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xvencedor/gemma-3-27b-it-abliterated

xvencedor Gemma 27B multimodal
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Response includes
  • classification m1
  • files 25
  • benchmarks 16 entries
  • hub_downloads_all_time 32
  • author_summary 1 models
  • readme_text full
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Abliteration classifier · v1.0.0
M1
Primary method

Direct removal

No other method signals detected in this model.
Confidence
MEDIUM
Why this label 3 signals
Method inferred from partial signals - repository name, related files, or tag patterns. Producer identity not confirmed; label may sharpen or shift as we gather more evidence.
  • 'abliterated' in name/tags
  • is_gguf=0 (base model)
  • no specific method indicators - defaulting to M1 (most common)
Refusal direction extracted via
Extraction technique

Difference-of-means

Confidence
MEDIUM
Why we say so
primary_method=M1; difference-of-means is the reference extraction for M1/M3 (Arditi 2024)
Downloads · lifetime
32
8 last 30d - stable
Likes
0
Model age
7mo ago
created 2026-02-20
Downloads over time
Now36→from7↑414%
61728397 on Feb 1836 on Oct 1136 on Oct 7FebAprJunAugOct
Feb 18 → Oct 11 · 73 snapshots · spans 235 days

Benchmarks

Portrait before abliteration
Benchmarks of the base model as it stood before the refusal-removal operation. Compare with the numbers above to see what the operation cost.
Benchmark Score Source
Arena-Battles 37211 LM-Arena
LM Arena Elo 1358.3955692803715 LM-Arena
Arena-Elo-Lower 1354.342781362301 LM-Arena
Arena-Elo-Upper 1362.4483571984422 LM-Arena
Arena-Rank 37 LM-Arena
Entertainment 1.1 UGI
Hazardous 2.4 UGI
Natural Intelligence 34.45 UGI
Political lean -14.2% UGI
Sensitive-Info 20.64 UGI
SocPol 3 UGI
UGI 20.43 UGI
Willingness (10) 2 UGI
W10-Adherence 0 UGI
W10-Direct 4 UGI
Writing 44.99 UGI

Genealogy 0 direct forks

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Metadata

License
gemma
Tags
transformers safetensors gemma3 image-text-to-text conversational base_model:google/gemma-3-27b-it base_model:finetune:google/gemma-3-27b-it license:gemma text-generation-inference endpoints_compatible region:us

Related

Total size
51.1 GB
Files
25
Quantizations
1
Registered
2026-08-22 13:56
Last updated on HF
2026-02-20 02:21

Files by quantization

Auxiliary files 25 files 51.1 GB
model-00004-of-00012.safetensors 4.61 GB d930ce4c download
model-00005-of-00012.safetensors 4.61 GB 9ecaf8fa download
model-00006-of-00012.safetensors 4.61 GB 032ef583 download
model-00007-of-00012.safetensors 4.61 GB 98e92d3e download
model-00008-of-00012.safetensors 4.61 GB 0253f845 download
model-00009-of-00012.safetensors 4.61 GB 5cfde30f download
model-00010-of-00012.safetensors 4.61 GB 55288666 download
model-00011-of-00012.safetensors 4.61 GB a1228266 download
model-00003-of-00012.safetensors 4.61 GB a3c6b831 download
model-00002-of-00012.safetensors 4.61 GB 47d34873 download
model-00001-of-00012.safetensors 4.52 GB 6b72a7c6 download
model-00012-of-00012.safetensors 441 MB c9a96297 download
tokenizer.json 31.8 MB 4667f208 download
tokenizer.model 4.47 MB 1299c11d download
tokenizer_config.json 1.10 MB 7bdd14f0 download
model.safetensors.index.json 124 KB 85edb4d6 download
README.md 2.02 KB 45a6f9e9 download
config.json 1.58 KB 55a7a09f download
chat_template.json 1.58 KB 719b0cd0 download
.gitattributes 1.53 KB 52373fe2 download
special_tokens_map.json 662 B 1a619324 download
preprocessor_config.json 570 B b1e00fc1 download
generation_config.json 192 B f60a6730 download
processor_config.json 70.0 B 453c7966 download
added_tokens.json 35.0 B e17bde03 download

README current version from Hugging Face


license: gemma
library_name: transformers
pipeline_tag: image-text-to-text
base_model: google/gemma-3-27b-it

💎 Gemma 3 27B IT Abliterated

image/png

Gemma 3 1B Abliterated • Gemma 3 4B Abliterated • Gemma 3 12B Abliterated

This is an uncensored version of google/gemma-3-27b-it created with a new abliteration technique.
See this article to know more about abliteration.

I was playing with model weights and noticed that Gemma 3 was much more resilient to abliteration than other models like Qwen 2.5.
I experimented with a few recipes to remove refusals while preserving most of the model capabilities.

Note that this is fairly experimental, so it might not turn out as well as expected.

I recommend using these generation parameters: temperature=1.0, top_k=64, top_p=0.95.

⚡️ Quantization

✂️ Layerwise abliteration

image/png

In the original technique, a refusal direction is computed by comparing the residual streams between target (harmful) and baseline (harmless) samples.

Here, the model was abliterated by computing a refusal direction based on hidden states (inspired by Sumandora's repo) for each layer, independently.
This is combined with a refusal weight of 1.5 to upscale the importance of this refusal direction in each layer.

This created a very high acceptance rate (>90%) and still produced coherent outputs.

README history 1 version

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

  1. 2026-02-20Duplicate from mlabonne/gemma-3-27b-it-abliterateda1557e52 KB
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