TMS320C6418

アクティブ

C64x 固定小数点 DSP - 600MHz、McBSP と 2 x PCI 搭載

製品詳細

CPU 32-/64-bit Operating system DSP/BIOS Rating Catalog Operating temperature range (°C) -40 to 105
CPU 32-/64-bit Operating system DSP/BIOS Rating Catalog Operating temperature range (°C) -40 to 105
OMFCBGA (GTS) 288 529 mm² (23 mm × 23 mm) OMFCBGA (ZTS) 288 529 mm² (23 mm × 23 mm)
  • High-Performance Fixed-Point Digital Signal Processor (TMS320C6418)
    • Commercial Temperature Device
      • 1.67-ns Instruction Cycle Time
      • 600-MHz Clock Rate
      • 4800 MIPS
    • Extended Temperature Device
      • 2-ns Instruction Cycle Time
      • 500-MHz Clock Rate
      • 4000 MIPS
    • Eight 32-Bit Instructions/Cycle
    • Fully Software-Compatible With C64x™
  • VelociTI.2™ Extensions to VelociTI™ Advanced Very-Long-Instruction-Word (VLIW) TMS320C64x™ DSP Core
    • Eight Highly Independent Functional Units With VelociTI.2™ Extensions:
      • 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
  • Instruction Set Features
    • Byte-Addressable (8-/16-/32-/64-Bit Data)
    • 8-Bit Overflow Protection
    • Bit-Field Extract, Set, Clear
    • Normalization, Saturation, Bit-Counting
    • VelociTI.2™ Increased Orthogonality
  • VelociTI.2™ Extensions to VelociTI™ Advanced Very-Long-Instruction-Word (VLIW) TMS320C64x™ DSP Core
  • Viterbi Decoder Coprocessor (VCP)
    • Supports Over 500 7.95-Kbps AMR
    • Programmable Code Parameters
  • L1/L2 Memory Architecture
    • 128K-Bit (16K-Byte) L1P Program Cache (Direct Mapped)
    • 128K-Bit (16K-Byte) L1D Data Cache (2-Way Set-Associative)
    • 4M-Bit (512K-Byte) L2 Unified Mapped RAM/Cache (Flexible RAM/Cache Allocation)
  • Endianess: Little Endian, Big Endian
  • 32-Bit External Memory Interface (EMIF)
    • Glueless Interface to Asynchronous Memories (SRAM and EPROM) and Synchronous Memories (SDRAM, SBSRAM, ZBT SRAM, and FIFO)
    • 512M-Byte Total Addressable External Memory Space
  • Enhanced Direct-Memory-Access (EDMA) Controller (64 Independent Channels)
  • Host-Port Interface (HPI) [32-/16-Bit]
  • Two Multichannel Audio Serial Ports (McASPs) - with Six Serial Data Pins each
  • Two Inter-Integrated Circuit (I2C) Buses
    • Additional GPIO Capability
  • Two Multichannel Buffered Serial Ports
  • Three 32-Bit General-Purpose Timers
  • Sixteen General-Purpose I/O (GPIO) Pins
  • Flexible PLL Clock Generator
  • On-Chip Fundamental Oscillator
  • IEEE-1149.1 (JTAG) Boundary-Scan-Compatible
  • 288-Pin Ball Grid Array (BGA) Package (GTS and ZTS Suffixes), 1.0-mm Ball Pitch
  • 0.13-µm/6-Level Cu Metal Process (CMOS)
  • 3.3-V I/Os, 1.4-V Internal (-600)
  • 3.3-V I/Os, 1.2-V Internal (A-500)

VelociTI.2, VelociTI, and TMS320C64x are trademarks of Texas Instruments.
All trademarks are the property of their respective owners.
IEEE Standard 1149.1-1990 Standard-Test-Access Port and Boundary Scan Architecture.
TMS320C6000, and C6000 are trademarks of Texas Instruments.

