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prawinin/Llama-3.2-3B-Uncensored

prawinin Llama 3.2B GGUF
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Response includes
  • classification m-uncensored
  • files 13
  • benchmarks 5 entries
  • hub_downloads_all_time 1,619
  • author_summary 4 models
  • readme_text full
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Abliteration classifier · v1.0.0
M-U
Primary method

Uncensored (method unknown)

No other method signals detected in this model.
Confidence
LOW
Why this label 3 signals
Weak or ambiguous signals. Best guess based on catalog patterns; treat as tentative and check the evidence below.
  • 'uncensored' in name/tags but no 'abliterated' marker
  • method not identifiable from author declaration alone
  • may be DPO fine-tune, prompt engineering, or unknown technique
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
2K
31 last 30d - cooling
Likes
1
Descendants
2
in 2 direct forks
Model age
5mo ago
created 2026-04-16
Downloads over time
Now1.6K→from15↑10,787%
05981.2K1.8K15 on Apr 151.6K on Oct 11AprMayJunJulAugSepOct
Apr 15 → Oct 11 · 65 snapshots · spans 179 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
BBH average 0.3673628226747957 OpenLLM-v2
IFEval instruct 0.1750599520383693 OpenLLM-v2
IFEval-Prompt 0.09242144177449169 OpenLLM-v2
MATH lvl 5 0.012084592145015106 OpenLLM-v2
MMLU-Pro 0.2487533244680851 OpenLLM-v2

Genealogy 2 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
llama3.2
Languages
en
Tags
safetensors llama uncensored gguf llama-cpp sft text-generation conversational en base_model:meta-llama/Llama-3.2-3B base_model:finetune:meta-llama/Llama-3.2-3B license:llama3.2

Related

Total size
5.98 GB
Files
13
Quantizations
1
Registered
2026-08-22 13:56
Last updated on HF
2026-04-25 07:50

Files by quantization

Auxiliary files 13 files 6.00 GB
model-00001-of-00004.safetensors 1.86 GB f03accdb download
model-00003-of-00004.safetensors 1.83 GB 98807353 download
model-00002-of-00004.safetensors 1.83 GB 5b3896b1 download
model-00004-of-00004.safetensors 480 MB 115fb27f download
tokenizer.json 16.4 MB 6b3b33fc download
model.safetensors.index.json 20.5 KB 6da97152 download
chat_template.jinja 3.74 KB 1bad6a0f download
README.md 2.00 KB 307bf7ee download
abliteration_metadata.json 1.73 KB 9391e740 download
.gitattributes 1.53 KB 52373fe2 download
config.json 894 B 248c9e2e download
tokenizer_config.json 325 B b0c73682 download
generation_config.json 183 B 7c9c2224 download

README current version from Hugging Face


base_model: meta-llama/Llama-3.2-3B
language:

  • en
    license: llama3.2
    tags:
  • uncensored
  • gguf
  • llama-cpp
  • sft
    pipeline_tag: text-generation

Llama-3.2-3B-Uncensored

This repository contains the raw Safetensors weights for an uncensored variant of Llama-3.2-3B. This model is optimized for edge deployment and fast inference while completely bypassing standard RLHF refusal mechanisms.

Why Uncensored?

Consumer AI models are heavily filtered, which often blocks legitimate academic research, complex creative writing, and sovereign data analysis. By utilizing orthogonalization and abliteration techniques, the "refusal" vectors in this model have been erased.

We kept this model entirely open and uncensored so that researchers, legal tech developers, and sovereign AI builders have a blank-slate reasoning engine that obeys the user, not a cloud provider's safety policy.

Format Note: Safetensors vs GGUF

This specific repository hosts the multi-part .safetensors files (as seen in the Files tab).

  • If you are looking for the Ollama-ready GGUF version, please navigate to the prawinin/Llama-3.2-3B-Uncensored-Q8_0-GGUF repository.
  • The weights in this repository are meant for developers building custom pipelines or doing further fine-tuning.

How to Use (Python / Transformers)

from transformers import AutoModelForCausalLM, AutoTokenizer
import torch

model_id = "prawinin/Llama-3.2-3B-Uncensored"

tokenizer = AutoTokenizer.from_pretrained(model_id)
model = AutoModelForCausalLM.from_pretrained(
    model_id,
    torch_dtype=torch.bfloat16,
    device_map="auto"
)

prompt = "Explain the physiological effects of severe sleep deprivation on the human brain."
messages = [
    {"role": "user", "content": prompt}
]

text = tokenizer.apply_chat_template(messages, tokenize=False, add_generation_prompt=True)
inputs = tokenizer([text], return_tensors="pt").to("cuda")

outputs = model.generate(**inputs, max_new_tokens=512)
print(tokenizer.decode(outputs[0], skip_special_tokens=True))

README history 3 versions

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

  1. 2026-04-25Update README.mda0090372 KB
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  2. 2026-04-25Update README.md3f688ec1.8 KB
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  3. 2026-04-25Create README.mdc17f6154.1 KB
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