
Altera Corporation
EP4CGX30BF14I8N
EP4CGX30BF14I8N ECAD Model
EP4CGX30BF14I8N Attributes
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EP4CGX30BF14I8N Overview
The chip model EP4CGX30BF14I8N is a field programmable gate array (FPGA) designed by Altera Corporation and released in 2011. This model is based on the company’s Cyclone IV GX series and is a 28nm low-power FPGA. It is suitable for a variety of applications, such as high-speed data acquisition, image processing, and motor control.
The EP4CGX30BF14I8N chip model has a number of advantages. It has a high-performance logic element, which can support up to 1,400,000 logic elements and up to 6,500 Kbits of embedded memory. It also has a flexible I/O structure, with up to 1,824 user-configurable I/Os, and a wide range of on-chip transceivers, including Gigabit Ethernet, USB, PCIe, and SRIO. In addition, the EP4CGX30BF14I8N chip model has a low power consumption, which is an important factor in many applications.
In terms of future industry trends, the EP4CGX30BF14I8N chip model is expected to see steady growth in demand. This is due to its high performance and low power consumption, as well as its ability to support a wide range of applications. It is likely to be used in a variety of industries, including automotive, medical, and industrial automation. In addition, the EP4CGX30BF14I8N chip model is expected to be used in advanced communication systems, such as 5G networks and the Internet of Things.
The original design intention of the EP4CGX30BF14I8N chip model was to provide a high-performance, low-power FPGA solution for a variety of applications. The chip model is designed to be flexible, with a wide range of on-chip transceivers and configurable I/Os. It is also designed to be upgradeable, allowing for future upgrades as new technologies emerge.
In conclusion, the EP4CGX30BF14I8N chip model is a high-performance, low-power FPGA with a wide range of on-chip transceivers and configurable I/Os. It is expected to see steady growth in demand in the future, and is likely to be used in a variety of industries, including automotive, medical, and industrial automation. It is also designed to be upgradeable, allowing for future upgrades as new technologies emerge, and can be applied to advanced communication systems, such as 5G networks and the Internet of Things.
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