  • High-Performance Fixed-Point Digital Signal Processor (TMS320C6418)
    • Commercial Temperature Device
      • 1.67-ns Instruction Cycle Time
      • 600-MHz Clock Rate
      • 4800 MIPS
    • Extended Temperature Device
      • 2-ns Instruction Cycle Time
      • 500-MHz Clock Rate
      • 4000 MIPS
    • Eight 32-Bit Instructions/Cycle
    • Fully Software-Compatible With C64x™
  • VelociTI.2™ Extensions to VelociTI™ Advanced Very-Long-Instruction-Word (VLIW) TMS320C64x™ DSP Core
    • Eight Highly Independent Functional Units With VelociTI.2™ Extensions:
      • 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
  • Instruction Set Features
    • Byte-Addressable (8-/16-/32-/64-Bit Data)
    • 8-Bit Overflow Protection
    • Bit-Field Extract, Set, Clear
    • Normalization, Saturation, Bit-Counting
    • VelociTI.2™ Increased Orthogonality
  • VelociTI.2™ Extensions to VelociTI™ Advanced Very-Long-Instruction-Word (VLIW) TMS320C64x™ DSP Core
  • Viterbi Decoder Coprocessor (VCP)
    • Supports Over 500 7.95-Kbps AMR
    • Programmable Code Parameters
  • L1/L2 Memory Architecture
    • 128K-Bit (16K-Byte) L1P Program Cache (Direct Mapped)
    • 128K-Bit (16K-Byte) L1D Data Cache (2-Way Set-Associative)
    • 4M-Bit (512K-Byte) L2 Unified Mapped RAM/Cache (Flexible RAM/Cache Allocation)
  • Endianess: Little Endian, Big Endian
  • 32-Bit External Memory Interface (EMIF)
    • Glueless Interface to Asynchronous Memories (SRAM and EPROM) and Synchronous Memories (SDRAM, SBSRAM, ZBT SRAM, and FIFO)
    • 512M-Byte Total Addressable External Memory Space
  • Enhanced Direct-Memory-Access (EDMA) Controller (64 Independent Channels)
  • Host-Port Interface (HPI) [32-/16-Bit]
  • Two Multichannel Audio Serial Ports (McASPs) - with Six Serial Data Pins each
  • Two Inter-Integrated Circuit (I2C) Buses
    • Additional GPIO Capability
  • Two Multichannel Buffered Serial Ports
  • Three 32-Bit General-Purpose Timers
  • Sixteen General-Purpose I/O (GPIO) Pins
  • Flexible PLL Clock Generator
  • On-Chip Fundamental Oscillator
  • IEEE-1149.1 (JTAG) Boundary-Scan-Compatible
  • 288-Pin Ball Grid Array (BGA) Package (GTS and ZTS Suffixes), 1.0-mm Ball Pitch
  • 0.13-µm/6-Level Cu Metal Process (CMOS)
  • 3.3-V I/Os, 1.4-V Internal (-600)
  • 3.3-V I/Os, 1.2-V Internal (A-500)

VelociTI.2, VelociTI, and TMS320C64x are trademarks of Texas Instruments.
All trademarks are the property of their respective owners.
IEEE Standard 1149.1-1990 Standard-Test-Access Port and Boundary Scan Architecture.
TMS320C6000, and C6000 are trademarks of Texas Instruments.

The TMS320C64x™ DSPs (including the TMS320C6418 device) are the highest-performance fixed-point DSP generation in the TMS320C6000™ DSP platform. The TMS320C6418 (C6418) device is based on the second-generation high-performance, advanced VelociTI™ very-long-instruction-word (VLIW) architecture (VelociTI.2™) developed by Texas Instruments (TI). The high-performance, lower-cost C6418 DSP enables customers to reduce system costs for telecom, software radio, Digital Terrestrial Television Broadcasting (DTTB), and digital Broadcast Satellite/Communication Satellite (BS/CS) applications. The C64x™ is a code-compatible member of the C6000™ DSP platform.

With performance of up to 4800 million instructions per second (MIPS) at a clock rate of 600 MHz, the C6418 device offers cost-effective solutions to high-performance DSP programming challenges. The C6418 DSP 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)—with VelociTI.2™ extensions. The VelociTI.2™ extensions in the eight functional units include new instructions to accelerate the performance in video and imaging applications and extend the parallelism of the VelociTI™ architecture. The C6418 can produce four 16-bit multiply-accumulates (MACs) per cycle for a total of 2400 million MACs per second (MMACS), or eight 8-bit MACs per cycle for a total of 4800 MMACS. The C6418 DSP also has application-specific hardware logic, on-chip memory, and additional on-chip peripherals similar to the other C6000™ DSP platform devices.

