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CPU 32-/64-bit Operating system DSP/BIOS Rating Automotive, Catalog Operating temperature range (°C) -40 to 105
CPU 32-/64-bit Operating system DSP/BIOS Rating Automotive, Catalog Operating temperature range (°C) -40 to 105
HTQFP (RFP) 144 484 mm² (22 mm × 22 mm)
  • C672x: 32-/64-Bit 350-MHz Floating-Point DSPs
  • Upgrades to C67x+ CPU From C67x™ DSP Generation:
    • 2X CPU Registers [64 General-Purpose]
    • New Audio-Specific Instructions
    • Compatible With the C67x CPU
  • Enhanced Memory System
    • 256K-Byte Unified Program/Data RAM
    • 384K-Byte Unified Program/Data ROM
    • Single-Cycle Data Access From CPU
    • Large Program Cache (32K Byte) Supports RAM, ROM, and External Memory
  • External Memory Interface (EMIF) Supports
    • 133-MHz SDRAM (16- or 32-Bit)
    • Asynchronous NOR Flash, SRAM (8-,16-, or 32-Bit)
    • NAND Flash (8- or 16-Bit)
  • Enhanced I/O System
    • High-Performance Crossbar Switch
    • Dedicated McASP DMA Bus
    • Deterministic I/O Performance
  • dMAX (Dual Data Movement Accelerator) Supports:
    • 16 Independent Channels
    • Concurrent Processing of Two Transfer Requests
    • 1-, 2-, and 3-Dimensional Memory-to-Memory and Memory-to-Peripheral Data Transfers
    • Circular Addressing Where the Size of a Circular Buffer (FIFO) is not Limited to 2n
    • Table-Based Multi-Tap Delay Read and Write Transfers From/To a Circular Buffer
  • Three Multichannel Audio Serial Ports
    • Transmit/Receive Clocks up to 50 MHz
    • Six Clock Zones and 16 Serial Data Pins
    • Supports TDM, I2S, and Similar Formats
    • DIT-Capable (McASP2)
  • Universal Host-Port Interface (UHPI)
    • 32-Bit-Wide Data Bus for High Bandwidth
    • Muxed and Non-Muxed Address and Data
  • Two 10-MHz SPI Ports With 3-, 4-, and 5-Pin Options
  • Two Inter-Integrated Circuit (I2C) Ports
  • Real-Time Interrupt Counter/Watchdog
  • Oscillator- and Software-Controlled PLL
  • Applications:
    • Professional Audio
      • Mixers
      • Effects Boxes
      • Audio Synthesis
      • Instrument/Amp Modeling
      • Audio Conferencing
      • Audio Broadcast
      • Audio Encoder
    • Emerging Audio Applications
    • Biometrics
    • Medical
    • Industrial
  • Commercial or Extended Temperature
  • 144-Pin, 0.5-mm, PowerPAD™ Thin Quad Flatpack (TQFP) [RFP Suffix]
  • 256-Terminal, 1.0-mm, 16x16 Array Plastic Ball Grid Array (PBGA) [GDH and ZDH Suffixes]

C67x, PowerPAD, TMS320C6000, C6000, DSP/BIOS, XDS, TMS320 are trademarks of Texas Instruments.
Philips is a registered trademark of Koninklijki Philips Electronics N.V.
All other trademarks are the property of their respective owners.

