Update on the development branch #1599
kaiyux
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Hi,
The TensorRT-LLM team is pleased to announce that we are pushing an update to the development branch (and the Triton backend) this May 14, 2024.
This update includes:
trtllm-refit
is addedexamples/sample_weight_stripping/README.md
docs/source/advanced/weight-streaming.md
executor
APIModelRunnerCpp
so that it runs with theexecutor
API for IFB-compatible modelsSchedulerPolicy
with the same name inbatch_scheduler
andexecutor
, and rename it toCapacitySchedulerPolicy
.SchedulerPolicy
toSchedulerConfig
to enhance extensibility. The latter also introduces a chunk-based configuration calledContextChunkingPolicy
.use_context_fmha_for_generation
argument fromtrtllm-build
command since it’s not used anymoregenerate()
andgenerate_async()
APIs.A B
, the original generation result could be<s>A B C D E
where onlyC D E
is the actual output, and now the result isC D E
.add_special_token
in the TensorRT-LLM backend toTrue
make add_special_tokens/skip_special_tokens default value is true which align with hf setting triton-inference-server/tensorrtllm_backend#446, thanks to the contribution from @XiaobingSuper , and the changes are integrated in Update TensorRT-LLM backend triton-inference-server/tensorrtllm_backend#454.GptSession
andTrtGptModelV1
are marked as deprecatedtokens_per_block
argument oftrtllm-build
command to 64 for better performancemultiple_profiles
argument intrtllm-build
command builds more optimization profiles now for better performancedocs/source/kv_cache_reuse.md
Thanks,
The TensorRT-LLM Engineering Team
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