The C6418 device has a high-performance embedded coprocessor [Viterbi Decoder Coprocessor (VCP)] that significantly speed up channel-decoding operations on-chip. The VCP operating at CPU clock divided-by-4 can decode over 500 7.95-Kbps adaptive multi-rate (AMR) [K = 9, R = 1/3] voice channels. The VCP supports constraint lengths K = 5, 6, 7, 8, and 9, rates R = 1/2, 1/3, and 1/4, and flexible polynomials, while generating hard decisions or soft decisions. Communications between the VCP and the CPU are carried out through the EDMA controller.

The C6418 uses a two-level cache-based architecture and has a powerful and diverse set of peripherals. The Level 1 program cache (L1P) is a 128-Kbit direct mapped cache and the Level 1 data cache (L1D) is a 128-Kbit 2-way set-associative cache. The Level 2 memory/cache (L2) consists of an 4-Mbit memory space that is shared between program and data space. L2 memory can be configured as mapped memory, cache (up to 256K bytes), or combinations of the two. The peripheral set includes: two multichannel buffered audio serial ports (McASPs); two inter-integrated circuit bus modules (I2Cs) ; two multichannel buffered serial ports (McBSPs); three 32-bit general-purpose timers; a user-configurable 16-bit or 32-bit host-port interface (HPI16/HPI32); a 16-pin general-purpose input/output port (GP0) with programmable interrupt/event generation modes; and a 32-bit glueless external memory interface (EMIFA), which is capable of interfacing to synchronous and asynchronous memories and peripherals.

Each McASP port supports one transmit and one receive clock zone, with six serial data pins which can be individually allocated to any of the two zones. The serial port supports time-division multiplexing on each pin from 2 to 32 time slots. The C6418 has sufficient bandwidth to support all six serial data pins transmitting a 192-kHz stereo signal. Serial data in each zone may be transmitted and received on multiple serial data pins simultaneously and formatted in a multitude of variations on the Philips Inter-IC Sound (I2S) format.

In addition, the McASP transmitter may be programmed to output multiple S/PDIF, IEC60958, AES-3, CP-430 encoded data channels simultaneously, with a single RAM containing the full implementation of user data and channel status fields.

McASP also provides extensive error-checking and recovery features, such as the bad clock detection circuit for each high-frequency master clock which verifies that the master clock is within a programmed frequency range.

The I2C ports on the TMS320C6418 allows the DSP to easily control peripheral devices and communicate with a host processor. In addition, the standard multichannel buffered serial port (McBSP) may be used to communicate with serial peripheral interface (SPI) mode peripheral devices.

The C6418 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 TMS320C6418 device) are the highest-performance fixed-point DSP generation in the TMS320C6000™ DSP platform. The TMS320C6418 (C6418) device is based on the second-generation high-performance, advanced VelociTI™ very-long-instruction-word (VLIW) architecture (VelociTI.2™) developed by Texas Instruments (TI). The high-performance, lower-cost C6418 DSP enables customers to reduce system costs for telecom, software radio, Digital Terrestrial Television Broadcasting (DTTB), and digital Broadcast Satellite/Communication Satellite (BS/CS) applications. The C64x™ is a code-compatible member of the C6000™ DSP platform.

With performance of up to 4800 million instructions per second (MIPS) at a clock rate of 600 MHz, the C6418 device offers cost-effective solutions to high-performance DSP programming challenges. The C6418 DSP 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)—with VelociTI.2™ extensions. The VelociTI.2™ extensions in the eight functional units include new instructions to accelerate the performance in video and imaging applications and extend the parallelism of the VelociTI™ architecture. The C6418 can produce four 16-bit multiply-accumulates (MACs) per cycle for a total of 2400 million MACs per second (MMACS), or eight 8-bit MACs per cycle for a total of 4800 MMACS. The C6418 DSP also has application-specific hardware logic, on-chip memory, and additional on-chip peripherals similar to the other C6000™ DSP platform devices.

