocessor (VCP2) and two enhanced Turbo Decoder Coprocessors (TCP2_A and TCP2_B)] that significantly speed up channel-decoding operations on-chip. The VCP2 operating at CPU clock ÷ 3 can decode more than 694 7.95-Kbps adaptive multi-rate (AMR) [K = 9, R = 1/3] voice channels. The VCP2 supports constraint lengths K = 5, 6, 7, 8, and 9, rates R = 3/4, 1/2, 1/3, 1/4, and 1/5, and flexible polynomials, while generating hard decisions or soft decisions. Each TCP2 operating at CPU clock ÷ 3 can decode up to fifty 384-Kbps or eight 2-Mbps turbo encoded channels (assuming 6 iterations). The TCP2 implements the max*log-map algorithm and is designed to support all polynomials and rates required by Third-Generation Partnership Projects (3GPP and 3GPP2), with fully programmable frame length and turbo interleaver. Decoding parameters such as the number of iterations and stopping criteria are also programmable. Communications between the VCP2/TCP2s and the CPU are carried out through the EDMA3 controller.

The C6457 device has a complete set of development tools, which includes: a new C compiler, an assembly optimizer to simplify programming and scheduling, and a Windows® debugger interface for visibility into source code execution.

The TMS320C64x+™ DSPs (including the TMS320C6457 device) are the highest-performance fixed-point DSP generation in the TMS320C6000™ DSP platform. The C6457 device is based on the third-generation high-performance, advanced VelociTI™ very-long-instruction-word (VLIW) architecture developed by Texas Instruments (TI), making these DSPs an excellent choice for applications including video and telecom infrastructure, imaging/medical, and wireless infrastructure (WI). The C64x+ devices are upward code-compatible from previous devices that are part of the C6000™ DSP platform.

Based on 65-nm process technology and with performance of up to 9600 million instructions per second (MIPS) [or 9600 16-bit MMACs per cycle] at a 1.2-GHz clock rate, the C6457 device offers cost-effective solutions to high-performance DSP programming challenges. The C6457 DSP possesses the operational flexibility of high-speed controllers and the numerical capability of array processors.

The C64x+ DSP core employs eight functional units, two register files, and two data paths. Like the earlier C6000 devices, two of these eight functional units are multipliers or .M units. Each C64x+ .M unit doubles the multiply throughput versus the C64x core by performing four 16-bit × 16-bit multiply-accumulates (MACs) every clock cycle. Thus, eight 16-bit × 16-bit MACs can be executed every cycle on the C64x+ core. At a 1.2-GHz clock rate, this means 9600 16-bit MMACs can occur every second. Moreover, each multiplier on the C64x+ core can compute one 32-bit × 32-bit MAC or four 8-bit × 8-bit MACs every clock cycle.

The C6457 device includes Serial RapidIO®. This high-bandwidth peripheral dramatically improves system performance and reduces system cost for applications that include multiple DSPs on a board, such as video and telecom infrastructures and medical/imaging.

The C6457 DSP integrates a large amount of on-chip memory organized as a two-level memory system. The level-1 (L1) program and data memories on the C6457 device are 32KB each. This memory can be configured as mapped RAM, cache, or some combination of the two. When configured as cache, L1 program (L1P) is a direct mapped cache whereas L1 data (L1D) is a two-way set associative cache. The level 2 (L2) memory is shared between program and data space and is 2048KB in size. L2 memory can also be configured as mapped RAM, cache, or some combination of the two. L2 is configurable up to 1MB of cache. The C64x+ Megamodule also has a 32-bit peripheral configuration (CFG) port, an internal DMA (IDMA) controller, a system component with reset/boot control, interrupt/exception control, a power-down control, and a free-running 32-bit timer for time stamp.

The peripheral set includes: an inter-integrated circuit bus module (I2C); two multichannel buffered serial ports (McBSPs); an 8-bit Universal Test and Operations PHY Interface for Asynchronous Transfer Mode (ATM) Slave [UTOPIA Slave] port; two 64-bit general-purpose timers (also configurable as four 32-bit timers); a user-configurable 16-bit or 32-bit host-port interface (HPI16/HPI32); a 16-pin general-purpose input/output port (GPIO) with programmable interrupt/event generation modes; an 10/100/1000 Ethernet media access controller (EMAC), which provides an efficient interface between the C6457 DSP core processor and the network; a management data input/output (MDIO) module (also part of the EMAC) that continuously polls all 32 MDIO addresses in order to enumerate all PHY devices in the system; a glueless external memory interface (64-bit EMIFA), which is capable of interfacing to synchronous and asynchronous peripherals; and a 32-bit DDR2 SDRAM interface.

