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phd/weekly-report/25/251123.md
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phd/weekly-report/25/251123.md
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Objectives
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- Auto LLM inference config tuner
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Key Results
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- [6/10] Build the first version auto tuner system
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- [7/10] Check the current situation of parallelism config optimization
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- [4/10] Understand the possibility/challenges in LLM inference compute graph arrangement automatically
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- [0/10] Trace vLLM compute graph and data flow
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- [3/10] Implement a minimal Rust inference framework
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- [1/10] Define the IR for automatic optimization
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- [5/10] Profile different parallelism setup with real trace and analysis their difference
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- [0/10] Meta-analysis for the theory maximum improvement with heterogenous setup [offtrack]
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Last Week
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- [KR2] Benchmark different configs in different hardware, prove that different hardware and different workload will cause different trends of performance change. [5f2c1ec3](https://ipads.se.sjtu.edu.cn:1312/wangjh/auto-tuner/-/commit/5f2c1ec3692586031f3ecd452709a034d8217113) ~ [65d05520](https://ipads.se.sjtu.edu.cn:1312/wangjh/auto-tuner/-/commit/65d0552020041d5922e13172d9c40f8ef93a3985)
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- [KR1] Build a precise workload generator from real workload. Benchmark on _quite similar_ generated workloads and find that even the similar workloads still trigger different performance.
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Next Week
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- Find the root cause of performance gap under similar workloads.
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