The C6418 device has a high-performance embedded coprocessor [Viterbi Decoder Coprocessor (VCP)] that significantly speed up channel-decoding operations on-chip. The VCP operating at CPU clock divided-by-4 can decode over 500 7.95-Kbps adaptive multi-rate (AMR) [K = 9, R = 1/3] voice channels. The VCP supports constraint lengths K = 5, 6, 7, 8, and 9, rates R = 1/2, 1/3, and 1/4, and flexible polynomials, while generating hard decisions or soft decisions. Communications between the VCP and the CPU are carried out through the EDMA controller.

The C6418 uses a two-level cache-based architecture and has a powerful and diverse set of peripherals. The Level 1 program cache (L1P) is a 128-Kbit direct mapped cache and the Level 1 data cache (L1D) is a 128-Kbit 2-way set-associative cache. The Level 2 memory/cache (L2) consists of an 4-Mbit memory space that is shared between program and data space. L2 memory can be configured as mapped memory, cache (up to 256K bytes), or combinations of the two. The peripheral set includes: two multichannel buffered audio serial ports (McASPs); two inter-integrated circuit bus modules (I2Cs) ; two multichannel buffered serial ports (McBSPs); three 32-bit general-purpose timers; a user-configurable 16-bit or 32-bit host-port interface (HPI16/HPI32); a 16-pin general-purpose input/output port (GP0) with programmable interrupt/event generation modes; and a 32-bit glueless external memory interface (EMIFA), which is capable of interfacing to synchronous and asynchronous memories and peripherals.

Each McASP port supports one transmit and one receive clock zone, with six serial data pins which can be individually allocated to any of the two zones. The serial port supports time-division multiplexing on each pin from 2 to 32 time slots. The C6418 has sufficient bandwidth to support all six serial data pins transmitting a 192-kHz stereo signal. Serial data in each zone may be transmitted and received on multiple serial data pins simultaneously and formatted in a multitude of variations on the Philips Inter-IC Sound (I2S) format.

In addition, the McASP transmitter may be programmed to output multiple S/PDIF, IEC60958, AES-3, CP-430 encoded data channels simultaneously, with a single RAM containing the full implementation of user data and channel status fields.

McASP also provides extensive error-checking and recovery features, such as the bad clock detection circuit for each high-frequency master clock which verifies that the master clock is within a programmed frequency range.

The I2C ports on the TMS320C6418 allows the DSP to easily control peripheral devices and communicate with a host processor. In addition, the standard multichannel buffered serial port (McBSP) may be used to communicate with serial peripheral interface (SPI) mode peripheral devices.

The C6418 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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技術資料

