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metadata
license: apache-2.0
task_categories:
  - text-generation
  - question-answering
language:
  - en
pretty_name: Fable 5.1's Style
tags:
  - fable 5.1
  - coding
  - synthetic
  - thinking
  - think
  - reason
  - reasoning
  - distill
  - distillation
  - agent
  - agentic
  - SFT
  - CoT
  - code
  - programming
  - thought
  - thoughts
  - SWE
  - tool-use
  - mythos 5.1
  - mythos
  - fable class
  - mythos class
  - fable 5
  - mythos 5
size_categories:
  - 100K<n<1M
configs:
  - config_name: default
    data_files:
      - split: train
        path: train.jsonl

Dataset Description

This dataset contains 10,000 agentic coding and reasoning multi-turn traces took from the Step 3.5 Flash SFT Code dataset.

It was remade to sound very similar to the Fable 5.1 model on max reasoning effort in Fable-5.1-Max-Reasoning-Filtered-10000x.

It holds over 2,000,000,000 tokens of step-by-step chain-of-thought programming across multiple complex coding domains.

It has also been deduplicated and filtered to remove no-reasoning and lower-quality traces, keeping only high-quality slow reasoning traces.

Dataset Statistics

Metric Value
Total Examples 473,635 Traces
Total Token Count ~2,000,000,000 Tokens
Total Dataset Size 6.8 GB
Average Trace Size 14.3 KB
Average Token Count ~4,500 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-style agentic coding and reasoning 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.