XC6VLX75T-1FFG784C Allicdata Electronics
Allicdata Part #:

122-1787-ND

Manufacturer Part#:

XC6VLX75T-1FFG784C

Price: $ 0.00
Product Category:

Integrated Circuits (ICs)

Manufacturer: Xilinx Inc.
Short Description: IC FPGA 360 I/O 784FCBGA
More Detail: N/A
DataSheet: XC6VLX75T-1FFG784C datasheetXC6VLX75T-1FFG784C Datasheet/PDF
Quantity: 1000
Stock 1000Can Ship Immediately
Specifications
Series: Virtex®-6 LXT
Part Status: Active
Number of LABs/CLBs: 5820
Number of Logic Elements/Cells: 74496
Total RAM Bits: 5750784
Number of I/O: 360
Voltage - Supply: 0.95 V ~ 1.05 V
Mounting Type: Surface Mount
Operating Temperature: 0°C ~ 85°C (TJ)
Package / Case: 784-BBGA, FCBGA
Supplier Device Package: 784-FCBGA (29x29)
Base Part Number: XC6VLX75T
Description

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XC6VLX75T-1FFG784C Application Field and Working Principle

Introduction

The XC6VLX75T-1FFG784C is a Field Programmable Gate Array (FPGA). It is an integrated circuit designed to be configured by a user after manufacturing. It is part of Xilinx\'s Virtex-6 FPGA family, designed to provide the highest performance, scalability and power efficiency of any FPGA family in its class.

Application Fields

Xilinx FPGAs enable the processing of high-throughput data analysis and communications applications, offering a wide range of high-performance, low-power FPGAs. The XC6VLX75T-1FFG784C is popularly used in image processing, Adas, high-speed communication processing, artificial intelligence, digital design and control systems, etc.In image processing, the XC6VLX75T-1FFG784C allows the user to compress data for efficient storage and processing of images, as well as performing high-speed image processing tasks such as scaling, sharpening, rotation, and color analysis.The XC6VLX75T-1FFG784C is also well-suited for Advanced Driver Assistance Systems (ADAS) and computer vision applications. It can process multiple imaging scenarios quickly and accurately, allowing the driver to make better decisions in real-time and keep the car safe.It is also used extensively in high-speed communication processing applications such as wireless communication, network security and control systems. In wireless communication, the XC6VLX75T-1FFG784C provides reliable and secure data transmission, optimizing bandwidth resources and reducing signal latency in outdoor and indoor environments.The XC6VLX75T-1FFG784C also allows for real-time low-power signal and data processing for artificial intelligence applications, such as speech and image recognition, and autonomous navigation.Finally, the XC6VLX75T-1FFG784C is well-suited for digital design and control systems. It has low latency, high-throughput and resource-efficient signal processing, allowing for precise and precise control of digital systems such as servo systems, robotics and safety systems.

Working Principle

FPGAs are composed of gates – circuits of interconnected transistors used to perform logical operations. These transistors are configured to perform specific tasks, as instructed by the user, after manufacturing.The user programs the FPGA with a hardware description language (HDL) such as VHDL or Verilog. In this way, the FPGA can be programmed to implement application-specific logic.The user first needs to define the logic in the form of a ‘netlist’. A netlist is a text file that describes the circuits and its interconnections. It is then compiled by the FPGA vendor’s design software and the resulting circuit image is stored on a configuration media such as a flash memory or EPROM.The FPGA is then configured by loading the compiled circuit image into the device’s internal memory (SRAM). This memory stores the logic configuration and can be changed on the fly, making FPGAs ideal for implementations where reconfiguration is required.Once the FPGA is configured, it can be used to perform specific operations. Depending on its application, it can offload computations from a processor, provide higher performance, more efficient power use and reduce latency.

Conclusion

The XC6VLX75T-1FFG784C is a powerful FPGA that can be used for a wide variety of applications. It is well-suited for image processing, Adas, high-speed communication processing, artificial intelligence, digital design and control systems. It draws its versatility from its fundamental working principle: transistors being configured to perform specific tasks, as instructed by the user, after manufacturing.

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