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metadata
library_name: mlx
license: apache-2.0
pipeline_tag: image-text-to-text
tags:
  - mlx
  - qwen3_6
  - qwen3_5_moe
  - moe
  - coder
  - agent
  - tool-use
  - function-calling
  - image-text-to-text
  - long-context
  - vision
  - video
  - multimodal
  - bf16
language:
  - en
  - zh
  - es
  - ru
  - ja
base_model: Jackrong/Qwopus3.6-27B-Coder

mlx-community/Qwopus3.6-27B-Coder-bf16

This model mlx-community/Qwopus3.6-27B-Coder-bf16 was converted to MLX format from Jackrong/Qwopus3.6-27B-Coder using mlx-vlm version 0.4.4.

This is a BF16 MLX conversion. It keeps the source model's chat template and multimodal processor configuration for text/coding, image, and video-style inputs. The model weights were converted to BF16 MLX format; multimodal vision components are preserved.

Refer to the original model card for model details, license, and intended use.

Use with mlx

pip install -U mlx-vlm

Image input

python -m mlx_vlm.generate \
  --model mlx-community/Qwopus3.6-27B-Coder-bf16 \
  --max-tokens 512 \
  --temperature 0.0 \
  --prompt "Describe this image." \
  --image <path_to_image>

Text / coding input

python -m mlx_vlm.generate \
  --model mlx-community/Qwopus3.6-27B-Coder-bf16 \
  --max-tokens 512 \
  --temperature 0.2 \
  --prompt "Write a Python function that parses a JSONL file and counts records by label."

Notes

  • This is a BF16 MLX version of Jackrong/Qwopus3.6-27B-Coder.
  • The model is intended for Apple Silicon inference with MLX.
  • For multimodal usage, prefer mlx-vlm rather than plain mlx-lm.
  • License: Apache 2.0, inherited from the source model metadata.

Conversion

mlx_vlm.convert \
  --hf-path Jackrong/Qwopus3.6-27B-Coder \
  --mlx-path Qwopus3.6-27B-Coder-bf16 \
  --dtype bfloat16