  • C672x: 32-/64-Bit 350-MHz Floating-Point DSPs
  • Upgrades to C67x+ CPU From C67x™ DSP Generation:
    • 2X CPU Registers [64 General-Purpose]
    • New Audio-Specific Instructions
    • Compatible With the C67x CPU
  • Enhanced Memory System
    • 256K-Byte Unified Program/Data RAM
    • 384K-Byte Unified Program/Data ROM
    • Single-Cycle Data Access From CPU
    • Large Program Cache (32K Byte) Supports RAM, ROM, and External Memory
  • External Memory Interface (EMIF) Supports
    • 133-MHz SDRAM (16- or 32-Bit)
    • Asynchronous NOR Flash, SRAM (8-,16-, or 32-Bit)
    • NAND Flash (8- or 16-Bit)
  • Enhanced I/O System
    • High-Performance Crossbar Switch
    • Dedicated McASP DMA Bus
    • Deterministic I/O Performance
  • dMAX (Dual Data Movement Accelerator) Supports:
    • 16 Independent Channels
    • Concurrent Processing of Two Transfer Requests
    • 1-, 2-, and 3-Dimensional Memory-to-Memory and Memory-to-Peripheral Data Transfers
    • Circular Addressing Where the Size of a Circular Buffer (FIFO) is not Limited to 2n
    • Table-Based Multi-Tap Delay Read and Write Transfers From/To a Circular Buffer
  • Three Multichannel Audio Serial Ports
    • Transmit/Receive Clocks up to 50 MHz
    • Six Clock Zones and 16 Serial Data Pins
    • Supports TDM, I2S, and Similar Formats
    • DIT-Capable (McASP2)
  • Universal Host-Port Interface (UHPI)
    • 32-Bit-Wide Data Bus for High Bandwidth
    • Muxed and Non-Muxed Address and Data
  • Two 10-MHz SPI Ports With 3-, 4-, and 5-Pin Options
  • Two Inter-Integrated Circuit (I2C) Ports
  • Real-Time Interrupt Counter/Watchdog
  • Oscillator- and Software-Controlled PLL
  • Applications:
    • Professional Audio
      • Mixers
      • Effects Boxes
      • Audio Synthesis
      • Instrument/Amp Modeling
      • Audio Conferencing
      • Audio Broadcast
      • Audio Encoder
    • Emerging Audio Applications
    • Biometrics
    • Medical
    • Industrial
  • Commercial or Extended Temperature
  • 144-Pin, 0.5-mm, PowerPAD™ Thin Quad Flatpack (TQFP) [RFP Suffix]
  • 256-Terminal, 1.0-mm, 16x16 Array Plastic Ball Grid Array (PBGA) [GDH and ZDH Suffixes]

C67x, PowerPAD, TMS320C6000, C6000, DSP/BIOS, XDS, TMS320 are trademarks of Texas Instruments.
Philips is a registered trademark of Koninklijki Philips Electronics N.V.
All other trademarks are the property of their respective owners.

The TMS320C672x is the next generation of Texas Instruments' C67x generation of high-performance 32-/64-bit floating-point digital signal processors. The TMS320C672x includes the TMS320C6727B, TMS320C6726B, TMS320C6722B, and TMS320C6720 devices.(1)

Enhanced C67x+ CPU. The C67x+ CPU is an enhanced version of the C67x CPU used on the C671x DSPs. It is compatible with the C67x CPU but offers significant improvements in speed, code density, and floating-point performance per clock cycle. At 350 MHz, the CPU is capable of a maximum performance of 2800 MIPS/2100 MFLOPS by executing up to eight instructions (six of which are floating-point instructions) in parallel each cycle. The CPU natively supports 32-bit fixed-point, 32-bit single-precision floating-point, and 64-bit double-precision floating-point arithmetic.

Efficient Memory System. The memory controller maps the large on-chip 256K-byte RAM and 384K-byte ROM as unified program/data memory. Development is simplified since there is no fixed division between program and data memory size as on some other devices.

The memory controller supports single-cycle data accesses from the C67x+ CPU to the RAM and ROM. Up to three parallel accesses to the internal RAM and ROM from three of the following four sources are supported:

  • Two 64-bit data accesses from the C67x+ CPU
  • One 256-bit program fetch from the core and program cache
  • One 32-bit data access from the peripheral system (either dMAX or UHPI)

The large (32K-byte) program cache translates to a high hit rate for most applications. This prevents most program/data access conflicts to the on-chip memory. It also enables effective program execution from an off-chip memory such as an SDRAM.

High-Performance Crossbar Switch. A high-performance crossbar switch acts as a central hub between the different bus masters (CPU, dMAX, UHPI) and different targets (peripherals and memory). The crossbar is partially connected; some connections are not supported (for example, UHPI-to-peripheral connections).

Multiple transfers occur in parallel through the crossbar as long as there is no conflict between bus masters for a particular target. When a conflict does occur, the arbitration is a simple and deterministic fixed-priority scheme.