The C6457 device has three high-performance embedded coprocessors [one enhanced Viterbi Decoder Coprocessor (VCP2) and two enhanced Turbo Decoder Coprocessors (TCP2_A and TCP2_B)] that significantly speed up channel-decoding operations on-chip. The VCP2 operating at CPU clock ÷ 3 can decode more than 694 7.95-Kbps adaptive multi-rate (AMR) [K = 9, R = 1/3] voice channels. The VCP2 supports constraint lengths K = 5, 6, 7, 8, and 9, rates R = 3/4, 1/2, 1/3, 1/4, and 1/5, and flexible polynomials, while generating hard decisions or soft decisions. Each TCP2 operating at CPU clock ÷ 3 can decode up to fifty 384-Kbps or eight 2-Mbps turbo encoded channels (assuming 6 iterations). The TCP2 implements the max*log-map algorithm and is designed to support all polynomials and rates required by Third-Generation Partnership Projects (3GPP and 3GPP2), with fully programmable frame length and turbo interleaver. Decoding parameters such as the number of iterations and stopping criteria are also programmable. Communications between the VCP2/TCP2s and the CPU are carried out through the EDMA3 controller.

The C6457 device has a complete set of development tools, which includes: a new C compiler, an assembly optimizer to simplify programming and scheduling, and a Windows® debugger interface for visibility into source code execution.

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顶层文档 类型 标题 格式选项 下载最新的英语版本 日期
* 数据表 TMS320C6457 Communications Infrastructure Digital Signal Processor 数据表 (Rev. B) 2010-7-9
* 勘误表 TMS320C6457 DSP Silicon Errata (Silicon Revisions 1.0, 1.1, 1.2, 1.3 and 1.4) (Rev. A) 2010-1-22
应用手册 如何将 CCS 3.x 工程迁移至最新的 Code Composer Studio™ (CCS) (Rev. A) 英语版 (Rev.A) PDF | HTML 2021-5-19
用户指南 SYS/BIOS (TI-RTOS Kernel) User's Guide (Rev. V) 2020-6-1
应用手册 Using DSPLIB FFT Implementation for Real Input and Without Data Scaling PDF | HTML 2019-6-11
应用手册 TMS320TCI6484 and TMS320C6457 SERDES Implementation Guidelines (Rev. B) PDF | HTML 2019-4-30
应用手册 Error Detection and Correction Mechanism of TMS320C64x+/C674x (Rev. A) 2013-7-19
用户指南 TMS320C6457 DSP EMAC / MDIO User's Guide (Rev. A) 2012-5-2
应用手册 Introduction to TMS320C6000 DSP Optimization 2011-10-6
用户指南 TMS320C6457 DSP DDR2 Memory Controller User's Guide (Rev. D) 2011-6-22
用户指南 Bootloader User's Guide for the TMS320C645x/C647x DSP (Rev. G) 2011-6-3
应用手册 TMS320C6457 Power Consumption Application Report (Rev. A) 2011-3-25
应用手册 Tuning VCP2 and TCP2 Bit Error Rate Performance 2011-2-11
用户指南 TMS320C6457 DSP Serial RapidIO (SRIO) User's Guide (Rev. D) 2011-2-3
用户指南 TMS320C64x+ DSP Megamodule Reference Guide (Rev. K) 2010-8-3
用户指南 TMS320C64x/C64x+ DSP CPU and Instruction Set Reference Guide (Rev. J) 2010-7-30
用户指南 TMS320C6457 DSP Host Port Interface (HPI) User's Guide (Rev. A) 2010-7-30
用户指南 TMS320C6457 DSP External Memory Interface (EMIF) User's Guide (Rev. B) 2010-7-30
用户指南 TMS320C6457 DSP Multichannel Buffered Serial Port (McBSP) User's Guide (Rev. A) 2010-5-18
应用手册 TMS320C6457/TMS320TCI6484/TMS320TCI6487/88 DDR2 Implementation Guidelines (Rev. D) 2010-1-28
用户指南 TMS320C6457 DSP Viterbi-Decoder Coprocessor 2 Reference (VCP2) Guide (Rev. A) 2009-12-8
用户指南 TMS320C6457 DSP Inter-Integrated Circuit (I2C) Module User's Guide (Rev. A) 2009-10-28
应用手册 TMS320TCI6484 and TMS320C6457 DSPs Hardware Design Guide (Rev. B) 2009-10-8
用户指南 TMS320C6457 DSP Universal Test & Operations PHY Interface for ATM 2 (UTOPIA2) UG 2009-3-11
用户指南 TMS320C6457 DSP General-Purpose Input/Output (GPIO) User's Guide 2009-3-11
用户指南 TMS320C6457 DSP Power/Sleep Controller (PSC) User's Guide 2009-3-11
用户指南 TMS320C6457 DSP 64-Bit Timer User's Guide 2009-3-11
用户指南 TMS320C6457 DSP Enhanced (EDMA3) Controller User's Guide 2009-3-11
用户指南 TMS320C6457 DSP Turbo-Decoder Coprocessor 2 Reference Guide 2009-3-11
用户指南 TMS320C6457 DSP Software-Programmable Phase-Locked Loop (PLL) Controller UG 2008-3-11
应用手册 Migrating from TMS320C64x to TMS320C64x+ (Rev. A) 2005-10-20
用户指南 High-Speed DSP Systems Design Reference Guide 2005-5-20

