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McG-221/gemma-3-12b-it-vl-Polaris-GLM-4.7-Flash-VAR-Thinking-Instruct-Heretic-Uncensored-mlx-8Bit

McG-221 Gemma 12B multimodal second-order
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Response includes
  • classification m3
  • files 14
  • benchmarks 11 entries
  • hub_downloads_all_time 15,759
  • author_summary 23 models
  • readme_text full
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Abliteration classifier · v1.0.0
M3
Primary method

Layer-wise ablation

Applied on top of direct removal inherited from the base model.
Confidence
HIGH
Inherited from base model
Why this label 2 signals
Producer identity confirmed by naming conventions, tags or the model card. This label is very unlikely to change.
  • 'heretic' in model name (Heretic-produced)
  • Heretic uses layer-wise optimization (M3) with underlying direction removal (M1)
Refusal direction extracted via
Extraction technique

Difference-of-means

Confidence
HIGH
Why we say so
name contains 'heretic'; Heretic default extraction is difference-of-means (Arditi 2024)
Downloads · lifetime
16K
1K last 30d - cooling
Likes
3
Model age
8mo ago
created 2026-02-06

Training datasets

Corpora the author lists in the model card. Datasets tracked in our /datasets catalog carry a category badge linking to the workflow stage. Others open on Hugging Face.

Downloads over time
Now16.1K→from140↑11,429%
05.9K11.8K17.7K140 on Feb 416.1K on Oct 11FebAprJunAugOct
Feb 4 → Oct 11 · 75 snapshots · spans 249 days

Benchmarks

Benchmark Score Source
Entertainment 0.8 UGI
Hazardous 1.8 UGI
Natural Intelligence 18.6 UGI
Political lean -19.8% UGI
Sensitive-Info 9.98 UGI
SocPol 0.7 UGI
UGI 19.15 UGI
Willingness (10) 3.8 UGI
W10-Adherence 2.5 UGI
W10-Direct 5 UGI
Writing 29.7 UGI

Genealogy 0 direct forks

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Metadata

License
apache-2.0
Languages
en
Tags
transformers safetensors gemma3 image-text-to-text uncensored heretic abliterated unsloth finetune All use cases bfloat16 creative

Related

Total size
11.6 GB
Files
14
Quantizations
1
Registered
2026-08-22 13:56
Last updated on HF
2026-02-06 01:07

Files by quantization

Auxiliary files 14 files 11.7 GB
model-00001-of-00003.safetensors 4.99 GB 81d7c49d download
model-00002-of-00003.safetensors 4.99 GB da80f703 download
model-00003-of-00003.safetensors 1.67 GB 5f5e3f53 download
tokenizer.json 31.8 MB 4667f208 download
tokenizer.model 4.47 MB 1299c11d download
tokenizer_config.json 1.10 MB ba114d51 download
model.safetensors.index.json 129 KB 11123d7c download
config.json 3.08 KB 91aa4155 download
README.md 1.76 KB 033dce7d download
.gitattributes 1.53 KB 52373fe2 download
chat_template.jinja 1.50 KB 1117055a download
special_tokens_map.json 662 B 1a619324 download
generation_config.json 186 B ce59f539 download
added_tokens.json 35.0 B e17bde03 download

README current version from Hugging Face


license: apache-2.0
datasets:

  • TeichAI/glm-4.7-2000x
  • TeichAI/polaris-alpha-1000x
    language:
  • en
    base_model: DavidAU/gemma-3-12b-it-vl-Polaris-GLM-4.7-Flash-VAR-Thinking-Instruct-Heretic-Uncensored
    pipeline_tag: image-text-to-text
    library_name: transformers
    tags:
  • uncensored
  • heretic
  • abliterated
  • unsloth
  • finetune
  • All use cases
  • bfloat16
  • creative
  • creative writing
  • fiction writing
  • plot generation
  • sub-plot generation
  • story generation
  • scene continue
  • storytelling
  • fiction story
  • science fiction
  • romance
  • all genres
  • story
  • writing
  • vivid prosing
  • vivid writing
  • fiction
  • mlx
  • mlx-my-repo

McG-221/gemma-3-12b-it-vl-Polaris-GLM-4.7-Flash-VAR-Thinking-Instruct-Heretic-Uncensored-mlx-8Bit

The Model McG-221/gemma-3-12b-it-vl-Polaris-GLM-4.7-Flash-VAR-Thinking-Instruct-Heretic-Uncensored-mlx-8Bit was converted to MLX format from DavidAU/gemma-3-12b-it-vl-Polaris-GLM-4.7-Flash-VAR-Thinking-Instruct-Heretic-Uncensored using mlx-lm version 0.29.1.

Use with mlx

pip install mlx-lm
from mlx_lm import load, generate

model, tokenizer = load("McG-221/gemma-3-12b-it-vl-Polaris-GLM-4.7-Flash-VAR-Thinking-Instruct-Heretic-Uncensored-mlx-8Bit")

prompt="hello"

if hasattr(tokenizer, "apply_chat_template") and tokenizer.chat_template is not None:
    messages = [{"role": "user", "content": prompt}]
    prompt = tokenizer.apply_chat_template(
        messages, tokenize=False, add_generation_prompt=True
    )

response = generate(model, tokenizer, prompt=prompt, verbose=True)

README history 1 version

The author's README evolved over time. Click a version to see its content at that point.

  1. 2026-02-06Upload README.md with huggingface_hub907c0ec1.8 KB
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