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LC4128B-5T100I LC4128B-5T100I 51138 Lattice Semiconductor Corporation IC CPLD 128MC 5NS 100TQFP 100-LQFP
EPM1270F256C3 EPM1270F256C3 44437 Intel IC CPLD 980MC 6.2NS 256FBGA 256-BGA
EPM7256SQC208-15 EPM7256SQC208-15 1840 Intel IC CPLD 256MC 15NS 208QFP 208-BFQFP
EPM1270F256C3N EPM1270F256C3N 31762 Intel IC CPLD 980MC 6.2NS 256FBGA 256-BGA
EPM2210F256C4 EPM2210F256C4 23153 Intel IC CPLD 1700MC 7NS 256FBGA 256-BGA
LC4256B-10FT256BI LC4256B-10FT256BI 3839 Lattice Semiconductor Corporation IC CPLD 256MC 10NS 256FTBGA 256-LBGA
LC4128V-75T144E LC4128V-75T144E 54594 Lattice Semiconductor Corporation IC CPLD 128MC 7.5NS 144TQFP 144-LQFP
LC4256B-5F256BI LC4256B-5F256BI 56507 Lattice Semiconductor Corporation IC CPLD 256MC 5NS 256FPBGA 256-BGA
LC4256B-5F256AC LC4256B-5F256AC 33070 Lattice Semiconductor Corporation IC CPLD 256MC 5NS 256FPBGA 256-BGA
LC4256B-5FN256BI LC4256B-5FN256BI 38436 Lattice Semiconductor Corporation IC CPLD 256MC 5NS 256FPBGA 256-BGA
LC4128ZC-75T100E LC4128ZC-75T100E 50805 Lattice Semiconductor Corporation IC CPLD 128MC 7.5NS 100TQFP 100-LQFP
LC4256B-10T100I LC4256B-10T100I 9600 Lattice Semiconductor Corporation IC CPLD 256MC 10NS 100TQFP 100-LQFP
LC4256B-3FN256AC LC4256B-3FN256AC 34931 Lattice Semiconductor Corporation IC CPLD 256MC 3NS 256FPBGA 256-BGA
LC4256B-5T100I LC4256B-5T100I 31061 Lattice Semiconductor Corporation IC CPLD 256MC 5NS 100TQFP 100-LQFP
LC4256B-5FT256AI LC4256B-5FT256AI 51995 Lattice Semiconductor Corporation IC CPLD 256MC 5NS 256FTBGA 256-LBGA
LC4256B-5FT256BI LC4256B-5FT256BI 1213 Lattice Semiconductor Corporation IC CPLD 256MC 5NS 256FTBGA 256-LBGA
LC4128V-10T128I LC4128V-10T128I 22680 Lattice Semiconductor Corporation IC CPLD 128MC 10NS 128TQFP 128-LQFP
LC4256B-10FN256AI LC4256B-10FN256AI 30667 Lattice Semiconductor Corporation IC CPLD 256MC 10NS 256FPBGA 256-BGA
LC4256B-3FN256BC LC4256B-3FN256BC 7013 Lattice Semiconductor Corporation IC CPLD 256MC 3NS 256FPBGA 256-BGA
LC4256B-10F256BI LC4256B-10F256BI 48548 Lattice Semiconductor Corporation IC CPLD 256MC 10NS 256FPBGA 256-BGA

CPLDs (Complex Programmable Logic Devices)

‌1. What are Complex Programmable Logic Devices?‌

CPLD (Complex Programmable Logic Device) is a digital integrated circuit with user-defined logic functions. It was developed from the early PAL (Programmable Array Logic) and GAL (General Array Logic) and belongs to the category of large-scale integrated circuits. It was born in the mid-1980s to make up for the defect that early PLD devices could not realize complex circuits.

 

‌2. What are the Core Structural Features of Complex Programmable Logic Devices?‌

‌Logic Unit‌: It is composed of multiple programmable logic macrocells (Macro Cells). Each macrocell can process dozens of combinational logic inputs and is suitable for implementing complex combinational logic such as decoders.

‌Interconnection Resources‌: Logic units are connected through a central programmable interconnect matrix to provide flexible wiring capabilities.

‌I/O Resources‌: It integrates rich input/output pins and supports an efficient interface with external circuits.

 

‌3. What are the Technical Features of Complex Programmable Logic Devices?‌

‌Programming Technology‌: It adopts non-volatile storage technology based on EEPROM or Flash. After programming, data will not be lost when power is off, and it supports multiple updates in-system programming (ISP).

‌Performance Advantages‌: It has the characteristics of high-density integration, low power consumption, and high reliability, and is suitable for scenarios with high real-time requirements.

 

‌4. What are the Key Differences from FPGA? ‌‌

Features

‌CPLD

‌FPGA

‌Structural Basis

Product term technology, macrocell structure

Lookup table technology (LUT)

‌Configuration Storage

On-chip integrated EEPROM/Flash

External configuration memory required

‌Applicable Scenarios

Complex combinational logic, control intensive

Data-intensive, high-performance computing

‌Granularity

Large granularity (macrocell level)

Medium granularity (LUT level)

 

5. What are the Application Advantages of Complex Programmable Logic Devices?‌

Development Efficiency‌: Rapid design through schematics or hardware description language (HDL), shortening the development cycle and lowering the hardware experience threshold.

 

‌Cost-effectiveness‌: No tape-out cost, suitable for small and medium-scale production (such as less than 10,000 pieces) and prototype verification.

‌Flexibility‌: Repeatable programming to modify logic functions, widely used in communications, industrial control, automotive electronics, and other fields.

 

As a key component in digital system design, CPLD balances flexibility, integration, and cost, and is the preferred solution for the implementation of small and medium-scale logic circuits.