5SGXMA7N2F40I3G

Altera 5SGXMA7N2F40I3G

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  • 5SGXMA7N2F40I3G
  • Altera
  • IC FPGA 600 I/O 1517FBGA
  • Embedded - FPGAs (Field Programmable Gate Array)
  • 5SGXMA7N2F40I3G Datasheet
  • 1517-BBGA, FCBGA
  • Tray
  • Lead free / RoHS CompliantLead free / RoHS Compliant
  • 4678
  • Spot Inventory / Athorized Dstributor / Factory Excess Stock
  • 1 year quality assurance 》
  • Click to get rates

What is 5SGXMA7N2F40I3G

Altera Part Number 5SGXMA7N2F40I3GEmbedded - FPGAs (Field Programmable Gate Array)), developed and manufactured by Altera, 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.

5SGXMA7N2F40I3G 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.

5SGXMA7N2F40I3G Specifications

  • Part Number5SGXMA7N2F40I3G
  • CategoryEmbedded - FPGAs (Field Programmable Gate Array)
  • ManufacturerAltera
  • DescriptionIC FPGA 600 I/O 1517FBGA
  • PackageTray
  • SeriesStratix® V GX
  • Voltage - Supply0.82V ~ 0.88V
  • Operating Temperature-40°C ~ 100°C (TJ)
  • Mounting TypeSurface Mount
  • Package / Case1517-BBGA, FCBGA
  • Supplier Device Package1517-FBGA (40x40)
  • Number of I/O600
  • Number of Gates-
  • Number of LABs/CLBs234720
  • Number of Logic Elements/Cells622000
  • Total RAM Bits51200000

Application of 5SGXMA7N2F40I3G

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.

5SGXMA7N2F40I3G Datasheet

5SGXMA7N2F40I3G Datasheet , Tray,Stratix® V GX,0.82V ~ 0.88V,-40°C ~ 100°C (TJ),Surface Mount,1517-BBGA, FCBGA,1517-FBGA (40x40),600,234720,622000,51200000

5SGXMA7N2F40I3G 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 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.

  • 2. Is FPGA faster than CPU?

    FPGAs are faster than CPUs in some cases. FPGAs are programmable hardware devices whose internal architecture can be configured by users as needed, which enables them to process multiple computing tasks in parallel, resulting in higher computing performance in some scenarios.
    FPGAs and CPUs have different architectures and design goals. CPUs are general-purpose processors that can perform a variety of tasks, but may require multiple clock cycles to process specific operations. FPGAs, on the other hand, achieve specific computing structures by reorganizing circuits, and have higher parallelism and efficiency. For example, when processing specific tasks such as signals and images, FPGAs can complete them faster than CPUs.
    The main advantage of FPGAs is their programmability and flexibility. FPGAs can be reprogrammed and reconfigured as needed, which enables designers to quickly test new and updated algorithms without developing and releasing new hardware, thereby speeding up time to market and saving costs. In addition, FPGAs offer the advantages of superior performance and reduced latency, and are suitable for real-time applications that require low latency and deterministic latency.

  • 3. Is FPGA analog or digital?

    FPGAs are digital. FPGAs (field programmable gate arrays) are integrated chips that are mainly digital circuits, not analog. FPGAs are a type of programmable logic device that processes digital signals instead of analog signals.
    FPGAs are a type of programmable logic device, a type of programmable logic device (PLD). It solves the shortcomings of traditional custom circuits, while also overcoming the shortcomings of the limited number of gate circuits in the original programmable devices. FPGA is a product that is further developed on the basis of traditional logic circuits and gate arrays such as PAL (Programmable Logic Array), GAL (General Array Logic), and CPLD (Complex Programmable Logic Device).
    The design process of FPGA includes the use of computer-aided design, by drawing schematic diagrams that implement user requirements, editing Boolean equations, or using hardware description languages ​​as design inputs. Then after a series of conversion programs, automatic layout and routing, and simulation processes, the FPGA data file is finally generated to initialize the FPGA device.

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Altera
Altera
Altera was founded in 1983 and is headquartered in San Jose, California. It has more than 2,600 employees in 19 countries. In 2015, Altera was acquired by Intel Corporation and became part of Intel Programmable Solutions Group....
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