The dMAX is given highest-priority since it is responsible for the most time-critical I/O transfers, followed next by the UHPI, and finally by the CPU.

dMAX Dual Data Movement Accelerator. The dMAX is a module designed to perform Data Movement Acceleration. The Data Movement Accelerator (dMAX) controller handles user-programmed data transfers between the internal data memory controller and the device peripherals on the C672x DSPs. The dMAX allows movement of data to/from any addressable memory space including internal memory, peripherals, and external memory.

The dMAX controller includes features such as the capability to perform three-dimensional data transfers for advanced data sorting, and the capability to manage a section of the memory as a circular buffer/FIFO with delay-tap based reading and writing of data. The dMAX controller is capable of concurrently processing two transfer requests (provided that they are to/from different source/destinations).

External Memory Interface (EMIF) for Flexibility and Expansion. The external memory interface on the C672x supports a single bank of SDRAM and a single bank of asynchronous memory. The EMIF data width is 16 bits wide on the C6726B, C6722B, and C6720 and 32 bits wide on the C6727B.

SDRAM support includes x16 and x32 SDRAM devices with 1, 2, or 4 banks.

The C6726B, C6722B, and C6720 support SDRAM devices up to 128M bits.

The C6727B extends SDRAM support to 256M-bit and 512M-bit devices.

Asynchronous memory support is typically used to boot from a parallel non-multiplexed NOR flash device that can be 8, 16, or 32 bits wide. Booting from larger flash devices than are natively supported by the dedicated EMIF address lines is accomplished by using general-purpose I/O pins for upper address lines.

The asynchronous memory interface can also be configured to support 8- or 16-bit-wide NAND flash. It includes a hardware ECC calculation (for single-bit errors) that can operate on blocks of data up to 512 bytes.

Universal Host-Port Interface (UHPI) for High-Speed Parallel I/O. The Universal Host-Port Interface (UHPI) is a parallel interface through which an external host CPU can access memories on the DSP.

Three modes are supported by the C672x UHPI:

  • Multiplexed Address/Data - Half-Word (16-bit-wide) Mode (similar to C6713)
  • Multiplexed Address/Data - Full Word (32-bit-wide) Mode
  • Non-Multiplexed Mode - 16-bit Address and 32-bit Data Bus

The UHPI can also be restricted to accessing a single page (64K bytes) of memory anywhere in the address space of the C672x; this page can be changed, but only by the C672x CPU. This feature allows the UHPI to be used for high-speed data transfers even in systems where security is an important requirement.

The UHPI is only available on the C6727B.

Multichannel Audio Serial Ports (McASP0, McASP1, and McASP2) - Up to 16 Stereo Channels I2S. The multichannel audio serial port (McASP) seamlessly interfaces to CODECs, DACs, ADCs, and other devices. It supports the ubiquitous IIS format as well as many variations of this format, including time division multiplex (TDM) formats with up to 32 time slots.

Each McASP includes a transmit and receive section which may operate independently or synchronously; furthermore, each section includes its own flexible clock generator and extensive error-checking logic.

As data passes through the McASP, it can be realigned so that the fixed-point representation used by the application code can be independent of the representation used by the external devices without requiring any CPU overhead to make the conversion.

The McASP is a configurable module and supports between 2 and 16 serial data pins. It also has the option of supporting a Digital Interface Transmitter (DIT) mode with a full 384 bits of channel status and user data memory.

McASP2 is not available on the C6722B and C6720.

Inter-Integrated Circuit Serial Ports (I2C0, I2C1). The C672x includes two inter-integrated circuit (I2C) serial ports. A typical application is to configure one I2C serial port as a slave to an external user-interface microcontroller. The other I2C serial port may then be used by the C672x DSP to control external peripheral devices, such as a CODEC or network controller, which are functionally peripherals of the DSP device.

The two I2C serial ports are pin-multiplexed with the SPI0 serial port.

Serial Peripheral Interface Ports (SPI0, SPI1). As in the case of the I2C serial ports, the C672x DSP also includes two serial peripheral interface (SPI) serial ports. This allows one SPI port to be configured as a slave to control the DSP while the other SPI serial port is used by the DSP to control external peripherals.

The SPI ports support a basic 3-pin mode as well as optional 4- and 5-pin modes. The optional pins include a slave chip-select pin and an enable pin which implements handshaking automatically in hardware for maximum SPI throughput.

The SPI0 port is pin-multiplexed with the two I2C serial ports (I2C0 and I2C1). The SPI1 serial port is pin-multiplexed with five of the serial data pins from McASP0 and McASP1.