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调试探针

TMDSEMU200-U — XDS200 USB 调试探针

XDS200 是用于调试 TI 嵌入式器件的调试探针(仿真器)。对于大多数器件,建议使用较新、成本较低的 XDS110 (www.ti.com/tool/TMDSEMU110-U)。XDS200 在单个仓体中支持更广泛的标准(IEEE1149.1、IEEE1149.7、SWD)。所有 XDS 调试探针在所有具有嵌入式跟踪缓冲器 (ETB) 的 Arm® 和 DSP 处理器中均支持内核和系统跟踪。

XDS200 通过 TI 20 引脚连接器(带有适用于 TI 14 引脚、Arm Cortex® 10 引脚和 Arm 20 引脚的多个适配器)连接到目标板,并通过 USB2.0 高速 (...)

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调试探针

TMDSEMU560V2STM-U — XDS560™ 软件 v2 系统跟踪 USB 调试探针

XDS560v2 是 XDS560™ 系列调试探针中性能最高的一款,同时支持传统 JTAG 标准 (IEEE1149.1) 和 cJTAG (IEEE1149.7)。  请注意,它不支持串行线调试 (SWD)。

对于带有嵌入式缓冲跟踪器 (ETB) 的所有 ARM 和 DSP 处理器,所有 XDS 调试探针均支持核心和系统跟踪。  对于引脚上的跟踪,则需要使用 XDS560v2 PRO TRACE

XDS560v2 通过 MIPI HSPT 60 引脚连接器(带有多个用于 TI 14 引脚、TI 20 引脚和 ARM 20 引脚的适配器)连接到目标板,并通过 USB2.0 高速 (...)

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调试探针

TMDSEMU560V2STM-UE — Spectrum Digital XDS560v2 系统跟踪 USB 和以太网

XDS560v2 System Trace 是 XDS560v2 系列高性能 TI 处理器调试探针(仿真器)的第一种型号。XDS560v2 是 XDS 系列调试探针中性能最高的一款,同时支持传统 JTAG 标准 (IEEE1149.1) 和 cJTAG (IEEE1149.7)。

XDS560v2 System Trace 在其巨大的外部存储器缓冲区中加入了系统引脚跟踪。这种外部存储器缓冲区适用于指定的 TI 器件,通过捕获相关器件级信息,获得准确的总线性能活动和吞吐量,并对内核和外设进行电源管理。此外,对于带有嵌入式缓冲跟踪器 (ETB) 的所有 ARM 和 DSP 处理器,所有 XDS (...)

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调试探针

LB-3P-TRACE32-DSP — 适用于数字信号处理器 (DSP) 的 Lauterbach TRACE32 调试和跟踪系统

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 (...)

来源:Lauterbach GmbH
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软件开发套件 (SDK)

BIOSMCSDK-C64XPLUS — 用于 C647x 和 C645x 的 SYS/BIOS MCSDK

我们的多核软件开发套件 (MCSDK) 提供高度优化的平台专用基础驱动程序包,可在 TI C64x+™ 和 C66x 多核器件(包括 TMS320C667x、TMS320C647x 及 TMS320C645x 处理器)上进行开发。MCSDK 使开发人员能够对评估平台的硬件和软件功能进行评估,以快速开发多核应用。

 

MCSDK 可使应用在一个平台上使用 SYS/BIOS 和/或 Linux。独立的内核可作为控制面板指定至操作 Linux 应用,其他内核可同时指定高性能信号处理操作。此异构配置可提供灵活性,可供软件开发人员在 TI 的多核 DSP 上实施全套解决方案。

其它信息: 

TI (...)

