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starcrow/gemma-3-27b-it-qat-abliterated

starcrow Gemma 27B multimodal
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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
40
10 last 30d - stable
Likes
0
Model age
2mo ago
created 2026-08-02
Downloads over time
Now47→from28↑68%
2734424928 on Aug 547 on Oct 1147 on Oct 9AugSepOct
Aug 5 → Oct 11 · 50 snapshots · spans 67 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 gemma google heretic uncensored decensored abliterated reproducible conversational

Related

Total size
51.1 GB
Files
21
Quantizations
1
Registered
2026-08-22 13:56
Last updated on HF
2026-08-02 01:09

Files by quantization

Auxiliary files 21 files 51.1 GB
model-00011-of-00012.safetensors 4.65 GB dd6a5e60 download
model-00004-of-00012.safetensors 4.61 GB 40e332a7 download
model-00005-of-00012.safetensors 4.61 GB 42713e0c download
model-00006-of-00012.safetensors 4.61 GB e7a6007f download
model-00007-of-00012.safetensors 4.61 GB 8e364298 download
model-00008-of-00012.safetensors 4.61 GB f1156bb4 download
model-00009-of-00012.safetensors 4.61 GB b779df01 download
model-00010-of-00012.safetensors 4.61 GB 52faacda download
model-00003-of-00012.safetensors 4.61 GB 40d94f61 download
model-00002-of-00012.safetensors 4.61 GB a84cf0fc download
model-00001-of-00012.safetensors 4.59 GB 9ffe78b1 download
model-00012-of-00012.safetensors 325 MB c4897723 download
tokenizer.json 31.8 MB daab2354 download
model.safetensors.index.json 124 KB 9b5e8e1e download
README.md 23.4 KB 2731f680 download
config.json 3.49 KB 9bfa42d6 download
.gitattributes 1.53 KB 52373fe2 download
chat_template.jinja 1.50 KB 1117055a download
tokenizer_config.json 745 B 5a583f3e download
processor_config.json 519 B 09922022 download
generation_config.json 168 B d87672b0 download

README current version from Hugging Face


base_model: google/gemma-3-27b-it
license: gemma
tags:

  • gemma3
  • gemma
  • google
  • heretic
  • uncensored
  • decensored
  • abliterated
  • reproducible
    pipeline_tag: image-text-to-text
    library_name: transformers
    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

This is a decensored version of google/gemma-3-27b-it-qat-q4_0-unquantized, made using Heretic v1.4.0

[!TIP]
This model is reproducible!

See the README in the reproduce directory for more information.

Abliteration parameters

Parameter Value
direction_index 35.33
attn.o_proj.max_weight 1.45
attn.o_proj.max_weight_position 36.69
attn.o_proj.min_weight 1.43
attn.o_proj.min_weight_distance 13.13
mlp.down_proj.max_weight 1.30
mlp.down_proj.max_weight_position 44.71
mlp.down_proj.min_weight 0.92
mlp.down_proj.min_weight_distance 25.68

Performance

Metric This model Original model (google/gemma-3-27b-it-qat-q4_0-unquantized)
Keywords 58/100 99/100
KL divergence 0.1369 0 (by definition)

Gemma 3 model card

Model Page: Gemma

[!Note]
This repository corresponds to the 27B instruction-tuned version of the Gemma 3 model using Quantization Aware Training (QAT).

The checkpoint in this repository is unquantized, please make sure to quantize with Q4_0 with your favorite tool

Thanks to QAT, the model is able to preserve similar quality as bfloat16 while significantly reducing the memory requirements
to load the model.

Resources and Technical Documentation:

Terms of Use: Terms

Authors: Google DeepMind

Model Information

Summary description and brief definition of inputs and outputs.

Description

Gemma is a family of lightweight, state-of-the-art open models from Google,
built from the same research and technology used to create the Gemini models.
Gemma 3 models are multimodal, handling text and image input and generating text
output, with open weights for both pre-trained variants and instruction-tuned
variants. Gemma 3 has a large, 128K context window, multilingual support in over
140 languages, and is available in more sizes than previous versions. Gemma 3
models are well-suited for a variety of text generation and image understanding
tasks, including question answering, summarization, and reasoning. Their
relatively small size makes it possible to deploy them in environments with
limited resources such as laptops, desktops or your own cloud infrastructure,
democratizing access to state of the art AI models and helping foster innovation
for everyone.

