Datasets:
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{
"role": "system",
"content": "You are an autonomous coding agent running on the user's machine.\n\nYou work in the current directory of a real repository. Use your tools to read, search, create, and edit files and to run shell commands (tests, builds, type-checkers). Some tools are deferred: only their na... |
[{"role":"system","content":"You are an autonomous coding agent running on the user's machine.\n\nYo(...TRUNCATED) |
[{"role":"system","content":"You are an autonomous coding agent running on the user's machine.\n\nYo(...TRUNCATED) |
[{"role":"system","content":"You are an autonomous coding agent running on the user's machine.\n\nYo(...TRUNCATED) |
[{"role":"system","content":"You are an autonomous coding agent running on the user's machine.\n\nYo(...TRUNCATED) |
[{"role":"system","content":"You are an autonomous coding agent running on the user's machine.\n\nYo(...TRUNCATED) |
[{"role":"system","content":"You are an autonomous coding agent running on the user's machine.\n\nYo(...TRUNCATED) |
[{"role":"system","content":"You are an autonomous coding agent running on the user's machine.\n\nYo(...TRUNCATED) |
[{"role":"system","content":"You are an autonomous coding agent running on the user's machine.\n\nYo(...TRUNCATED) |
[{"role":"system","content":"You are an autonomous coding agent running on the user's machine.\n\nYo(...TRUNCATED) |
Dataset Description
This dataset contains 5,000 agentic coding and reasoning multi-turn traces generated by the new Fable 5.1 model using max reasoning effort.
It holds almost 150,000,000 tokens of step-by-step chain-of-thought programming across multiple complex domains.
It has also been deduplicated and heavily filtered to remove low-quality traces, keeping only high-quality traces.
Dataset Statistics
| Metric | Value |
|---|---|
| Total Examples | 5,000 Traces |
| Total Token Count | ~200,000,000 Tokens |
| Total Dataset Size | 621 MB |
| Average Trace Size | 124.4 KB |
| Average Token Count | ~40,000 Tokens |
Dataset Contents & Coverage
The dataset includes step-by-step problem-solving for complex coding tasks, including:
Algorithm design, implementation, and performance optimization.
Advanced debugging and error-handling.
Multi-step logic design and compliance with complex prompt constraints.
Uses
Distilling Fable 5.1 agentic coding and reasoning capabilities down to smaller LLMs.
Improve general coding and reasoning quality.
Teaching models to generate clear chain-of-thought steps and tool-use before outputting their final answer.
Exp addition
An experimental 10K row full dataset has been released, but it may not be fully ready for training.
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