The AMD EPYC™ 9475F is a performance-optimized processor from the EPYC 9005 Series, purpose-built for enterprises, cloud providers, and HPC workloads that demand extreme compute density and high frequency. With 48 cores and 96 threads, it combines raw parallel performance with outstanding per-core speed, making it a top choice for modern data-intensive environments.
Featuring a 400W default TDP with configurable options, the EPYC 9475F delivers maximum performance for latency-sensitive workloads while providing flexibility for deployment in high-density servers.
Key Features
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Extreme Compute Density: 48 cores / 96 threads for scalable multi-threaded performance in enterprise, cloud, and HPC environments.
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High Frequency Leadership: 3.65 GHz base clock, all-core boost up to 4.4 GHz, and max boost up to 4.8 GHz for outstanding responsiveness.
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Massive Cache: 256MB L3 cache ensures efficient data access and optimized workload throughput.
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Next-Gen Memory Bandwidth: 12-channel DDR5 memory with speeds up to 6400 MT/s, delivering up to 614 GB/s per socket.
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Unmatched Connectivity: 128 PCIe® 5.0 lanes for ultra-fast I/O with GPUs, accelerators, and NVMe storage.
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Configurable Power: 400W TDP (adjustable down to 320W), allowing flexible performance-per-watt optimization.
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Deployment Versatility: Compatible with SP5 socket platforms, supporting both 1P and 2P server configurations.
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Latest Generation Availability: Launched October 2024, globally available across major markets.
Applications
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Cloud & Virtualization: Handles dense VM workloads and containerized applications with superior frequency scaling.
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Enterprise Databases & Analytics: Optimized for transaction-heavy workloads and large-scale data queries.
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High-Performance Computing (HPC): Excels in modeling, simulations, and complex compute workloads requiring fast execution.
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AI & Machine Learning: Ideal for inference and training tasks that demand a balance of core count and frequency.
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Performance-Critical Data Centers: Designed for organizations requiring maximum per-core performance and throughput.