一个精心策划且带有主观倾向的论文、工具和资源清单,涵盖从硅片到服务系统的完整AI加速器技术栈。

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最近更新

2026-07-12

AI 仓库情报摘要
FR-AI / ANALYSIS

为什么值得关注

结合深度学习、计算机体系结构、编译器和GPU编程的全面结构化资源,包含经典论文和广泛采用的开源项目。

适合谁使用

  • 计算机体系结构或机器学习方向的学生(本科/研究生)
  • 从事AI加速器设计的研究人员
  • 优化内核或构建服务系统的工程师
  • 探索AI专用ASIC/FPGA/NPU的硬件设计师

典型使用场景

  • 从硅片到软件系统地学习AI加速器基础知识
  • 查找特定加速技术(如量化、FlashAttention)的经典论文和工具
  • 了解当前AI推理优化方法的最新进展
  • 为课程设计或加速器架构自学提供参考

项目优势

  • 同时涵盖基础AI概念和底层硬件/软件栈
  • 包含许多近期有影响力的论文(如FlashAttention、PagedAttention、DeepSeek)
  • 按清晰分类组织,链接到高质量外部资源
  • 经过主观筛选,聚焦经典且广泛采用的项目

使用前须知

  • 可能未包含所有资源或最新前沿工作
  • 主观筛选导致部分主题或观点被遗漏
  • 静态列表,需要手动更新以保持时效性

README 快速开始

Awesome AI Accelerators

A curated list of papers, tools, and resources for AI accelerators — spanning the entire stack from silicon to serving systems.

AI accelerators are the engines behind modern machine learning — the GPUs, TPUs, NPUs, and custom ASICs that make training and inference practical at scale. Building and programming them is a deeply interdisciplinary craft that spans deep learning, computer architecture, compilers, GPU programming, RTL design, and physical implementation.

This list is a curated, opinionated map of that landscape. It favors canonical papers and widely adopted open-source projects over exhaustive coverage. Whether you are an undergraduate taking your first architecture course, a PhD student researching dataflow architectures, or an engineer optimizing kernels at a frontier lab, the goal is to give you the best resource for each topic — and a clear path through the rest.


Contents

项目描述

A curated list of AI accelerator papers, resources, tools, and open-source projects.

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