LCMXO640E-4T144C

Lattice Semiconductor Corporation LCMXO640E-4T144C

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  • LCMXO640E-4T144C
  • Lattice Semiconductor Corporation
  • IC FPGA 113 I/O 144TQFP
  • Embedded - FPGAs (Field Programmable Gate Array)
  • LCMXO640E-4T144C Datasheet
  • 144-LQFP
  • Tray
  • Lead free / RoHS CompliantLead free / RoHS Compliant
  • 2621
  • Spot Inventory / Athorized Dstributor / Factory Excess Stock
  • 1 year quality assurance 》
  • Click to get rates

What is LCMXO640E-4T144C

Lattice Semiconductor Corporation Part Number LCMXO640E-4T144CEmbedded - FPGAs (Field Programmable Gate Array)), developed and manufactured by Lattice Semiconductor Corporation, distributed globally by Jinftry. We distribute various electronic components from world-renowned brands and provide one-stop services, making us a trusted global electronic component distributor.

LCMXO640E-4T144C is one of the part numbers distributed by Jinftry, and you can learn about its specifications/configurations, package/case, Datasheet, and other information here. Electronic components are affected by supply and demand, and prices fluctuate frequently. If you have a demand, please do not hesitate to send us an RFQ or email us immediately [email protected] Please inquire about the real-time unit price, Data Code, Lead time, payment terms, and any other information you would like to know. We will do our best to provide you with a quotation and reply as soon as possible.

LCMXO640E-4T144C Specifications

  • Part NumberLCMXO640E-4T144C
  • CategoryEmbedded - FPGAs (Field Programmable Gate Array)
  • ManufacturerLattice Semiconductor Corporation
  • DescriptionIC FPGA 113 I/O 144TQFP
  • PackageTray
  • SeriesMachXO
  • Voltage - Supply1.14V ~ 1.26V
  • Operating Temperature0°C ~ 85°C (TJ)
  • Mounting TypeSurface Mount
  • Package / Case144-LQFP
  • Supplier Device Package144-TQFP (20x20)
  • Number of I/O113
  • Number of Gates-
  • Number of LABs/CLBs80
  • Number of Logic Elements/Cells640
  • Total RAM Bits-

Application of LCMXO640E-4T144C

FPGA (Field-Programmable Gate Array) The primary role of FPGas is to provide powerful parallel processing capabilities and a high degree of flexibility. The application field of FPGA is extremely wide, covering almost all electronic systems requiring high performance and high flexibility. In the field of communication, FPGA is used to achieve high-speed data processing, protocol conversion, data compression and other functions to improve the performance and stability of communication systems. In terms of digital signal processing, the parallel processing capability of FPGA makes it an ideal choice for audio processing, video codec, image processing and other fields. In addition, FPgas are also widely used in industrial automation, automotive electronics, aerospace, medical equipment and other fields to achieve complex control and data processing tasks.

LCMXO640E-4T144C Datasheet

LCMXO640E-4T144C Datasheet , Tray,MachXO,1.14V ~ 1.26V,0°C ~ 85°C (TJ),Surface Mount,144-LQFP,144-TQFP (20x20),113,80,640

LCMXO640E-4T144C Classification

Embedded - FPGAs (Field Programmable Gate Array)

Field-Programmable Gate Array (FPGA) is an integrated circuit whose core is an array of programmable logic units, which can be connected through a network of programmable interconnects to form complex digital circuits. Each logical unit contains lookup tables (LUTs), triggers, and other basic logical elements that can be configured to perform various logical operations. This structure allows the FPGA to be programmed by the user after the factory to implement specific logic functions, and can be reprogrammed multiple times to suit different application needs.

FAQ about Embedded - FPGAs (Field Programmable Gate Array)

  • 1. What is the hardware of FPGA?

    FPGA (Field-Programmable Gate Array) is a hardware device, not software. FPGA is a programmable hardware device consisting of a large number of logic units, storage units and interconnection resources, which can realize complex digital circuits and system designs.
    The hardware structure of FPGA mainly includes the following parts:
    Logic unit: FPGA contains programmable logic blocks that can perform logical and arithmetic operations.
    Interconnection resources: These resources act as connections between logic blocks, allowing data to be transferred between different logic blocks.
    Memory unit: Used to store configuration information and temporary data, supporting FPGA operations and logic processing.
    The characteristics and application scenarios of FPGA include:
    Programmability: FPGA can change the structure of its internal circuits by loading configuration information to achieve different functions.
    High-speed execution: FPGA performs logic operations at the hardware level, which is usually several orders of magnitude faster than software execution.
    Wide application: FPGA is widely used in many fields such as communications, medical, automotive, aerospace, industrial automation, etc. to implement complex digital circuits and algorithms, improve equipment performance, reduce power consumption or achieve specific functional requirements.

  • 2. What is the hardware of FPGA?

    FPGA (Field Programmable Gate Array) is a highly flexible programmable logic chip that users can program to achieve specific logic functions according to their needs. The main uses of FPGA include communications and networks, digital signal processing, automotive and aerospace, industrial automation, high-performance computing, smart Internet of Things and many other aspects.

  • 3. Is FPGA good for AI ?

    FPGAs are good for AI. FPGAs offer a variety of advantages in the field of AI, including high performance, low latency, cost-effectiveness, energy efficiency and flexibility.
    The main advantages of FPGAs in the field of AI include:
    High performance and low latency: FPGAs offer low latency as well as deterministic latency, which is critical for many applications with strict deadlines, such as real-time applications such as speech recognition, video streaming and action recognition.
    Cost-effectiveness: FPGAs can be reprogrammed for different data types and functions after manufacturing, which creates value compared to replacing applications with new hardware. By integrating additional functions onto the same chip, designers can reduce costs and save board space.
    Energy efficiency: FPGAs enable designers to fine-tune hardware according to application requirements, using techniques such as INT8 quantization to reduce memory and computing requirements, thereby reducing energy consumption.
    Flexibility and customization: FPGA can be optimized at the hardware level for specific algorithms, reducing unnecessary computing and storage overhead. For example, AMD's Alveo V80 accelerator card uses Versal FPGA adaptive SoC and HBM technology to provide efficient computing power.
    In summary, FPGA has significant advantages in the field of AI, including high performance, low latency, cost-effectiveness, energy efficiency and flexibility, making it an ideal solution in AI applications.

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Lattice Semiconductor Corporation
Lattice Semiconductor Corporation
Lattice Semiconductor Corporation is a leading supplier of low-power programmable devices.
On January 1, 1983, Lattice Semiconductor Corporation was established in Oregon, USA. The company focuses on providing diversified field programmable gate arrays (FPGAs), programmable...
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