支持的产品和硬件
软件开发套件 (SDK)

BIOSMCSDK-C66X — 用于 C66x 的 SYS/BIOS MCSDK

我们的多核软件开发套件 (MCSDK) 提供高度优化的平台专用基础驱动程序包,可在 TI C64x+™ 和 C66x 多核器件(包括 TMS320C667x、TMS320C647x 及 TMS320C645x 处理器)上进行开发。MCSDK 使开发人员能够对评估平台的硬件和软件功能进行评估,以快速开发多核应用。

 

MCSDK 可使应用在一个平台上使用 SYS/BIOS 和/或 Linux。独立的内核可作为控制面板指定至操作 Linux 应用,其他内核可同时指定高性能信号处理操作。此异构配置可提供灵活性,可供软件开发人员在 TI 的多核 DSP 上实施全套解决方案。

其它信息: 

TI (...)

支持的产品和硬件
软件开发套件 (SDK)

LINUXMCSDK — 用于 C66x、C647x 和 C645x 的 Linux MCSDK

我们的多核软件开发套件 (MCSDK) 提供高度优化的平台专用基础驱动程序包,可在 TI C64x+™ 和 C66x 多核器件(包括 TMS320C667x、TMS320C647x 及 TMS320C645x 处理器)上进行开发。MCSDK 使开发人员能够对评估平台的硬件和软件功能进行评估,以快速开发多核应用。

 

MCSDK 可使应用在一个平台上使用 SYS/BIOS 和/或 Linux。独立的内核可作为控制面板指定至操作 Linux 应用,其他内核可同时指定高性能信号处理操作。此异构配置可提供灵活性,可供软件开发人员在 TI 的多核 DSP 上实施全套解决方案。

其它信息: 

TI (...)

支持的产品和硬件
软件开发套件 (SDK)

MEDIMGSTK-C66X — 用于医疗成像的 TI 嵌入式处理器软件工具套件 (STK-MED) - 用于基于 C66x 和 C64x+ 的处理器

用于医疗诊断超声波系统的 TI 嵌入式处理器软件工具套件 (STK-MED) 是针对 TI C64x+ 构架进行优化的多种超声波算法的集合。这些算法展示了超声波处理功能如何利用 C64x+ 构架来实现高性能和低功耗。该 STK-MED 的目标是通过提供优化的常用处理块实施来加快客户开发医疗诊断超声波系统的速度。您可以轻松扩展或修改包含在 STK-MED 中的源码,以便开发定制的差异化模块。

用于医疗成像的 TMS320C6455 DSP 入门套件 (DSK-MI) 是使用 STK-MED 进行评估和开发的理想平台。该 DSK-MI 是低成本开发平台,旨在加快基于 TI TMS320C64x+™ (...)

支持的产品和硬件
IDE、配置、编译器或调试器

CCSTUDIO — Code Composer Studio™ integrated development environment (IDE)

CCStudio™ IDE is part of TI's extensive CCStudio™ development ecosystem and is an integrated development environment for TI's microcontrollers, processors, wireless connectivity devices, and radar sensors. CCStudio IDE is available as desktop or cloud-based applications. The cloud version (...)

支持的产品和硬件
驱动程序或库

AEC-AER — 用于 TI C64x+、C674x、C55x 和 Cortex(tm)A8 处理器的回声抵消/消除 - 即刻可得

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 (...)

支持的产品和硬件
驱动程序或库

C64X-DSPLIB — Download TMS320C64x DSP Library

TMS320C6000 数字信号处理器库 (DSPLIB) 是一款平台优化型 DSP 函数库,适用于 C 编程器。它包括 C 语言可调用的通用信号处理例程,通常用于计算密集型的实时应用中。使用这些例程可实现比等效标准 ANSI C 语言代码更高的性能。通过使用源代码提供即用型 DSP 函数,DSPLIB 可以显著缩短应用开发时间。

请参阅基准测试:DSP 内核基准测试

支持的产品和硬件
驱动程序或库

C64XPLUS-IQMATHSRC — C64x+ IQMath 库 - 源代码

Texas Instruments TMS320C64x+ IQmath 库是一个高度优化的高精度数学函数集合,可以使 C 语言编程人员将浮点算法无缝移植到 TMS320C64x 器件上的定点代码中。这些例程通常用于计算密集型实时应用,最佳执行速度和高精度是这些应用的关键。通过使用这些例程,您可以获得比使用标准 ANSI C 语言编写的等效代码更快的执行速度。另外,通过提供即用型高精度函数,TI DSPLIB 库可以显著缩短 DSP 应用程序的开发时间。IQmath 库版本还包括使用 IQmath 内核的复数 FFT 和 FIR 内核的实现示例。

源代码 - 通过内联 IQMath (...)

