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MSC7115VF1000 MSC7115VF1000 30749 NXP USA Inc. DSP 16BIT W/DDR CTRLR 400-MAPBGA 400-LFBGA
TMS320DM6446ZWT TMS320DM6446ZWT 14638 Texas Instruments IC DIGITAL MEDIA SOC 361-BGA 361-LFBGA
SPAKXC309VF100A SPAKXC309VF100A 26934 NXP USA Inc. IC DSP 24BIT 100MHZ 196-MAPBGA 196-LBGA
TMS320C6726RFP250 TMS320C6726RFP250 44428 Texas Instruments IC FLOATING-POINT DSP 144-HTQFP 144-TQFP Exposed Pad
TMS320VC5506ZHH TMS320VC5506ZHH 32870 Texas Instruments IC FIXED-POINT DSP 179-BGA 179-LFBGA
TMS320VC5506GHH TMS320VC5506GHH 44975 Texas Instruments IC FIXED-POINT DSP 179-BGA 179-LFBGA
SPAKDSP303VF100 SPAKDSP303VF100 40620 NXP USA Inc. IC DSP 24BIT 100MHZ 196-MAPBGA 196-LBGA
MSC8103M1200F MSC8103M1200F 27286 NXP USA Inc. DSP 16BIT 300MHZ CPM 332FCBGA 332-BFBGA, FCBGA
MSC8122TVT6400 MSC8122TVT6400 12189 NXP USA Inc. DSP 16BIT 400MHZ MULTI 431FCBGA 431-BFBGA, FCBGA
MSC7113VM1000 MSC7113VM1000 18083 NXP USA Inc. DSP 16BIT W/DDR CTRLR 400-MAPBGA 400-LFBGA
MSC8103M1100F MSC8103M1100F 19474 NXP USA Inc. DSP 16BIT 275MHZ CPM 332FCBGA 332-BFBGA, FCBGA
MSC7116VF1000 MSC7116VF1000 17059 NXP USA Inc. DSP 16BIT W/DDR CTRLR 400-MAPBGA 400-LFBGA
ADSP-21261SKSTZ150 ADSP-21261SKSTZ150 30892 Analog Devices Inc. IC DSP 32BIT 150MHZ 144LQFP 144-LQFP
TMS32C6416EGLZA5E0 TMS32C6416EGLZA5E0 45165 Texas Instruments IC FIXED POINT DSP 532-FCBGA 532-BFBGA, FCBGA
MSC8122TMP6400V MSC8122TMP6400V 19539 NXP USA Inc. DSP 16BIT 400MHZ MULTI 431FCBGA 431-BFBGA, FCBGA
ADSP-2171BSZ-133 ADSP-2171BSZ-133 29182 Analog Devices Inc. IC DSP CONTROLLER 16BIT 128QFP 128-BQFP
MSC8122TMP6400 MSC8122TMP6400 31693 NXP USA Inc. DSP 16BIT 400MHZ MULTI 431FCBGA 431-BFBGA, FCBGA
TMS320C6203BGNZ300 TMS320C6203BGNZ300 44836 Texas Instruments IC DSP FIXED-PT 300MHZ 352-FCBGA 352-BBGA, FCBGA
TMS32C6414EZLZA6E3 TMS32C6414EZLZA6E3 17823 Texas Instruments IC FIXED POINT DSP 532-FCBGA 532-BFBGA, FCBGA
MSC7113VF1000 MSC7113VF1000 34101 NXP USA Inc. DSP 16BIT W/DDR CTRLR 400-MAPBGA 400-LFBGA

DSP (Digital Signal Processors)

1. What are DSP (Digital Signal Processors)?‌

‌DSP (Digital Signal Processor)‌ is a microprocessor designed for high-speed digital signal processing algorithms. It performs filtering, compression, enhancement, and other operations by processing the digital sequence converted from analog signals in real-time. It is widely used in communications, medicine, consumer electronics, and other fields. Its essence is to process real signals in digital form to extract and convert information.

 

2. What are the ‌Core Hardware Features of DSP (Digital Signal Processors)?‌

‌Harvard Structure

The program and data storage space are independent, supporting parallel execution of instruction reading and data operations, significantly improving throughput efficiency.

 

‌Dedicated Hardware Acceleration Unit

Built-in hardware multiplier (MAC), single-cycle multiplication and addition operations, suitable for intensive calculations such as matrix operations and Fourier transforms.

 

Multi-address generator reduces memory access bottlenecks.

 

‌Pipeline Technology

Instructions are decomposed into multi-stage parallel processing such as instruction fetch, decoding, and execution to achieve efficient pipeline operations.

 

‌Low-latency Response

Fast interrupt processing and hardware I/O support to meet scenarios with high real-time requirements (such as industrial control).

 

3. What are the ‌Typical Application Scenarios of DSP (Digital Signal Processors)?‌

1) ‌Communications‌

Processing fiber dispersion and polarization interference in optical communications to achieve signal recovery and equalization.

 

2) ‌Consumer Electronics‌

Audio Processing: frequency division management, delay correction, and EQ adjustment of car audio (such as DSP amplifier);

Wearable Devices: For example, the ATS3085L chip of Actions Technology equipped with an Honor bracelet realizes health monitoring and low-power operation through MCU+DSP dual-core heterogeneous design.

 

3) ‌Embedded System‌

Combined with SBC (single-board computer) to enhance data processing capabilities, used for complex tasks such as aerospace and industrial control.

 

4) ‌Image and Automation‌

The advantages of floating-point operations and matrix processing are suitable for machine vision, motor control, etc.

 

4. ‌Technology Evolution and Trends of DSP (Digital Signal Processors)‌

‌Heterogeneous Integration‌: Modern DSPs are often combined with MCU/ARM cores (such as TI J6/J7), taking into account general computing and special processing capabilities.

‌Energy Efficiency Optimization‌: Low power consumption design promotes its penetration in the Internet of Things and wearable devices (such as Actions chip power consumption <150μA).

 

5. ‌Summary‌

DSP has become the core device of digital technology with its customized hardware architecture and real-time processing capabilities, covering all scenarios from high-end communication equipment to daily consumer electronics, and continuously promoting the innovation of signal processing technology.

 

6. DSP (Digital Signal Processors) FAQs

1) ‌How to deal with excessive power ripple? ‌

Adding capacitor filtering can effectively suppress power ripple while ensuring that the reference power supply and analog power supply are pure.

 

2) ‌Is the external crystal oscillator active or passive? ‌

It is recommended to use a passive crystal rather than an active crystal oscillator to ensure clock stability.

 

3) ‌Multi-DSP system clock synchronization solution? ‌

Use a dedicated clock chip to unify the clock source to avoid timing confusion.

 

4) ‌A/D conversion accuracy assurance measures? ‌

It is necessary to independently purify the analog power supply and reference power supply to reduce noise interference.