Real-Time Interrupt Timer (RTI). The real-time interrupt timer module includes:

  • Two 32-bit counter/prescaler pairs
  • Two input captures (tied to McASP direct memory access [DMA] events for sample rate measurement)
  • Four compares with automatic update capability
  • Digital Watchdog (optional) for enhanced system robustness

Clock Generation (PLL and OSC). The C672x DSP includes an on-chip oscillator that supports crystals in the range of 12 MHz to 25 MHz. Alternatively, the clock can be provided externally through the CLKIN pin.

The DSP includes a flexible, software-programmable phase-locked loop (PLL) clock generator. Three different clock domains (SYSCLK1, SYSCLK2, and SYSCLK3) are generated by dividing down the PLL output. SYSCLK1 is the clock used by the CPU, memory controller, and memories. SYSCLK2 is used by the peripheral subsystem and dMAX. SYSCLK3 is used exclusively for the EMIF.

(1) Throughout the remainder of the document, TMS320C6727B (or C6727B), TMS320C6726B (or C6726B), TMS320C6722B (or C6722B), and/or TMS320C6720 (or C6720) will be referred to as TMS320C672x (or C672x).

The TMS320C672x is the next generation of Texas Instruments' C67x generation of high-performance 32-/64-bit floating-point digital signal processors. The TMS320C672x includes the TMS320C6727B, TMS320C6726B, TMS320C6722B, and TMS320C6720 devices.(1)

Enhanced C67x+ CPU. The C67x+ CPU is an enhanced version of the C67x CPU used on the C671x DSPs. It is compatible with the C67x CPU but offers significant improvements in speed, code density, and floating-point performance per clock cycle. At 350 MHz, the CPU is capable of a maximum performance of 2800 MIPS/2100 MFLOPS by executing up to eight instructions (six of which are floating-point instructions) in parallel each cycle. The CPU natively supports 32-bit fixed-point, 32-bit single-precision floating-point, and 64-bit double-precision floating-point arithmetic.

Efficient Memory System. The memory controller maps the large on-chip 256K-byte RAM and 384K-byte ROM as unified program/data memory. Development is simplified since there is no fixed division between program and data memory size as on some other devices.

The memory controller supports single-cycle data accesses from the C67x+ CPU to the RAM and ROM. Up to three parallel accesses to the internal RAM and ROM from three of the following four sources are supported:

  • Two 64-bit data accesses from the C67x+ CPU
  • One 256-bit program fetch from the core and program cache
  • One 32-bit data access from the peripheral system (either dMAX or UHPI)

The large (32K-byte) program cache translates to a high hit rate for most applications. This prevents most program/data access conflicts to the on-chip memory. It also enables effective program execution from an off-chip memory such as an SDRAM.

High-Performance Crossbar Switch. A high-performance crossbar switch acts as a central hub between the different bus masters (CPU, dMAX, UHPI) and different targets (peripherals and memory). The crossbar is partially connected; some connections are not supported (for example, UHPI-to-peripheral connections).

Multiple transfers occur in parallel through the crossbar as long as there is no conflict between bus masters for a particular target. When a conflict does occur, the arbitration is a simple and deterministic fixed-priority scheme.

The dMAX is given highest-priority since it is responsible for the most time-critical I/O transfers, followed next by the UHPI, and finally by the CPU.

dMAX Dual Data Movement Accelerator. The dMAX is a module designed to perform Data Movement Acceleration. The Data Movement Accelerator (dMAX) controller handles user-programmed data transfers between the internal data memory controller and the device peripherals on the C672x DSPs. The dMAX allows movement of data to/from any addressable memory space including internal memory, peripherals, and external memory.

The dMAX controller includes features such as the capability to perform three-dimensional data transfers for advanced data sorting, and the capability to manage a section of the memory as a circular buffer/FIFO with delay-tap based reading and writing of data. The dMAX controller is capable of concurrently processing two transfer requests (provided that they are to/from different source/destinations).

External Memory Interface (EMIF) for Flexibility and Expansion. The external memory interface on the C672x supports a single bank of SDRAM and a single bank of asynchronous memory. The EMIF data width is 16 bits wide on the C6726B, C6722B, and C6720 and 32 bits wide on the C6727B.

