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Ares133/gemma-3-27b-it-abliterated

Ares133 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
9 last 30d - stable
Likes
0
Model age
7mo ago
created 2026-02-23
Downloads over time
Now35→from6↑483%
51627386 on Feb 2535 on Oct 1135 on Oct 8FebAprJunAugOct
Feb 25 → Oct 11 · 72 snapshots · spans 228 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

Full fork graph →

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

Metadata

License
gemma
Languages
en
Tags
transformers safetensors gemma3 image-text-to-text abliterated uncensored conversational en base_model:google/gemma-3-27b-it base_model:finetune:google/gemma-3-27b-it license:gemma text-generation-inference

Related

Total size
51.1 GB
Files
25
Quantizations
1
Registered
2026-08-22 13:56
Last updated on HF
2026-02-23 15:37

Files by quantization

Auxiliary files 25 files 51.1 GB
model-00004-of-00012.safetensors 4.61 GB 8e4273bd download
model-00005-of-00012.safetensors 4.61 GB a664f352 download
model-00006-of-00012.safetensors 4.61 GB 9378e530 download
model-00007-of-00012.safetensors 4.61 GB ad897ea4 download
model-00008-of-00012.safetensors 4.61 GB 1c372e35 download
model-00009-of-00012.safetensors 4.61 GB f2dde22d download
model-00010-of-00012.safetensors 4.61 GB 1d7a4dff download
model-00011-of-00012.safetensors 4.61 GB 221f6820 download
model-00003-of-00012.safetensors 4.61 GB cc72446b download
model-00002-of-00012.safetensors 4.61 GB 2e51c6c6 download
model-00001-of-00012.safetensors 4.52 GB 564bfd54 download
model-00012-of-00012.safetensors 441 MB 1a54cf5f download
tokenizer.json 31.8 MB 4667f208 download
tokenizer.model 4.47 MB 1299c11d download
tokenizer_config.json 1.15 MB 9136f0c7 download
model.safetensors.index.json 125 KB b56dda98 download
README.md 3.36 KB 11e468fd download
chat_template.json 1.58 KB 719b0cd0 download
.gitattributes 1.53 KB 52373fe2 download
config.json 1014 B fc5ee451 download
special_tokens_map.json 575 B a472a7fc download
preprocessor_config.json 570 B b1e00fc1 download
generation_config.json 203 B 337dd5fb download
processor_config.json 70.0 B 453c7966 download
added_tokens.json 38.0 B f9f1f4f5 download

README current version from Hugging Face


license: gemma
library_name: transformers
pipeline_tag: image-text-to-text
extra_gated_heading: Access Gemma on Hugging Face
extra_gated_prompt: >-
To access Gemma on Hugging Face, you’re required to review and agree to
Google’s usage license. To do this, please ensure you’re logged in to Hugging
Face and click below. Requests are processed immediately.
extra_gated_button_content: Acknowledge license
base_model: google/gemma-3-27b-it
tags:

  • abliterated
  • uncensored
    language:
  • en

huihui-ai/gemma-3-27b-it-abliterated

This is an uncensored version of google/gemma-3-27b-it created with abliteration (see remove-refusals-with-transformers to know more about it).
This is a crude, proof-of-concept implementation to remove refusals from an LLM model without using TransformerLens.

It was only the text part that was processed, not the image part.

The abliterated model will no longer say "I'm sorry, but I cannot fulfill your request to ..."

Use with ollama

Ollama supports multimodal (Vision). gemma-3-abliterated defaults to f16, not Q4_K_M, and the effect of Q4_K_M is not very good, nor is it provided.

All new versions of gemma-3-abliterated have been released; please re-download and test.

You can use huihui_ai/gemma3-abliterated directly

ollama run huihui_ai/gemma3-abliterated:27b

Usage

You can use this model in your applications by loading it with Hugging Face's transformers library:

# pip install accelerate

from transformers import AutoProcessor, Gemma3ForConditionalGeneration
from PIL import Image
import requests
import torch

model_id = "huihui-ai/gemma-3-27b-it-abliterated"

model = Gemma3ForConditionalGeneration.from_pretrained(
    model_id, device_map="auto"
).eval()

processor = AutoProcessor.from_pretrained(model_id)

messages = [
    {
        "role": "system",
        "content": [{"type": "text", "text": "You are a helpful assistant."}]
    },
    {
        "role": "user",
        "content": [
            {"type": "image", "image": "https://huggingface.co/datasets/huggingface/documentation-images/resolve/main/bee.jpg"},
            {"type": "text", "text": "Describe this image in detail."}
        ]
    }
]

inputs = processor.apply_chat_template(
    messages, add_generation_prompt=True, tokenize=True,
    return_dict=True, return_tensors="pt"
).to(model.device, dtype=torch.bfloat16)

input_len = inputs["input_ids"].shape[-1]

with torch.inference_mode():
    generation = model.generate(**inputs, max_new_tokens=100, do_sample=False)
    generation = generation[0][input_len:]

decoded = processor.decode(generation, skip_special_tokens=True)
print(decoded)

# **Overall Impression:** The image is a close-up shot of a vibrant garden scene, 
# focusing on a cluster of pink cosmos flowers and a busy bumblebee. 
# It has a slightly soft, natural feel, likely captured in daylight.

Donation

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README history 1 version

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

  1. 2026-02-23Duplicate from huihui-ai/gemma-3-27b-it-abliteratedcc1ef7a3.4 KB
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