← back to catalog · registered 2026-08-22 13:56

mradermacher/gemma-4-31B-it-abliterated-GGUF

mradermacher Gemma 31B GGUF second-order 262K ctx
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Response includes
  • classification m8
  • files 13
  • hub_downloads_all_time 257,797
  • author_summary 3324 models
  • readme_text full
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Abliteration classifier · v1.0.0
M8
Primary method

Repackaging (quantization)

Applied on top of direct removal inherited from the base model.
Confidence
HIGH
Inherited from base model
Why this label 3 signals
Producer identity confirmed by naming conventions, tags or the model card. This label is very unlikely to change.
  • author=mradermacher (M8 quantization producer, never originator)
  • is_gguf=1
  • base_model='wangzhang/gemma-4-31B-it-abliterated' (base has 'abliterated' marker, assume M1 default)
Refusal direction extraction

No specific extraction method could be identified for this model. The producer either did not document it or used a proprietary pipeline.

What is a refusal direction? →
Downloads · lifetime
258K
4K last 30d - cooling
Likes
6
Model age
6mo ago
created 2026-04-09
Downloads over time
Now260.3K→from1.8K↑14,418%
095.4K190.8K286.2K1.8K on Apr 10260.3K on Oct 11AprMayJunJulAugSepOct
Apr 10 → Oct 11 · 68 snapshots · spans 184 days

Genealogy 0 direct forks

Full fork graph →

This model's place in the market. Above: what it was derived from. Below: the tree of everything derived from it.

Variants by this author 2 formats · 6K downloads combined

The same weights this author released in different packaging. Pick the format that matches your runtime.

Metadata

License
gemma
Languages
en
Quantizations
IQ4 Q2_K Q3_K Q4_K Q5_K Q6_K Q8_0
Tags
transformers gguf abliterated uncensored gemma4 direct-weight-editing abliterix vllm llm-judge en base_model:wangzhang/gemma-4-31B-it-abliterated base_model:quantized:wangzhang/gemma-4-31B-it-abliterated

Related

Total size
197 GB
Files
13
Quantizations
8
Registered
2026-08-22 13:56
Last updated on HF
2026-08-30 20:31

Files by quantization

Q8_0 1 file 30.4 GB
gemma-4-31B-it-abliterated.Q8_0.gguf 30.4 GB 8cba04c8 download
Q6_K 1 file 23.5 GB
gemma-4-31B-it-abliterated.Q6_K.gguf 23.5 GB 2cfc7306 download
Q5_K 2 files 40.2 GB
gemma-4-31B-it-abliterated.Q5_K_M.gguf 20.3 GB f08f5bd7 download
gemma-4-31B-it-abliterated.Q5_K_S.gguf 19.8 GB e4f1bdf2 download
Q4_K 2 files 33.9 GB
gemma-4-31B-it-abliterated.Q4_K_M.gguf 17.4 GB 1b11e8ad download
gemma-4-31B-it-abliterated.Q4_K_S.gguf 16.5 GB 803aa580 download
IQ4 1 file 15.7 GB
gemma-4-31B-it-abliterated.IQ4_XS.gguf 15.7 GB 5130c71c download
Q3_K 3 files 42.5 GB
gemma-4-31B-it-abliterated.Q3_K_L.gguf 15.5 GB 468c8dd2 download
gemma-4-31B-it-abliterated.Q3_K_M.gguf 14.2 GB ccabbb67 download
gemma-4-31B-it-abliterated.Q3_K_S.gguf 12.8 GB d72c8ddb download
Q2_K 1 file 11.1 GB
gemma-4-31B-it-abliterated.Q2_K.gguf 11.1 GB 6569259e download
Auxiliary files 2 files 5.94 KB
README.md 3.66 KB 6595360b download
.gitattributes 2.28 KB 748c5fff download

README current version from Hugging Face


base_model: wangzhang/gemma-4-31B-it-abliterated
language:

  • en
    library_name: transformers
    license: gemma
    mradermacher:
    readme_rev: 1
    quantized_by: mradermacher
    tags:
  • abliterated
  • uncensored
  • gemma4
  • direct-weight-editing
  • abliterix
  • vllm
  • llm-judge

About

static quants of https://huggingface.co/wangzhang/gemma-4-31B-it-abliterated

For a convenient overview and download list, visit our model page for this model.

weighted/imatrix quants are available at https://huggingface.co/mradermacher/gemma-4-31B-it-abliterated-i1-GGUF

Usage

If you are unsure how to use GGUF files, refer to one of TheBloke's
READMEs
for
more details, including on how to concatenate multi-part files.

Provided Quants

(sorted by size, not necessarily quality. IQ-quants are often preferable over similar sized non-IQ quants)

Link Type Size/GB Notes
GGUF Q2_K 12.0
GGUF Q3_K_S 13.9
GGUF Q3_K_M 15.4 lower quality
GGUF Q3_K_L 16.7
GGUF IQ4_XS 17.0
GGUF Q4_K_S 17.9 fast, recommended
GGUF Q4_K_M 18.8 fast, recommended
GGUF Q5_K_S 21.4
GGUF Q5_K_M 21.9
GGUF Q6_K 25.3 very good quality
GGUF Q8_0 32.7 fast, best quality

Here is a handy graph by ikawrakow comparing some lower-quality quant
types (lower is better):

image.png

And here are Artefact2's thoughts on the matter:
https://gist.github.com/Artefact2/b5f810600771265fc1e39442288e8ec9

FAQ / Model Request

See https://huggingface.co/mradermacher/model_requests for some answers to
questions you might have and/or if you want some other model quantized.

Thanks

I thank my company, nethype GmbH, for letting
me use its servers and providing upgrades to my workstation to enable
this work in my free time.

README history 7 versions

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

  1. 2026-08-30auto-patch README.mdf5b7a123.7 KB
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  2. 2026-04-30auto-patch README.mdc3430d13.7 KB
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  3. 2026-04-10auto-patch README.md359b7433.6 KB
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  4. 2026-04-09auto-patch README.md298cb6d3.6 KB
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  5. 2026-04-09auto-patch README.mdf7de7ce3.8 KB
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  6. 2026-04-09auto-patch README.md598cf443.6 KB
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  7. 2026-04-09uploaded from nico1e633867379 B
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Discussions 1 thread

  1. 2026-04-10Updatedopen19 💬#1
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Catalog is the map. Apps are the tools.

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