SDRAM support includes x16 and x32 SDRAM devices with 1, 2, or 4 banks.

The C6726B, C6722B, and C6720 support SDRAM devices up to 128M bits.

The C6727B extends SDRAM support to 256M-bit and 512M-bit devices.

Asynchronous memory support is typically used to boot from a parallel non-multiplexed NOR flash device that can be 8, 16, or 32 bits wide. Booting from larger flash devices than are natively supported by the dedicated EMIF address lines is accomplished by using general-purpose I/O pins for upper address lines.

The asynchronous memory interface can also be configured to support 8- or 16-bit-wide NAND flash. It includes a hardware ECC calculation (for single-bit errors) that can operate on blocks of data up to 512 bytes.

Universal Host-Port Interface (UHPI) for High-Speed Parallel I/O. The Universal Host-Port Interface (UHPI) is a parallel interface through which an external host CPU can access memories on the DSP.

Three modes are supported by the C672x UHPI:

  • Multiplexed Address/Data - Half-Word (16-bit-wide) Mode (similar to C6713)
  • Multiplexed Address/Data - Full Word (32-bit-wide) Mode
  • Non-Multiplexed Mode - 16-bit Address and 32-bit Data Bus

The UHPI can also be restricted to accessing a single page (64K bytes) of memory anywhere in the address space of the C672x; this page can be changed, but only by the C672x CPU. This feature allows the UHPI to be used for high-speed data transfers even in systems where security is an important requirement.

The UHPI is only available on the C6727B.

Multichannel Audio Serial Ports (McASP0, McASP1, and McASP2) - Up to 16 Stereo Channels I2S. The multichannel audio serial port (McASP) seamlessly interfaces to CODECs, DACs, ADCs, and other devices. It supports the ubiquitous IIS format as well as many variations of this format, including time division multiplex (TDM) formats with up to 32 time slots.

Each McASP includes a transmit and receive section which may operate independently or synchronously; furthermore, each section includes its own flexible clock generator and extensive error-checking logic.

As data passes through the McASP, it can be realigned so that the fixed-point representation used by the application code can be independent of the representation used by the external devices without requiring any CPU overhead to make the conversion.

The McASP is a configurable module and supports between 2 and 16 serial data pins. It also has the option of supporting a Digital Interface Transmitter (DIT) mode with a full 384 bits of channel status and user data memory.

McASP2 is not available on the C6722B and C6720.

Inter-Integrated Circuit Serial Ports (I2C0, I2C1). The C672x includes two inter-integrated circuit (I2C) serial ports. A typical application is to configure one I2C serial port as a slave to an external user-interface microcontroller. The other I2C serial port may then be used by the C672x DSP to control external peripheral devices, such as a CODEC or network controller, which are functionally peripherals of the DSP device.

The two I2C serial ports are pin-multiplexed with the SPI0 serial port.

Serial Peripheral Interface Ports (SPI0, SPI1). As in the case of the I2C serial ports, the C672x DSP also includes two serial peripheral interface (SPI) serial ports. This allows one SPI port to be configured as a slave to control the DSP while the other SPI serial port is used by the DSP to control external peripherals.

The SPI ports support a basic 3-pin mode as well as optional 4- and 5-pin modes. The optional pins include a slave chip-select pin and an enable pin which implements handshaking automatically in hardware for maximum SPI throughput.

The SPI0 port is pin-multiplexed with the two I2C serial ports (I2C0 and I2C1). The SPI1 serial port is pin-multiplexed with five of the serial data pins from McASP0 and McASP1.

Real-Time Interrupt Timer (RTI). The real-time interrupt timer module includes:

  • Two 32-bit counter/prescaler pairs
  • Two input captures (tied to McASP direct memory access [DMA] events for sample rate measurement)
  • Four compares with automatic update capability
  • Digital Watchdog (optional) for enhanced system robustness

Clock Generation (PLL and OSC). The C672x DSP includes an on-chip oscillator that supports crystals in the range of 12 MHz to 25 MHz. Alternatively, the clock can be provided externally through the CLKIN pin.

The DSP includes a flexible, software-programmable phase-locked loop (PLL) clock generator. Three different clock domains (SYSCLK1, SYSCLK2, and SYSCLK3) are generated by dividing down the PLL output. SYSCLK1 is the clock used by the CPU, memory controller, and memories. SYSCLK2 is used by the peripheral subsystem and dMAX. SYSCLK3 is used exclusively for the EMIF.

