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This dataset contains anonymized tool-calling conversations for approved research, evaluation, and model-development use. Access requests are reviewed manually.

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Tool Calling Conversations

An Arena-style dataset of anonymized, multi-turn conversations focused on real-world tool use. It is intended for research, evaluation, and training of models that decide when and how to call tools.

The conversations include:

  • Tool selection and no-tool decisions
  • Structured tool arguments
  • Sequential and parallel tool calls
  • Tool results and error recovery
  • Multi-step agent workflows
  • Final responses after tool execution

Data is organized into date-partitioned Parquet files. Each row contains one complete conversation trace with its tool calls and results. Flexible nested payloads are stored losslessly in metadata_json, input_json, and output_json; parse these JSON strings before training or analysis.

processing.py provides streaming normalize and decode commands plus importable normalize_trace and decode_trace helpers for arbitrary JSON-compatible contexts.

Access

The repository is publicly discoverable, but files require a manually approved access request.

Access does not grant permission to redistribute the data or attempt to identify users represented in it.

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