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01zetomatoz /guidellm-agentic-coding-trajectories GuideLLM agentic coding trajectories A sampled serving-load benchmark derived from Thoughtworks agentic-coding-trajectories, for GuideLLM and an OpenAI-compatible /v1/chat/completions endpoint. There are 630 rows representing 481 unique source sessions, across the same 8turn, 24turn, and 48turn configurations as the earlier version. The configuration names now refer to original logical steps, not always HTTP request counts. Native tool steps expand into a tool-call request and a… See the full description on the dataset page: https://huggingface.co/datasets/zetomatoz/guidellm-agentic-coding-trajectories.tabulartext-generationn<1K5 likes344 downloads7d agoHugging Face02thoughtworks /agentic-coding-trajectories agentic-coding-trajectories A unified, tokenized corpus of 15,000 multi-turn agentic-coding sessions (618K turns, 41 turns/session avg) drawn from three publicly-released upstream datasets. Built for benchmarking LLM serving systems on realistic multi-turn coding-agent workloads. Why this exists Most LLM serving benchmarks use single-shot prompts. Real coding agents work in long multi-turn loops where each turn appends to a growing prompt. This corpus captures that shape… See the full description on the dataset page: https://huggingface.co/datasets/thoughtworks/agentic-coding-trajectories.tabulartext-generation10K<n<100K1 likes331 downloads5mo agoHugging Face03witcheer /local-agentic-coding-bench-8gb-vram-2026-05 agentic coding benchmark: local LLMs on 8GB VRAM can local LLMs do agentic coding (multi-turn tool calling, file creation, debugging) on consumer hardware? this dataset captures real test results. hardware GPU: NVIDIA RTX 4060 Ti 8GB CPU: Intel i7-14700F RAM: 32 GB DDR5 OS: Windows 11 + WSL2 (Ubuntu) inference: llama-server (turboquant fork of llama.cpp) what was tested two agent frameworks: Hermes Agent (NousResearch): structured tool calling with… See the full description on the dataset page: https://huggingface.co/datasets/witcheer/local-agentic-coding-bench-8gb-vram-2026-05.tabulartext-generationn<1K8 likes87 downloads5mo agoHugging Face04thangquang09 /agentic-coding-traces Agentic Coding Mooncake Traces Synthetic agentic coding benchmark datasets in Mooncake trace (JSONL) format, generated with AIPerf 0.9.0 for LLM inference benchmarking. Designed for use with InferenceX via the agentic-replay scenario-type and aiperf_adapter.py. Files File Sessions Turns max_prompt_tokens Seed 64k/dataset.jsonl 1,000 18,595 65,536 42 128k/dataset.jsonl 1,000 16,957 131,072 42 Format Each line is a Mooncake trace… See the full description on the dataset page: https://huggingface.co/datasets/thangquang09/agentic-coding-traces.tabulartext-generation10K<n<100K0 likes29 downloads4mo agoHugging Face

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