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2개 GitHub 저장소에서 수집된 21개 skills를 저장소 단위로 보여줍니다.

수집된 skills
21
저장소
2
업데이트
2026-07-20
저장소 탐색

저장소와 대표 skills

이 저장소에서 수집된 skills 14개 중 상위 8개를 표시합니다.
ascend-timeline
소프트웨어 개발자

Pull and analyze inference timelines on Ascend with lmdeploy+dlinfer. Covers profiling script templates, delay selection, raw timeline handling, fixed-real-batch decode/KV-context audit, and analysis reporting.

2026-07-20
lmdeploy-service-launch
네트워크·컴퓨터 시스템 관리자

Start, monitor, and stop lmdeploy REST API services for any supported device/backend. Use when Codex needs to run `lmdeploy serve api_server` for a model path, choose model names from the model being served, set backend/device/max-batch/cache and user-provided parallel strategy flags, run outside the sandbox when devices are unavailable inside it, preserve server logs, check readiness, handle port conflicts, and cleanly stop the service before another run.

2026-07-07
restful-pressure-benchmark
소프트웨어 품질 보증 분석가·테스터

Run RESTful pressure benchmarks with lmdeploy's profile_restful_api.py after starting an lmdeploy API service. Use when Codex needs to choose ShareGPT native-length or random-length workloads, set tokenizer/model/client parameters without hard-coding qwen, compare models or max-batch settings, preserve logs, inspect running batch and KV cache behavior, and report throughput and cache/OOM handling.

2026-07-07
op-callchain
소프트웨어 개발자

The operator call chain in lmdeploy+dlinfer — the five layers every op crosses from model.forward() down to torch_npu/aclnn kernels, and how to trace or add a new op. Uses fused MoE (Qwen3.5 MoE) on Ascend as the worked example.

2026-07-03
graph-mode-internals
소프트웨어 개발자

Understand the complete graph mode flow in lmdeploy+dlinfer, covering the runner architecture, buffer management, vendor differences, and common pitfalls.

2026-06-30
precision-align
소프트웨어 개발자

Debug precision regressions in lmdeploy+dlinfer on domestic AI hardware (Ascend / CAMB / MACA) by comparing against a reference implementation.

2026-06-30
support-new-model
소프트웨어 개발자

Add support for a new model (already in lmdeploy's CUDA backend) on domestic AI hardware (Ascend / CAMB / MACA) via dlinfer.

2026-06-30
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