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tvm_mlir_learn

> 编程语言
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编译器学习资源收集。

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编译器学习资源收集。

tvm_mlir_learn

Learning notes and experiments for deep learning compilers.

This repository collects examples around TVM, MLIR, LLVM, TorchScript, Relay, code generation, scheduling, and compiler-guided kernel optimization. It is kept as a public learning archive for AI compiler systems.

Contents

  • scheduler/: TVM scheduler examples and scheduling experiments.
  • dataflow_controlflow/: small examples comparing data flow and control flow concepts.
  • paper_reading/: notes for compiler and ML systems papers such as PET, Ansor, and MLIR-related work.
  • relay/: Relay examples, custom pass experiments, and model deployment demos.
  • codegen/: TVM code generation examples based on tensor expressions and Relay IR.
  • torchscript/: TorchScript usage examples.
  • optimize_gemm/: GEMM optimization experiments guided by compiler ideas.
  • compile_tvm_in_docker.md: TVM build notes in Docker.

Related Repositories

  • CUDA and GPU optimization: https://github.com/BBuf/how-to-optim-algorithm-in-cuda
  • Deep learning framework notes: https://github.com/BBuf/how-to-learn-deep-learning-framework

Status

Legacy learning archive. I may still reference this repository, but new public-facing documentation will use English entry points.

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核心特点

  • •scheduler/: TVM scheduler examples and scheduling experiments.
  • •dataflow_controlflow/: small examples comparing data flow and control flow concepts.
  • •paper_reading/: notes for compiler and ML systems papers such as PET, Ansor, and MLIR-related work.
  • •relay/: Relay examples, custom pass experiments, and model deployment demos.
  • •codegen/: TVM code generation examples based on tensor expressions and Relay IR.
  • •torchscript/: TorchScript usage examples.
  • •optimize_gemm/: GEMM optimization experiments guided by compiler ideas.
  • •compile_tvm_in_docker.md: TVM build notes in Docker.
  • •CUDA and GPU optimization: https://github.com/BBuf/how-to-optim-algorithm-in-cuda
  • •Deep learning framework notes: https://github.com/BBuf/how-to-learn-deep-learning-framework

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发布日期2026年8月1日
最后更新2026年9月17日
分类编程语言
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