Inputs and outputs

  • Input:

    • Text string, such as a question, a prompt, or a document to be summarized
    • Images, normalized to 896 x 896 resolution and encoded to 256 tokens
      each
    • Total input context of 128K tokens for the 4B, 12B, and 27B sizes, and
      32K tokens for the 1B size
  • Output:

    • Generated text in response to the input, such as an answer to a
      question, analysis of image content, or a summary of a document
    • Total output context of 8192 tokens

Citation

@article{gemma_2025,
    title={Gemma 3},
    url={https://goo.gle/Gemma3Report},
    publisher={Kaggle},
    author={Gemma Team},
    year={2025}
}

Model Data

Data used for model training and how the data was processed.

Training Dataset

These models were trained on a dataset of text data that includes a wide variety
of sources. The 27B model was trained with 14 trillion tokens, the 12B model was
trained with 12 trillion tokens, 4B model was trained with 4 trillion tokens and
1B with 2 trillion tokens. Here are the key components:

  • Web Documents: A diverse collection of web text ensures the model is
    exposed to a broad range of linguistic styles, topics, and vocabulary. The
    training dataset includes content in over 140 languages.
  • Code: Exposing the model to code helps it to learn the syntax and
    patterns of programming languages, which improves its ability to generate
    code and understand code-related questions.
  • Mathematics: Training on mathematical text helps the model learn logical
    reasoning, symbolic representation, and to address mathematical queries.
  • Images: A wide range of images enables the model to perform image
    analysis and visual data extraction tasks.

The combination of these diverse data sources is crucial for training a powerful
multimodal model that can handle a wide variety of different tasks and data
formats.

Data Preprocessing

Here are the key data cleaning and filtering methods applied to the training
data:

  • CSAM Filtering: Rigorous CSAM (Child Sexual Abuse Material) filtering
    was applied at multiple stages in the data preparation process to ensure
    the exclusion of harmful and illegal content.
  • Sensitive Data Filtering: As part of making Gemma pre-trained models
    safe and reliable, automated techniques were used to filter out certain
    personal information and other sensitive data from training sets.
  • Additional methods: Filtering based on content quality and safety in
    line with our policies.

Implementation Information

Details about the model internals.

Hardware

Gemma was trained using Tensor Processing Unit (TPU) hardware (TPUv4p,
TPUv5p and TPUv5e). Training vision-language models (VLMS) requires significant
computational power. TPUs, designed specifically for matrix operations common in
machine learning, offer several advantages in this domain:

  • Performance: TPUs are specifically designed to handle the massive
    computations involved in training VLMs. They can speed up training
    considerably compared to CPUs.
  • Memory: TPUs often come with large amounts of high-bandwidth memory,
    allowing for the handling of large models and batch sizes during training.
    This can lead to better model quality.
  • Scalability: TPU Pods (large clusters of TPUs) provide a scalable
    solution for handling the growing complexity of large foundation models.
    You can distribute training across multiple TPU devices for faster and more
    efficient processing.
  • Cost-effectiveness: In many scenarios, TPUs can provide a more
    cost-effective solution for training large models compared to CPU-based
    infrastructure, especially when considering the time and resources saved
    due to faster training.
  • These advantages are aligned with
    Google's commitments to operate sustainably.

Software

Training was done using JAX and ML Pathways.

JAX allows researchers to take advantage of the latest generation of hardware,
including TPUs, for faster and more efficient training of large models. ML
Pathways is Google's latest effort to build artificially intelligent systems
capable of generalizing across multiple tasks. This is specially suitable for
foundation models, including large language models like these ones.

Together, JAX and ML Pathways are used as described in the
paper about the Gemini family of models; "the 'single
controller' programming model of Jax and Pathways allows a single Python
process to orchestrate the entire training run, dramatically simplifying the
development workflow."

Evaluation

[!Note]
The evaluation in this section correspond to the original checkpoint, not the QAT checkpoint.

Model evaluation metrics and results.

