XCV2000E-8FG1156C Allicdata Electronics
Allicdata Part #:

XCV2000E-8FG1156C-ND

Manufacturer Part#:

XCV2000E-8FG1156C

Price: $ 0.00
Product Category:

Integrated Circuits (ICs)

Manufacturer: Xilinx Inc.
Short Description: IC FPGA 804 I/O 1156FBGA
More Detail: N/A
DataSheet: XCV2000E-8FG1156C datasheetXCV2000E-8FG1156C Datasheet/PDF
Quantity: 1000
Stock 1000Can Ship Immediately
Specifications
Series: Virtex®-E
Part Status: Obsolete
Number of LABs/CLBs: 9600
Number of Logic Elements/Cells: 43200
Total RAM Bits: 655360
Number of I/O: 804
Number of Gates: 2541952
Voltage - Supply: 1.71 V ~ 1.89 V
Mounting Type: Surface Mount
Operating Temperature: 0°C ~ 85°C (TJ)
Package / Case: 1156-BBGA
Supplier Device Package: 1156-FBGA (35x35)
Base Part Number: XCV2000E
Description

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Embedded - FPGAs (Field Programmable Gate Array)

Field Programmable Gate Array (FPGA) is an integrated circuit (IC) that can be programmed directly after manufacturing to meet the specific application needs of the user. XCV2000E-8FG1156C is a type of FPGA which is designed for high-speed applications and can be used to process large-scale data quickly. FPGAs provide the user with the flexibility to design the custom logic circuit without having to design the entire IC. This paper will discuss the application field and working principle of XCV2000E-8FG1156C FPGA.

The XCV2000E-8FG1156C FPGA is suitable for high-speed applications such as digital signal processing (DSP), video and imaging processing, automotive systems, machine learning and artificial intelligence, and networking. Its high-speed capabilities make it an ideal choice for applications that require high processing speed, real-time response, and parallel processing. In addition to its high-speed capabilities, the FPGA also offers the benefit of a compact form factor. Its compact size and low power consumption, make it suitable for use in portable and mobile devices.

The XCV2000E-8FG1156C FPGA is based on a leading IIR architecture which allows for efficient interconnectivity between different logic and memory elements. The architecture is also scalable, meaning that the FPGA can be tailored to different levels of applications and needs. It has an integrated static random access memory (SRAM) for storing configuration data, and a clock generator for generating the clock signals for various timing needs.

The XCV2000E-8FG1156C FPGA utilizes the Internal Programmable logic array (IPL), which enables the user to customize the logic operations and other components to suit their application. The IPL makes use of on-chip registers and operands to perform operations, and provides the user with greater flexibility than traditional FPGAs. The user can program the IPL to customize the desired output and create custom circuits. The IPL also provides the user with a way to manage the dynamic power requirements of the integrated circuit.

In addition to its IPL, the XCV2000E-8FG1156C FPGA also includes a large number of internal and external I/O ports. These I/O ports can be used to expand the functionalities of the FPGA and to provide extra features such as general-purpose timer and digital-to-analog converters. The I/O ports can be used to connect to external devices such as memories, ADC, DAC and other FPGAs.

Finally, the XCV2000E-8FG1156C FPGA also features multimode and high-speed embedded logic blocks which can be customized to suit the needs of the particular application. It also features a specialized set of features such as clock controllers, clock monitors, digital-to-analog converters, arithmetic logic units and arithmetic modules. These features provide the user with a wide range of options to tailor the FPGA to their specific application.

The XCV2000E-8FG1156C FPGA is an excellent choice for high-speed applications requiring real-time response and high-performance processing. With its customizable IPL, multimode and high-speed embedded logic blocks, large number of I/O ports and integrated SRAM, the FPGA is an ideal choice for a wide range of applications. Its flexibility and scalability enable users to tailor the FPGA to their specific requirements and create custom logic circuits without having to design the complete integrated circuit.

The specific data is subject to PDF, and the above content is for reference

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