vllm
https://github.com/vllm-project/vllm
Python
A high-throughput and memory-efficient inference and serving engine for LLMs
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- Issues
- docs: clarify NIXL KV connector metrics aggregation semantics
- [CI Failure]: (MI355) Core Operation Kernels Shard 1: kernels/test_concat_mla_q.py::test_concat_mla_q_fp8_nope_and_rope
- [Bug]: Cross-encoder `padding="max_length"` produces incorrect `token_type_ids`
- [Bug]: `--api-key` is bypassed by `/invocations`, unauthenticated inference on a server that requires a key
- [Bug]: Mistral's "always adjust_request" grammar path rebuilds the tool parser and compiles regex over the full vocab on the main event loop, on every request — even tool_choice="none"
- [Bug]: Qwen3 parser turns tool-call markup the model quotes into real tool calls (names outside request.tools, and duplicates of offered ones)
- [Rocm][Bugfix][Quantization] Auto-enable EP for Qwen3.8-Flash-Next-FP8 when FP8 MoE TP would fail block_n alignment
- [Bugfix][Distributed] Preserve symmetric collective outputs
- [Kernel][ROCm] kv split decoding kernel for RDNA3/4
- [Perf][DSv4.1] Keep activations MXFP8 between DeepGEMM kernels
- Docs
- Python not yet supported