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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 TMS320C6418 Fixed-Point Digital Signal Processor データシート (Rev. D) 2006/01/17
* エラッタ TMS320C641x、TMS320DM64x、TMS320DRA342ZNZ、ZDK パッケージ生産中止および変換品 PDF | HTML PDF | HTML 2026/07/23
* エラッタ TMS320C6418 Digital Signal Processor Silicon Errata (Rev. A) 2004/11/24
アプリケーション・ノート How to Migrate CCS 3.x Projects to the Latest CCS (Rev. A) PDF | HTML 2021/05/19
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 TMS320C64x/C64x+ DSP CPU and Instruction Set Reference Guide (Rev. J) 2010/07/30
ユーザー・ガイド TMS320C6000 DSP Peripherals Overview Reference Guide (Rev. Q) 2009/07/02
ユーザー・ガイド TMS320C6000 DSP Multi-channel Audio Serial Port (McASP) Reference Guide (Rev. J) 2008/11/20
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
アプリケーション・ノート TMS320DM64xx、TMS320DM64x、および TMS320C6000 デバイスにおける熱考察 英語版 2008/05/05
アプリケーション・ノート TMS320C6000 EMIF-to-External SDRAM Interface (Rev. E) 2007/09/04
ユーザー・ガイド TMS320C6000 DSP External Memory Interface (EMIF) Reference Guide (Rev. E) 2007/04/11
製品概要 TMS320C6000 DSP TCP/IP Stack Software (Rev. C) 2007/04/04
ユーザー・ガイド TMS320C6000 DSP Inter-Integrated Circuit (I2C) Module Reference Guide (Rev. D) 2007/03/26
ユーザー・ガイド TMS320C6000 DSP Multichannel Buffered Serial Port (McBSP) Reference Guide (Rev. G) 2006/12/14
ユーザー・ガイド TMS320C6000 DSP Enhanced Direct Memory Access (EDMA) Controller Reference Guide (Rev. C) 2006/11/15
アプリケーション・ノート C64x コアでの C言語による 64 ビット計算の実装方法 2006/11/06
アプリケーション・ノート IBISモデルを使用したタイミング解析 (Rev. A 翻訳版) 英語版 (Rev.A) 2006/11/06
ユーザー・ガイド TMS320C64x DSP Two-Level Internal Memory Reference Guide (Rev. C) 2006/02/28
ユーザー・ガイド TMS320C6000 DSP Host-Post Interface (HPI) Reference Guide (Rev. C) 2006/01/01
アプリケーション・ノート TMS320C6418 Hardware Designer's Resource Guide (Rev. A) 2005/10/25
アプリケーション・ノート Migrating from TMS320C64x to TMS320C64x+ (Rev. A) 2005/10/20
ユーザー・ガイド TMS320C6000 DSP Power-Down Logic and Modes Reference Guide (Rev. C) 2005/03/01
アプリケーション・ノート TMS320C6418 Power Consumption Summary (Rev. A) 2005/02/02
ユーザー・ガイド TMS320C6000 DSP 32-bit Timer Reference Guide (Rev. B) 2005/01/25
ユーザー・ガイド TMS320C64x DSP Viterbi-Decoder Coprocessor (VCP) Reference Guide (Rev. D) 2004/09/20
アプリケーション・ノート Use and Handling of Semiconductor Packages With ENIG Pad Finishes 2004/08/31
ユーザー・ガイド TMS320C6000 Chip Support Library API Reference Guide (Rev. J) 2004/08/13
ユーザー・ガイド TMS320C6410/13/18 DSP Inter-Integrated Circuit (I2C) Module Addendum to SPRU175 (Rev. A) 2004/08/13
アプリケーション・ノート TMS320C6000 Tools: Vector Table and Boot ROM Creation (Rev. D) 2004/04/26
アプリケーション・ノート TMS320C6000 Board Design: Considerations for Debug (Rev. C) 2004/04/21
ユーザー・ガイド TMS320C6000 DSP General-Purpose Input/Output (GPIO) Reference Guide (Rev. A) 2004/03/25
アプリケーション・ノート TMS320C6000 McBSP Initialization (Rev. C) 2004/03/08
アプリケーション・ノート TMS320C64x EDMA Performance Data 2004/03/05
アプリケーション・ノート TMS320C6000 EDMA IO Scheduling and Performance 2004/03/05
アプリケーション・ノート TMS320C64x EDMA Architecture 2004/03/03
アプリケーション・ノート TMS320C64x DSP Host Port Interface (HPI) Performance 2003/10/24
アプリケーション・ノート Using TMS320C6416 Coprocessors: Viterbi Coprocessor (VCP) (Rev. D) 2003/09/15
アプリケーション・ノート TMS320C6000 EMIF to TMS320C6000 Host Port Interface (Rev. B) 2003/09/12
ユーザー・ガイド TMS320C6000 DSP Designing for JTAG Emulation Reference Guide 2003/07/31
アプリケーション・ノート TMS320C6000 McBSP Interface to an ST-BUS Device (Rev. B) 2002/06/04
アプリケーション・ノート TMS320C6000 Board Design for JTAG (Rev. C) 2002/04/02
アプリケーション・ノート TMS320C6000 EMIF to External Flash Memory (Rev. A) 2002/02/13
アプリケーション・ノート Cache Usage in High-Performance DSP Applications with the TMS320C64x 2001/12/13
アプリケーション・ノート Using a TMS320C6000 McBSP for Data Packing (Rev. A) 2001/10/31
アプリケーション・ノート TMS320C6000 Enhanced DMA: Example Applications (Rev. A) 2001/10/24
アプリケーション・ノート TMS320C6000 Host Port to MC68360 Interface (Rev. A) 2001/09/30
アプリケーション・ノート Using the TMS320C6000 McBSP as a High Speed Communication Port (Rev. A) 2001/08/31
アプリケーション・ノート TMS320C6000 Host Port to the i80960 Microprocessors Interface (Rev. A) 2001/08/31
アプリケーション・ノート TMS320C6000 EMIF to External Asynchronous SRAM Interface (Rev. A) 2001/08/31
アプリケーション・ノート TMS320C6000 McBSP to Voice Band Audio Processor (VBAP) Interface (Rev. A) 2001/07/23
アプリケーション・ノート TMS320C6000 McBSP: AC'97 Codec Interface (TLV320AIC27) (Rev. A) 2001/07/10
アプリケーション・ノート TMS320C6000 McBSP: Interface to SPI ROM (Rev. C) 2001/06/30
アプリケーション・ノート TMS320C6000 Host Port to MPC860 Interface (Rev. A) 2001/06/21
アプリケーション・ノート TMS320C6000 McBSP: IOM-2 Interface (Rev. A) 2001/05/21
アプリケーション・ノート Circular Buffering on TMS320C6000 (Rev. A) 2000/09/12
アプリケーション・ノート TMS320C6000 McBSP as a TDM Highway (Rev. A) 2000/09/11
アプリケーション・ノート TMS320C6000 Multichannel Communications System Interface 2000/02/03
アプリケーション・ノート TMS320C6000 u-Law and a-Law Companding with Software or the McBSP 2000/02/02
アプリケーション・ノート General Guide to Implement Logarithmic and Exponential Operations on Fixed-Point 2000/01/31
アプリケーション・ノート TMS320C6000 C Compiler: C Implementation of Intrinsics 1999/12/07
アプリケーション・ノート TMS320C6000 McBSP: I2S Interface 1999/09/08
アプリケーション・ノート TMS320C6000 HPI Boot Operation 1999/01/06

