AutoGEO_mini_Qwen1.7B_GEOBench

A lightweight web-document rewriting model fine-tuned with GRPO (reinforcement learning) from Qwen3-1.7B, developed as part of the AutoGEO framework introduced in:

WHAT GENERATIVE SEARCH ENGINES LIKE AND HOW TO OPTIMIZE WEB CONTENT COOPERATIVELY
Paper (arXiv): https://arxiv.org/abs/2510.11438


What this model does

AutoGEO_mini_Qwen1.7B_GEOBench rewrites raw web documents into improved versions that are better aligned with generative search enginesโ€™ preferences for GEO-Bench dataset.

In our experiments/usage:

  • The total cost is about 0.0071ร— the cost of gemini-2.5-pro for comparable rewriting workloads.
  • Rewritten documents achieve significant improvements in GEO metrics.

Training summary

  • Base model: Qwen3-1.7B
  • Method: GRPO-based reinforcement learning fine-tuning
  • Task: Rewrite original web documents to improve GEO metrics (per the AutoGEO framework in the paper above)

Repository contents

This repository includes the standard inference artifacts (e.g., model.safetensors, config.json, tokenizer.json, chat_template.jinja, etc.) required to load and run the model with transformers.


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