Benchmark Results

These models were evaluated against a large collection of different datasets and
metrics to cover different aspects of text generation:

Reasoning and factuality

Benchmark Metric Gemma 3 PT 1B Gemma 3 PT 4B Gemma 3 PT 12B Gemma 3 PT 27B
HellaSwag 10-shot 62.3 77.2 84.2 85.6
BoolQ 0-shot 63.2 72.3 78.8 82.4
PIQA 0-shot 73.8 79.6 81.8 83.3
SocialIQA 0-shot 48.9 51.9 53.4 54.9
TriviaQA 5-shot 39.8 65.8 78.2 85.5
Natural Questions 5-shot 9.48 20.0 31.4 36.1
ARC-c 25-shot 38.4 56.2 68.9 70.6
ARC-e 0-shot 73.0 82.4 88.3 89.0
WinoGrande 5-shot 58.2 64.7 74.3 78.8
BIG-Bench Hard few-shot 28.4 50.9 72.6 77.7
DROP 1-shot 42.4 60.1 72.2 77.2

STEM and code

Benchmark Metric Gemma 3 PT 4B Gemma 3 PT 12B Gemma 3 PT 27B
MMLU 5-shot 59.6 74.5 78.6
MMLU (Pro COT) 5-shot 29.2 45.3 52.2
AGIEval 3-5-shot 42.1 57.4 66.2
MATH 4-shot 24.2 43.3 50.0
GSM8K 8-shot 38.4 71.0 82.6
GPQA 5-shot 15.0 25.4 24.3
MBPP 3-shot 46.0 60.4 65.6
HumanEval 0-shot 36.0 45.7 48.8

Multilingual

Benchmark Gemma 3 PT 1B Gemma 3 PT 4B Gemma 3 PT 12B Gemma 3 PT 27B
MGSM 2.04 34.7 64.3 74.3
Global-MMLU-Lite 24.9 57.0 69.4 75.7
WMT24++ (ChrF) 36.7 48.4 53.9 55.7
FloRes 29.5 39.2 46.0 48.8
XQuAD (all) 43.9 68.0 74.5 76.8
ECLeKTic 4.69 11.0 17.2 24.4
IndicGenBench 41.4 57.2 61.7 63.4

Multimodal

Benchmark Gemma 3 PT 4B Gemma 3 PT 12B Gemma 3 PT 27B
COCOcap 102 111 116
DocVQA (val) 72.8 82.3 85.6
InfoVQA (val) 44.1 54.8 59.4
MMMU (pt) 39.2 50.3 56.1
TextVQA (val) 58.9 66.5 68.6
RealWorldQA 45.5 52.2 53.9
ReMI 27.3 38.5 44.8
AI2D 63.2 75.2 79.0
ChartQA 63.6 74.7 76.3
VQAv2 63.9 71.2 72.9
BLINK 38.0 35.9 39.6
OKVQA 51.0 58.7 60.2
TallyQA 42.5 51.8 54.3
SpatialSense VQA 50.9 60.0 59.4
CountBenchQA 26.1 17.8 68.0

Ethics and Safety

Ethics and safety evaluation approach and results.

Evaluation Approach

Our evaluation methods include structured evaluations and internal red-teaming
testing of relevant content policies. Red-teaming was conducted by a number of
different teams, each with different goals and human evaluation metrics. These
models were evaluated against a number of different categories relevant to
ethics and safety, including:

  • Child Safety: Evaluation of text-to-text and image to text prompts
    covering child safety policies, including child sexual abuse and
    exploitation.
  • Content Safety: Evaluation of text-to-text and image to text prompts
    covering safety policies including, harassment, violence and gore, and hate
    speech.
  • Representational Harms: Evaluation of text-to-text and image to text
    prompts covering safety policies including bias, stereotyping, and harmful
    associations or inaccuracies.

In addition to development level evaluations, we conduct "assurance
evaluations" which are our 'arms-length' internal evaluations for responsibility
governance decision making. They are conducted separately from the model
development team, to inform decision making about release. High level findings
are fed back to the model team, but prompt sets are held-out to prevent
overfitting and preserve the results' ability to inform decision making.
Assurance evaluation results are reported to our Responsibility & Safety Council
as part of release review.

Evaluation Results

For all areas of safety testing, we saw major improvements in the categories of
child safety, content safety, and representational harms relative to previous
Gemma models. All testing was conducted without safety filters to evaluate the
model capabilities and behaviors. For both text-to-text and image-to-text, and
across all model sizes, the model produced minimal policy violations, and showed
significant improvements over previous Gemma models' performance with respect
to ungrounded inferences. A limitation of our evaluations was they included only
English language prompts.