(1) Throughout the remainder of the document, TMS320C6727B (or C6727B), TMS320C6726B (or C6726B), TMS320C6722B (or C6722B), and/or TMS320C6720 (or C6720) will be referred to as TMS320C672x (or C672x).

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상위 문서 유형 직함 형식 옵션 최신 영어 버전 다운로드 날짜
* 데이터 시트 TMS320C6727B, TMS320C6726B, TMS320C6722B, TMS320C6720 Floating-Point DSPs datasheet (Rev. E) 2008. 7. 11
* 정오표 TMS320C6727/B, TMS320C6726/B, TMS32C6722/B, TMS320C6720 DSPs Silicon Errata (Rev. F) 2008. 10. 23
애플리케이션 노트 How to Migrate CCS 3.x Projects to the Latest CCS (Rev. A) PDF | HTML 2021. 5. 19
사용 설명서 TMS320C6000 Optimizing Compiler v 7.4 User's Guide (Rev. U) 2012. 8. 21
사용 설명서 TMS320C6000 Assembly Language Tools v 7.4 User's Guide (Rev. W) 2012. 8. 21
애플리케이션 노트 Introduction to TMS320C6000 DSP Optimization 2011. 10. 6
애플리케이션 노트 Using the TMS320C672x Bootloader (Rev. D) 2009. 9. 10
애플리케이션 노트 Common Object File Format (COFF) 2009. 4. 15
애플리케이션 노트 Configuring External Interrupts on TMS320C672x Devices 2008. 7. 11
사용 설명서 TMS320C672x DSP Multichannel Audio Serial Port (McASP) Reference Guide (Rev. B) 2008. 3. 13
애플리케이션 노트 Using ROM Contents on TMS320C672x 2008. 2. 5
사용 설명서 TMS320C672x DSP Inter-Integrated Circuit (I2C) Module Reference Guide (Rev. E) 2007. 12. 11
사용 설명서 TMS320C672x DSP Dual Data Movement Accelerator (dMAX) Reference Guide (Rev. D) 2007. 10. 12
사용 설명서 TMS320C672x DSP Serial Peripheral Interface (SPI) Reference Guide (Rev. B) 2007. 7. 12
사용 설명서 TMS320C672x DSP External Memory Interface (EMIF) User's Guide (Rev. C) 2007. 4. 2
사용 설명서 TMS320C67x/C67x+ DSP CPU and Instruction Set Reference Guide (Rev. A) 2006. 11. 7
Product overview TMS320C672x Floating-Point DSPs Product Bulletin (Rev. D) 2006. 10. 20
애플리케이션 노트 C9230C100 TMS320C672x Floating-Point Digital Signal Processor ROM (Rev. C) 2006. 9. 25
애플리케이션 노트 TMS320C672x Power Consumption Summary (Rev. B) 2006. 9. 22
애플리케이션 노트 TMS320C672x Hardware Designer's Resource Guide (Rev. A) 2006. 9. 22
사용 설명서 TMS320C672x DSP Peripherals Overview Reference Guide (Rev. B) 2006. 6. 25
애플리케이션 노트 How to Create Delay-based Audio Effects on a TMS320C6727 DSP 2005. 11. 1
사용 설명서 TMS320C672x DSP Software-Programmable Phase-Locked Loop (PLL) Controller RG (Rev. A) 2005. 5. 23
애플리케이션 노트 Migrating from TMS320C6713 to TMS320C672x 2005. 5. 23
사용 설명서 TMS320C672x DSP Real-Time Interrupt Reference Guide 2005. 4. 13

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TMDSEMU560V2STM-U — XDS560™ 소프트웨어 v2 시스템 추적 USB 디버그 프로브

XDS560v2는 디버그 프로브의 XDS560™ 제품군 중 최고의 성능을 가진 제품으로, 기존의 JTAG 표준(IEEE1149.1)과 cJTAG(IEEE1149.7)를 모두 지원합니다.  SWD(직렬 와이어 디버그)는 지원하지 않습니다.