設計と開発

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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。

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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).

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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 (...)

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IDE (統合開発環境)、コンパイラ、またはデバッガ

CCSTUDIO — Code Composer Studio 統合開発環境(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 (...)

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ドライバまたはライブラリ

SPRC264 — TMS320C5000/6000 イメージ ライブラリ(IMGLIB)

C5000/6000 画像処理ライブラリ(IMGLIB)は、C言語プログラマ向けの最適化された画像/ビデオ処理関数ライブラリです。これは、計算負荷の高いリアルタイム アプリケーションで通常使用される、C言語から呼び出し可能な汎用の画像/動画処理ルーチンを含んでいます。これらのルーチンを使用することで、同等の標準ANSI C言語コードよりも高いパフォーマンスを実現できます。IMGLIBは、すぐに使えるDSP関数をソースコード付きで提供することで、アプリケーション開発期間を大幅に短縮できます。

ベンチマークを参照してください:各DSP コアのベンチマーク

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

SPRC265 — TMS320C6000 DSP ライブラリ(DSPLIB)

TMS320C6000 Digital Signal Processor Library (DSPLIB) は、Cプログラマー向けのプラットフォーム最適化DSP関数ライブラリです。これは、計算集約的なリアルタイム アプリケーションで一般的に使用される、C言語から呼び出し可能な汎用信号処理ルーチンを含んでいます。これらのルーチンを使用することで、同等の標準ANSI C言語コードよりも高いパフォーマンスを実現できます。DSPLIBは、すぐに使えるDSP関数をソースコード付きで提供することで、アプリケーション開発期間を大幅に短縮できます。

ベンチマークを参照してください:各DSP コアのベンチマーク

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 (...)

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ソフトウェア・コーデック

ADT-3P-DSPVOIPCODECS — Adaptive Digital Technologies 社の DSP VOIP、スピーチ / オーディオ・コーデック

Adaptive Digital is a developer of voice quality enhancement algorithms, and best-in-class acoustic echo cancellation software that work with TI DSPs. Adaptive Digital has extensive experience in the algorithm development, implementation, optimization and configuration tuning. They provide (...)
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シミュレーション・モデル

C6418 GTS BSDL Model (Rev. A)

SPRM163 (7 KB) - BSDL モデル
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シミュレーション・モデル

C6418 GTS IBIS Model

SPRM162.ZIP (96 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
OMFCBGA (GTS) 288 Ultra Librarian
OMFCBGA (ZTS) 288 Ultra Librarian

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