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huihui-ai/Huihui-Qwen3-VL-30B-A3B-Instruct-abliterated

huihui-ai Qwen 31B MoE multimodal
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Response includes
  • classification m3
  • files 27
  • hub_downloads_all_time 140,062
  • author_summary 184 models
  • readme_text full
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Abliteration classifier · v1.0.0
M3
Primary method

Layer-wise ablation

No other method signals detected in this model.
Confidence
HIGH
Why this label 3 signals
Producer identity confirmed by naming conventions, tags or the model card. This label is very unlikely to change.
  • author=huihui-ai (specializes in M3 layer-wise ablation)
  • is_gguf=0 (base model, not repackage)
  • 'abliterated' in name/tags
Refusal direction extracted via
Extraction technique

huihui-ai layer-band extraction

Confidence
HIGH
Why we say so
producer=huihui-ai (documented layer-band methodology in model cards)
Downloads · lifetime
140K
3K last 30d - cooling
Likes
93
Descendants
7
in 6 direct forks
Model age
12mo ago
created 2025-10-05
Downloads over time
Now141K→from0↑0%
051.7K103.4K155.1K0 on Oct 5, 2025141K on Oct 11Oct '25Dec '25FebAprJunAugOct
Oct 5, 2025 → Oct 11 · 96 snapshots · spans 371 days

Genealogy 6 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
apache-2.0
Tags
transformers safetensors qwen3_vl_moe image-text-to-text abliterated uncensored conversational base_model:Qwen/Qwen3-VL-30B-A3B-Instruct base_model:finetune:Qwen/Qwen3-VL-30B-A3B-Instruct license:apache-2.0 endpoints_compatible region:us

Related

Total size
57.9 GB
Files
27
Quantizations
1
Registered
2026-08-22 13:56
Last updated on HF
2025-12-15 07:49

Files by quantization

Auxiliary files 27 files 57.9 GB
model-00004-of-00013.safetensors 4.64 GB f1b8f7a4 download
model-00005-of-00013.safetensors 4.64 GB 2bb5c115 download
model-00006-of-00013.safetensors 4.64 GB 6f043d8c download
model-00007-of-00013.safetensors 4.64 GB d7476efc download
model-00008-of-00013.safetensors 4.64 GB 87b754b4 download
model-00009-of-00013.safetensors 4.64 GB 2c38f07c download
model-00010-of-00013.safetensors 4.64 GB 194f9ce3 download
model-00011-of-00013.safetensors 4.64 GB 1fba2f16 download
model-00012-of-00013.safetensors 4.64 GB 364315ec download
model-00002-of-00013.safetensors 4.64 GB 8ce5ea6d download
model-00003-of-00013.safetensors 4.64 GB 324b401e download
model-00001-of-00013.safetensors 3.94 GB d5bc1353 download
model-00013-of-00013.safetensors 2.87 GB d2f66895 download
tokenizer.json 6.71 MB c6cc1014 download
vocab.json 2.65 MB 4783fe10 download
merges.txt 1.59 MB 31349551 download
model.safetensors.index.json 78.9 KB 6502ed9f download
tokenizer_config.json 10.6 KB d3d37632 download
chat_template.jinja 5.17 KB 12438680 download
README.md 4.38 KB e2cdd326 download
.gitattributes 2.06 KB d0dac3ce download
config.json 1.67 KB 8a87f7ba download
added_tokens.json 707 B b54f9135 download
special_tokens_map.json 613 B ac23c0aa download
preprocessor_config.json 390 B 2ea84a43 download
video_preprocessor_config.json 385 B 3ba673a5 download
generation_config.json 270 B 398d2191 download

README current version from Hugging Face


license: apache-2.0
pipeline_tag: image-text-to-text
library_name: transformers
base_model:

  • Qwen/Qwen3-VL-30B-A3B-Instruct
    tags:
  • abliterated
  • uncensored

huihui-ai/Huihui-Qwen3-VL-30B-A3B-Instruct-abliterated

This is an uncensored version of Qwen/Qwen3-VL-30B-A3B-Instruct created with abliteration (see remove-refusals-with-transformers to know more about it).

