LAE3-17EA-6FN484E Allicdata Electronics
Allicdata Part #:

LAE3-17EA-6FN484E-ND

Manufacturer Part#:

LAE3-17EA-6FN484E

Price: $ 18.43
Product Category:

Integrated Circuits (ICs)

Manufacturer: Lattice Semiconductor Corporation
Short Description: IC FPGA 222 I/O 484FBGA
More Detail: N/A
DataSheet: LAE3-17EA-6FN484E datasheetLAE3-17EA-6FN484E Datasheet/PDF
Quantity: 1000
Lead Free Status / RoHS Status: Lead free / RoHS Compliant
Moisture Sensitivity Level (MSL): 3 (168 Hours)
300 +: $ 16.75070
Stock 1000Can Ship Immediately
$ 18.43
Specifications
Series: LA-ECP3
Part Status: Active
Lead Free Status / RoHS Status: --
Number of LABs/CLBs: 2125
Moisture Sensitivity Level (MSL): --
Number of Logic Elements/Cells: 17000
Total RAM Bits: 716800
Number of I/O: 222
Voltage - Supply: 1.14 V ~ 1.26 V
Mounting Type: Surface Mount
Operating Temperature: -40°C ~ 125°C (TJ)
Package / Case: 484-BBGA
Supplier Device Package: 484-FPBGA (23x23)
Base Part Number: LAE3-17EA
Description

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FPGAs, or field-programmable gate arrays, are a type of logic components embedded onto an integrated circuit. Their function is complex, yet straightforward: FPGAs take a set of logical instructions from a programmer and implement them as circuitry, enabled through a wiring pattern called a “configuration bit-stream”. This configuration bit-stream is sent to the FPGA to make sure the circuitry behaves as the programmer intended.

FPGAs are usually referred to by their part number, such as LAE3-17EA-6FN484E. This number will typically identify the architecture, the type of add-on components, the number of logic cells, the power output, and the topology of an FPGA. Through this number, one can also determine the capabilities of an FPGA and how suitable it is for any given task.

The specific architecture of an FPGA will determine how it is configured and thus how it behaves. For example, if the architecture of the LAE3-17EA-6FN484E FPGA is such that it can process input signals at 10-bit accuracy, any input signals that require higher precision would not be suitable. Similarly, due to its architecture, it may also lack the ability to send out output signals at 10-bit accuracy as well.

The type of add-on components within an FPGA will also determine its capabilities in terms of digital signal processing (DSP). For instance, the LAE3-17EA-6FN484E FPGA may include multiply-accumulate (MAC) blocks that can be used to perform digital signal-processing tasks, such as fast Fourier transforms (FFTs), wavelet transforms, and digital filters. The number of logic cells within an FPGA will determine how many operations it can perform in parallel, thereby determining its throughput.

The power output of an FPGA depends on its design and will also impact its performance. For example, the LAE3-17EA-6FN484E FPGA may be designed to consume a maximum of 5 watts, which would result in limited computational power. On the other hand, an FPGA designed to consume a maximum of 200 watts would result in greater computational power due to the greater power supply.

The topology of an FPGA will also influence its performance, as some topologies can impact the speed at which signals transit across the chip. The LAE3-17EA-6FN484E FPGA may employ, as an example, a bustopology, where all the logic cells are connected through a central hub. In this configuration, the signals will transit much faster than they would if the same FPGA were to employ a mesh topology.

One must consider all these factors when evaluating the capabilities and suitability of an FPGA, such as the LAE3-17EA-6FN484E, for any given task. Doing so will ensure the best possible results and performance from the FPGA.

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

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