모든 XDS 디버그 프로브는 ETB(임베디드 추적 버퍼)가 있는 모든 ARM 및 DSP 프로세서에서 코어와 시스템 트레이스를 지원합니다.  핀을 통한 추적의 경우 XDS560v2 PRO TRACE가 필요합니다.

XDS560v2는 MIPI HSPT 60핀 커넥터(TI 14핀, TI 20핀 및 ARM (...)

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TMDSEMU560V2STM-UE — XDS560v2 시스템 추적 USB 및 이더넷 디버그 프로브

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). Note that it does not support serial wire debug (SWD).

All XDS debug probes support Core and System Trace in all ARM and DSP processors that (...)

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LB-3P-TRACE32-DSP — DSP(디지털 신호 프로세서)용 Lauterbach TRACE32 디버그 및 트레이스 시스템

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 (...)

발송: Lauterbach GmbH
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IDE, 구성, 컴파일러 또는 디버거

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 (...)

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드라이버 또는 라이브러리

AEC-AER — Acoustic echo cancellation/removal for TI C64x+, C674x, C55x and Cortex®-A8 processors

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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드라이버 또는 라이브러리

C64X-DSPLIB — Download TMS320C64x DSP Library

TMS320C6000 DSPLIB(디지털 신호 프로세서 라이브러리)는 C 프로그래머를 위한 플랫폼에 최적화된 DSP 기능 라이브러리입니다. 여기에는 일반적으로 계산 집약적 실시간 애플리케이션에서 사용되는 C 호출 가능한 범용 신호 처리 루틴이 포함되어 있습니다. 이 루틴을 사용하면 상응하는 표준 ANSI C 언어 코드보다 더 높은 성능을 달성할 수 있습니다. DSPLIB는 즉시 사용할 수 있는 DSP 기능을 소스 코드와 함께 제공하여 애플리케이션 개발 시간을 크게 단축시킬 수 있습니다.

벤치마크 확인: DSP 코어 벤치마크

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드라이버 또는 라이브러리

C67X-DSPLIB — Download TMS320C67x DSP Library

TMS320C6000 DSPLIB(디지털 신호 프로세서 라이브러리)는 C 프로그래머를 위한 플랫폼에 최적화된 DSP 기능 라이브러리입니다. 여기에는 일반적으로 계산 집약적 실시간 애플리케이션에서 사용되는 C 호출 가능한 범용 신호 처리 루틴이 포함되어 있습니다. 이 루틴을 사용하면 상응하는 표준 ANSI C 언어 코드보다 더 높은 성능을 달성할 수 있습니다. DSPLIB는 즉시 사용할 수 있는 DSP 기능을 소스 코드와 함께 제공하여 애플리케이션 개발 시간을 크게 단축시킬 수 있습니다.

벤치마크 확인: DSP 코어 벤치마크

지원되는 제품 및 하드웨어
드라이버 또는 라이브러리

C67X-MATHLIB — DSP Math Library for C67x Floating Point Devices

The Texas Instruments math library is an optimized floating-point math function library for C programmers using TI floating point devices. These routines are typically used in computationally intensive real-time applications where optimal execution speed is critical. By using these routines instead (...)
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드라이버 또는 라이브러리

FAXLIB — FAX library (FAXLIB) for C66x, C64x+ and C55x processors

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 (...)

지원되는 제품 및 하드웨어
드라이버 또는 라이브러리

SPRC203 — System PatchV2.00.00 FastRtsV1.20 DSPLIB V2.00 genBootCfgV1.0030 genAIS V1.03.06

패치 코드, FastRts(V1.20)/DSPLIB(V2.00) ROM 예제 및 라이브러리, 부팅 구성 유틸리티 + 부팅 예제

시스템 패치 V2.00.00, FastRts(1.20), DSPLIB(V2.00), genBootCfg(1.0030), genAIS(1.03.06)

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드라이버 또는 라이브러리

VOLIB — Voice library (VoLIB) for C66x, C64x+ and C55x processors

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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시뮬레이션 모델

C6726 RFP BSDL Model (Rev. B)

SPRM182 (3 KB) - BSDL 모델
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시뮬레이션 모델

C6726 RFP IBIS Model (Rev. A)

SPRM193 (121 KB) - IBIS 모델
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패키지 CAD 기호, 풋프린트 및 3D 모델
HTQFP (RFP) 144 Ultra Librarian

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