Part number: XC4VLX25-10SF363I
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XC4VLX25-10SF363I Component Specifications
General Information: The XC4VLX25-10SF363I is a high-performance field-programmable gate array (FPGA) component renowned for its advanced capabilities and versatility in electronic design applications. This component offers exceptional processing power, flexibility, and reliability, making it a preferred choice for complex digital systems and signal processing tasks.
Specifications
- Architecture: Utilizes a sophisticated architecture with a high logic density and extensive routing resources, enabling the implementation of intricate logic functions and algorithms.
- Speed Grade: Operates at a speed grade of 10, providing rapid data processing and efficient performance for time-critical applications.
- Package Type: Housed in a compact SF363I package, ensuring space-efficient integration into electronic designs while maintaining thermal considerations.
- Configuration: Supports in-system programmability, allowing users to reconfigure the FPGA's logic functions and interconnections as needed for dynamic applications.
Applications
- Telecommunications: Ideal for telecommunications infrastructure, networking equipment, and data processing systems requiring high-speed data handling and signal processing capabilities.
- Embedded Systems: Well-suited for embedded system designs, industrial automation, and control applications that demand real-time processing and customization.
- Image and Signal Processing: Used in imaging systems, video processing, and digital signal processing (DSP) applications that benefit from parallel processing and complex algorithms.
Compliance
Industry Standards: The XC4VLX25-10SF363I complies with industry standards for FPGA components, ensuring reliability, compatibility, and performance consistency across diverse electronic systems and designs.
Identification
The designation XC4VLX25-10SF363I provides key details about the FPGA component, including its capacity, speed grade, package type, and configurability, facilitating accurate selection and integration in advanced electronic projects.
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