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

The abliterated model will no longer say "I can’t describe or analyze this image."

ollama

Please update to the latest version of Ollama-v0.12.7.
You can use huihui_ai/qwen3-vl-abliterated:30b-a3b-instruct directly,

ollama run huihui_ai/qwen3-vl-abliterated:30b-a3b-instruct

Chat with Image

from transformers import Qwen3VLMoeForConditionalGeneration, AutoProcessor, BitsAndBytesConfig
import os
import torch

cpu_count = os.cpu_count()
print(f"Number of CPU cores in the system: {cpu_count}")
half_cpu_count = cpu_count // 2
os.environ["MKL_NUM_THREADS"] = str(half_cpu_count)
os.environ["OMP_NUM_THREADS"] = str(half_cpu_count)
torch.set_num_threads(half_cpu_count)

MODEL_ID = "huihui-ai/Huihui-Qwen3-VL-30B-A3B-Instruct-abliterated"

# default: Load the model on the available device(s)
model = Qwen3VLMoeForConditionalGeneration.from_pretrained(
    MODEL_ID, 
    device_map="auto", 
    trust_remote_code=True,
    dtype=torch.bfloat16,
    low_cpu_mem_usage=True,
)
# We recommend enabling flash_attention_2 for better acceleration and memory saving, especially in multi-image and video scenarios.
# model = Qwen3VLMoeForConditionalGeneration.from_pretrained(
#     "Qwen/Qwen3-VL-235B-A22B-Instruct",
#     dtype=torch.bfloat16,
#     attn_implementation="flash_attention_2",
#     device_map="auto",
# )

processor = AutoProcessor.from_pretrained(MODEL_ID)


image_path = "/png/cars.jpg"

messages = [
    {
        "role": "user",
        "content": [
            {
                "type": "image", "image": f"{image_path}",
            },
            {"type": "text", "text": "Describe this image."},
        ],
    }
]

# Preparation for inference
inputs = processor.apply_chat_template(
    messages,
    tokenize=True,
    add_generation_prompt=True,
    return_dict=True,
    return_tensors="pt"
).to(model.device)

# Inference: Generation of the output
generated_ids = model.generate(**inputs, max_new_tokens=128)
generated_ids_trimmed = [
    out_ids[len(in_ids) :] for in_ids, out_ids in zip(inputs.input_ids, generated_ids)
]
output_text = processor.batch_decode(
    generated_ids_trimmed, skip_special_tokens=True, clean_up_tokenization_spaces=False
)
print(output_text)

Usage Warnings

  • Risk of Sensitive or Controversial Outputs: This model’s safety filtering has been significantly reduced, potentially generating sensitive, controversial, or inappropriate content. Users should exercise caution and rigorously review generated outputs.

  • Not Suitable for All Audiences: Due to limited content filtering, the model’s outputs may be inappropriate for public settings, underage users, or applications requiring high security.

  • Legal and Ethical Responsibilities: Users must ensure their usage complies with local laws and ethical standards. Generated content may carry legal or ethical risks, and users are solely responsible for any consequences.

  • Research and Experimental Use: It is recommended to use this model for research, testing, or controlled environments, avoiding direct use in production or public-facing commercial applications.

  • Monitoring and Review Recommendations: Users are strongly advised to monitor model outputs in real-time and conduct manual reviews when necessary to prevent the dissemination of inappropriate content.

  • No Default Safety Guarantees: Unlike standard models, this model has not undergone rigorous safety optimization. huihui.ai bears no responsibility for any consequences arising from its use.

Donation

Your donation helps us continue our further development and improvement, a cup of coffee can do it.
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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. 2025-12-15Super-squash branch 'main' using huggingface_hub936d0304.4 KB
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Discussions 13 threads

  1. 2026-07-08SSN botclosed1 💬#13
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  2. 2025-12-30Could you upload a BF16 GGUF version for LM Studio?open2 💬#12
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  3. 2025-10-31Official llama.cpp now supports Qwen3-VLopen2 💬#11
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  4. 2025-10-18Thinking models and finetune healingopen3 💬#10
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  5. 2025-10-16Ollama 4_K_M GGUF not workingopen1 💬#9
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  6. 2025-10-16有人有q6 gguf吗open4 💬#8
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  7. 2025-10-14Has anyone successfully loaded q8_0 gguf?open4 💬#7
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  8. 2025-10-13llama mtmd server modeclosed1 💬#6
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  9. 2025-10-12Thireus fixed some issues with Qwen3-VL,can you recreate the latest Qwen3-VL-30…open3 💬#5
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  10. 2025-10-12Wrong outputs from GGUFs?open1 💬#4
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  11. 2025-10-07Thanks Huihuiopen1 💬#3
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  12. 2025-10-06Will there be an abliterated version of Qwen3-Omni in the future?open3 💬#2
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  13. 2025-10-06``` 🥲 加载模型失败 Failed to load model error loading model: error loading model a…open5 💬#1
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