Usage and Limitations

These models have certain limitations that users should be aware of.

Intended Usage

Open vision-language models (VLMs) models have a wide range of applications
across various industries and domains. The following list of potential uses is
not comprehensive. The purpose of this list is to provide contextual information
about the possible use-cases that the model creators considered as part of model
training and development.

  • Content Creation and Communication
    • Text Generation: These models can be used to generate creative text
      formats such as poems, scripts, code, marketing copy, and email drafts.
    • Chatbots and Conversational AI: Power conversational interfaces
      for customer service, virtual assistants, or interactive applications.
    • Text Summarization: Generate concise summaries of a text corpus,
      research papers, or reports.
    • Image Data Extraction: These models can be used to extract,
      interpret, and summarize visual data for text communications.
  • Research and Education
    • Natural Language Processing (NLP) and VLM Research: These
      models can serve as a foundation for researchers to experiment with VLM
      and NLP techniques, develop algorithms, and contribute to the
      advancement of the field.
    • Language Learning Tools: Support interactive language learning
      experiences, aiding in grammar correction or providing writing practice.
    • Knowledge Exploration: Assist researchers in exploring large
      bodies of text by generating summaries or answering questions about
      specific topics.

Limitations

  • Training Data
    • The quality and diversity of the training data significantly
      influence the model's capabilities. Biases or gaps in the training data
      can lead to limitations in the model's responses.
    • The scope of the training dataset determines the subject areas
      the model can handle effectively.
  • Context and Task Complexity
    • Models are better at tasks that can be framed with clear
      prompts and instructions. Open-ended or highly complex tasks might be
      challenging.
    • A model's performance can be influenced by the amount of context
      provided (longer context generally leads to better outputs, up to a
      certain point).
  • Language Ambiguity and Nuance
    • Natural language is inherently complex. Models might struggle
      to grasp subtle nuances, sarcasm, or figurative language.
  • Factual Accuracy
    • Models generate responses based on information they learned
      from their training datasets, but they are not knowledge bases. They
      may generate incorrect or outdated factual statements.
  • Common Sense
    • Models rely on statistical patterns in language. They might
      lack the ability to apply common sense reasoning in certain situations.

Ethical Considerations and Risks

The development of vision-language models (VLMs) raises several ethical
concerns. In creating an open model, we have carefully considered the following:

  • Bias and Fairness
    • VLMs trained on large-scale, real-world text and image data can
      reflect socio-cultural biases embedded in the training material. These
      models underwent careful scrutiny, input data pre-processing described
      and posterior evaluations reported in this card.
  • Misinformation and Misuse
    • VLMs can be misused to generate text that is false, misleading,
      or harmful.
    • Guidelines are provided for responsible use with the model, see the
      Responsible Generative AI Toolkit.
  • Transparency and Accountability:
    • This model card summarizes details on the models' architecture,
      capabilities, limitations, and evaluation processes.
    • A responsibly developed open model offers the opportunity to
      share innovation by making VLM technology accessible to developers and
      researchers across the AI ecosystem.

Risks identified and mitigations:

  • Perpetuation of biases: It's encouraged to perform continuous
    monitoring (using evaluation metrics, human review) and the exploration of
    de-biasing techniques during model training, fine-tuning, and other use
    cases.
  • Generation of harmful content: Mechanisms and guidelines for content
    safety are essential. Developers are encouraged to exercise caution and
    implement appropriate content safety safeguards based on their specific
    product policies and application use cases.
  • Misuse for malicious purposes: Technical limitations and developer
    and end-user education can help mitigate against malicious applications of
    VLMs. Educational resources and reporting mechanisms for users to flag
    misuse are provided. Prohibited uses of Gemma models are outlined in the
    Gemma Prohibited Use Policy.
  • Privacy violations: Models were trained on data filtered for removal
    of certain personal information and other sensitive data. Developers are
    encouraged to adhere to privacy regulations with privacy-preserving
    techniques.

Benefits

At the time of release, this family of models provides high-performance open
vision-language model implementations designed from the ground up for
responsible AI development compared to similarly sized models.

Using the benchmark evaluation metrics described in this document, these models
have shown to provide superior performance to other, comparably-sized open model
alternatives.

README history 2 versions

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