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Upload OpenThinkerAgent 32B AWQ int4 Terminus-2 quantization
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metadata
base_model: open-thoughts/OpenThinkerAgent-32B
model_name: eewer/OpenThinkerAgent-32B-AWQ-Int4-Terminus2
library_name: transformers
pipeline_tag: text-generation
tags:
  - qwen3
  - openthinker-agent
  - awq
  - 4-bit
  - areal-teacher

OpenThinkerAgent-32B AWQ Int4

This repository contains an AWQ quantized checkpoint of open-thoughts/OpenThinkerAgent-32B prepared for OPD/KDRL teacher-logprob use in AReaL.

Quantization

  • Source model: open-thoughts/OpenThinkerAgent-32B
  • Source revision: 65d8a62b87c8d3d34bc45108a7ad87635318db9f
  • Dataset: /wbl-fast/usrs/ee/clean-20260619/terminal-agent-rl/areal_runs/terminal-agent-demo/data/skill_based_medium.even.terminus2.slime_messages.jsonl
  • Calibration samples: 128
  • Calibration seed: 7
  • Max calibration token window per sample: 2048
  • AutoAWQ max_calib_seq_len: 2048
  • AutoAWQ n_parallel_calib_samples: 1
  • AutoAWQ max_chunk_memory: 256 MiB
  • Quantization: W4A16, group size 128, zero point True, version GEMM
  • Modules left unquantized: lm_head
  • duo_scaling: True
  • apply_clip: True
  • Torch: 2.11.0+cu128
  • CUDA: 12.8
  • AutoAWQ: 0.2.9
  • Started: 2026-06-24T22:09:24.999975+00:00
  • Finished: 2026-06-25T01:31:16.596143+00:00
  • Elapsed seconds: 12111.596

Calibration text is rendered from the Terminus-2 medium SFT messages with the Qwen3 chat template and enable_thinking=True, so thinking spans are preserved. The quantization keeps lm_head unquantized for quality.

AReaL Teacher Config

teacher:
  path: <this checkpoint>
  quantization_config:
    method: awq
    bits: 4
    group_size: 128
    zero_point: true
    version: gemm

The AReaL worker environment needs autoawq importable only when this quantized teacher path is used.