支持的产品和硬件
驱动程序或库

C67X-DSPLIB — Download TMS320C67x DSP Library

TMS320C6000 数字信号处理器库 (DSPLIB) 是一款平台优化型 DSP 函数库,适用于 C 编程器。它包括 C 语言可调用的通用信号处理例程,通常用于计算密集型的实时应用中。使用这些例程可实现比等效标准 ANSI C 语言代码更高的性能。通过使用源代码提供即用型 DSP 函数,DSPLIB 可以显著缩短应用开发时间。

请参阅基准测试:DSP 内核基准测试

支持的产品和硬件
驱动程序或库

FAXLIB — 用于 C66x、C64x+ 和 C55x 处理器的传真库 (FAXLIB)

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 (...)

支持的产品和硬件
驱动程序或库

SPRC122 — C62x/C64x Fast Run-Time Support Library

C62x/64x FastRTS Library 是优化型浮点函数库,适用于使用 TMS320C62x 或 TMS320C64x 器件的 C 语言编程器。这些例程通常用于计算密集型实时应用,最佳执行速度是这些应用的关键。通过将当前的浮点库 (RTS) 函数替换为 FastRTS Library,可以在不重写现有代码的情况下大大加快执行速度。

该版本还包括 FastRTS Library 中可用函数子集的 C 语言实施。C 代码可让用户内联这些函数并获得更高性能。

特性

单精度和双精度数学函数单精度和双精度转换函数
浮点加法将浮点值转换为 32 位带符号整数值
将 32 位带符号整数值转换为浮点值
(...)
支持的产品和硬件
驱动程序或库

SPRC264 — TMS320C5000/6000 图像库 (IMGLIB)

C5000/6000 图像处理库 (IMGLIB) 是一款经过优化的图像/视频处理函数库,适用于 C 语言程序员。其中包括计算量庞大的实时应用程序常用的可使用 C 语言调用的通用影像/视频处理例程。使用这些例程可实现比等效标准 ANSI C 语言代码更高的性能。通过使用源代码提供即用型 DSP 函数,IMGLIB 可以显著缩短应用开发时间。

请参阅基准测试:DSP 内核基准测试

支持的产品和硬件
驱动程序或库

SPRC924 — TMS320C6457 Chip Support Library

此版本的 TMS320C6457 CSL 包含适用于 C6457 模块的外设编程(功能和寄存器级)API。该 API 集提供了外设抽象,可供更高的软件层使用。

支持的产品和硬件
驱动程序或库

VOLIB — 用于 C66x、C64x+ 和 C55x 处理器的音频库 (VoLIB)

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 (...)

支持的产品和硬件
软件编解码器

C64XPLUSCODECSPCH — 用于 C64x+ 器件的语音编解码器

TI 编解码器免费提供,附带生产许可且现在可供下载。所有编解码器均经过生产环境测试,可轻松集成到视频和语音应用中。点击“获取软件”按钮(上方),获取经过测试的最新编解码器版本。该页面及每个安装程序中都包含有数据表和发布说明。

其他信息:

支持的产品和硬件
软件编解码器

C64XPLUSCODECSVID — C64x+ 视频编解码器 - 软件和文档

TI 编解码器免费提供,附带生产许可且现在可供下载。所有编解码器均经过生产环境测试,可轻松集成到视频和语音应用中。点击“获取软件”按钮(上方),获取经过测试的最新编解码器版本。该页面及每个安装程序中都包含有数据表和发布说明。

其他信息:

支持的产品和硬件
软件编解码器

ADT-3P-DSPVOIPCODECS — 自适应数字技术 DSP VOIP、语音和音频编解码器

Adaptive Digital 是音质增强算法的开发公司,提供可与 TI DSP 配合使用的一流声学回声消除软件。Adaptive Digital 在算法开发、实施、优化和配置调优方面具有丰富的经验。他们提供适用于语音技术、音质软件、回声消除、会议软件、语音压缩算法的解决方案和即用型解决方案。

如需了解有关 Adaptive Digital 的更多信息,请访问 https://www.adaptivedigital.com
支持的产品和硬件
仿真模型

C6457 CMH and GMH BSDL Model

SPRM381.ZIP (17 KB) - BSDL 模型
支持的产品和硬件
仿真模型

C6457 CMH IBIS Model (Rev. A)

SPRM360 (904 KB) - IBIS 模型
支持的产品和硬件
封装 引脚 CAD 符号、封装和 3D 模型
FCBGA (CMH) 688 Ultra Librarian

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