EP2C35U484C6N Allicdata Electronics
Allicdata Part #:

EP2C35U484C6N-ND

Manufacturer Part#:

EP2C35U484C6N

Price: $ 108.39
Product Category:

Integrated Circuits (ICs)

Manufacturer: Intel FPGAs/Altera
Short Description: IC FPGA 322 I/O 484UBGA
More Detail: N/A
DataSheet: EP2C35U484C6N datasheetEP2C35U484C6N Datasheet/PDF
Quantity: 1000
168 +: $ 98.53270
Stock 1000Can Ship Immediately
$ 108.39
Specifications
Series: Cyclone® II
Part Status: Active
Number of LABs/CLBs: 2076
Number of Logic Elements/Cells: 33216
Total RAM Bits: 483840
Number of I/O: 322
Voltage - Supply: 1.15 V ~ 1.25 V
Mounting Type: Surface Mount
Operating Temperature: 0°C ~ 85°C (TJ)
Package / Case: 484-FBGA
Supplier Device Package: 484-UBGA (19x19)
Base Part Number: EP2C35
Description

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Embedded - FPGAs (Field Programmable Gate Array)Field programmable gate array (FPGA) technology refers to the ability of a manufactured device to be configured after its manufacture. This is done by programming a set of elements, like transistors, in order to create different internal designs and functionality. These types of devices are used in a wide variety of applications, from digital image processing and high-performance computing to embedded processor designs. The term FPGA usually implies a single large integrated device which is programmable, unlike programmable logic devices which exist in various sizes and densities.EP2C35U484C6N is an FPGA device manufactured by Altera Corporation for applications in embedded systems and high-performance computing. It is a member of the Cyclone III series of products from Altera and is designed for optimal performance in high density applications.The EP2C35U484C6N FPGA device features a large capacity of 34,000 logic elements, which allows for an unprecedented level of flexibility in its applications. With these logic elements it is possible to custom design an array of different functions as needed. The device can be used to create customized digital signal processing, image processing, and data storage applications with the highest levels of performance. Additionally, this FPGA device is well suited for high-speed networking, embedded device designs, and power optimization.The EP2C35U484C6N device has a total of 736 I/O pins which provide a tremendous amount of flexibility in terms of interconnectivity. This allows for data-driven connections and for routing signals between different devices as needed. Additionally, due to its large capacity, the device can be configured to take advantage of the performance of multiple FPGA devices. With this, data can be spread across different devices for faster execution, reducing overall execution time.The EP2C35U484C6N FPGA device is programmed using Verilog or VHDL, both of which are specialized hardware description languages. This means it can be programmed for a variety of functions, including the implementation of finite state machines, as well as design elements that require significant levels of customization. Additionally, programming this device requires experience in logic and circuitry design, as well as the use of debugging and analysis tools.In order to make the most out of this device, designers should take into account its features and performance. For example, due to its large memory and considering clock frequencies, the device can use maximum clock frequencies of 400 MHz, around twice as much as some of its predecessors. Additionally, since this device is made for embedded systems, its architecture is designed for low power and small footprints. With this in mind, designers should be conscious of power usage in order to get the best performance out of the device.In conclusion, the EP2C35U484C6N FPGA device is an excellent solution for applications in embedded systems and high-performance computing. Its features, such as its 34,000 logic elements and its 736 I/O pins, provide tremendous flexibility in designs and applications. Additionally, this device is programmed using hardware description languages like Verilog or VHDL, and requires knowledge in logic and circuitry design. When properly taken advantage of, this device can produce performance results that are superior to those of some of its predecessors.

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