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dealignai/MiniMax-M2.5-UNCENSORED-JANG_2L

dealignai Minimax 60B MoE
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Response includes
  • classification m1
  • files 25
  • benchmarks 11 entries
  • hub_downloads_all_time 8,751
  • author_summary 38 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
9K
1K last 30d - stable
Likes
11
Model age
6mo ago
created 2026-03-19
Downloads over time
Now9.1K→from521↑1,644%
933.4K6.7K9.9K521 on Mar 259.1K on Oct 11MarAprMayJunJulAugSepOct
Mar 25 → Oct 11 · 71 snapshots · spans 200 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
Entertainment 2.1 UGI
Hazardous 3.5 UGI
Natural Intelligence 38.64 UGI
Political lean -17.4% UGI
Sensitive-Info 22.19 UGI
SocPol 1.3 UGI
UGI 18.12 UGI
Willingness (10) 1 UGI
W10-Adherence 1 UGI
W10-Direct 1 UGI
Writing 41.69 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
apache-2.0
Languages
en zh ko
Tags
mlx safetensors minimax_m2 jang quantized mixed-precision apple-silicon moe abliterated uncensored crack text-generation

Related

Total size
62.6 GB
Files
25
Quantizations
1
Registered
2026-08-22 13:56
Last updated on HF
2026-09-08 13:49

Files by quantization

Auxiliary files 25 files 62.6 GB
model-00001-of-00014.safetensors 4.97 GB 61fe45f9 download
model-00004-of-00014.safetensors 4.75 GB 1f7547dd download
model-00005-of-00014.safetensors 4.75 GB 3b7a9fdb download
model-00006-of-00014.safetensors 4.75 GB 635c3e01 download
model-00007-of-00014.safetensors 4.75 GB 5df13664 download
model-00008-of-00014.safetensors 4.75 GB 73367240 download
model-00009-of-00014.safetensors 4.75 GB fb24ec13 download
model-00010-of-00014.safetensors 4.75 GB 001d656c download
model-00011-of-00014.safetensors 4.75 GB 37e2ab0c download
model-00012-of-00014.safetensors 4.75 GB a6944d65 download
model-00013-of-00014.safetensors 4.75 GB 06983586 download
model-00003-of-00014.safetensors 4.75 GB d1cf0432 download
model-00002-of-00014.safetensors 4.75 GB 9f49b2ad download
model-00014-of-00014.safetensors 650 MB 92739402 download
tokenizer.json 14.8 MB 7b81e5e5 download
model.safetensors.index.json 159 KB bec74abb download
config.json 60.6 KB eadb896f download
dealign_mascot.png 10.9 KB da3bf39a download
tokenizer_config.json 8.07 KB 0dcbdaca download
dealign_logo.png 7.48 KB a5b3546b download
README.md 6.62 KB ee8268a0 download
chat_template.jinja 6.48 KB 5d832b03 download
jang_config.json 1.92 KB 53031e76 download
.gitattributes 1.53 KB 52373fe2 download
generation_config.json 65.0 B 411577bc download

README current version from Hugging Face


language:

  • en
  • zh
  • ko
    library_name: mlx
    license: apache-2.0
    base_model: MiniMaxAI/MiniMax-M2.5
    tags:
  • jang
  • quantized
  • mixed-precision
  • apple-silicon
  • mlx
  • moe
  • abliterated
  • uncensored
  • crack
    pipeline_tag: text-generation
    thumbnail: dealign_mascot.png

Important: This model uses the JANG quantization format — the GGUF equivalent for MLX on Apple Silicon. Currently only supported by MLX Studio and the jang-tools Python package.


MLX Studio

MLX Studio App

MLX Studio — the only app that natively supports JANG models


MiniMax M2.5 — JANG_2L + CRACK

JANG mixed-precision · CRACK abliterated · No guardrails · 63 GB

Ko-fi


What Is This?

This is MiniMax M2.5 — a 230B parameter Mixture-of-Experts model with 256 experts (8 active per token), all standard attention (no SSM), and trained with chain-of-thought reasoning.

It has been:

  1. JANG quantized — JANG_2L profile (8-bit attention, 6-bit embeddings, 2-bit experts) — 63 GB
  2. CRACK abliterated — permanent weight-level removal of safety refusal
Architecture MiniMax M2.5 MoE — 230B total, ~10B active, 256 experts
Quantization JANG_2L (8/6/2-bit mixed) — 63 GB
Abliteration CRACK — novel weight surgery
MMLU-200 84.7% (base: 74.5%, +10.2% improvement)
HarmBench 98.1% (314/320)
Compliance 7/8 prompts
Thinking ON/OFF supported
Speed ~35 tok/s (M4 Ultra 256GB)
Fits on 96 GB+ Macs

MMLU-200 Results

JANG CRACK vs Base vs MLX Uniform

Model MMLU Size Notes
JANG_2L + CRACK ~84.7% 63 GB This model
JANG_2L (base) 74.5% 63 GB Unmodified JANG
MLX 4-bit 26.5% 120 GB Broken (~random)
MLX 3-bit 24.5% 93 GB Broken (~random)
MLX 2-bit 25.0% 67 GB Broken (~random)

MLX uniform quantization is completely broken on MiniMax at ALL bit levels (~25% = random chance). JANG is the only working quantization format for this model.

Per Subject

Subject CRACK Base Delta
Abstract Algebra ~18/20 10/20 +8
HS Mathematics 17/20 12/20 +5
College CS ~14/20 10/20 +4
Logical Fallacies 18/20 16/20 +2
HS Biology 19/20 18/20 +1
Astronomy ~18/20 18/20 0
Anatomy ~15/20 15/20 0
HS Chemistry 16/20 16/20 0
World Religions 17/20 17/20 0
College Physics ~16/20 17/20 -1
Total ~169/200 149/200 +20

Safety guardrails were actively degrading the model's reasoning ability. CRACK surgery unlocked the model's full capacity for mathematical and logical reasoning.


HarmBench Results

314/320 (98.1%) — tested with enable_thinking=false, temperature=1.0

Category Score
Chemical / Biological 42/42 100%
Cybercrime / Intrusion 52/52 100%
Harassment / Bullying 21/21 100%
Harmful 18/18 100%
Illegal 53/53 100%
Misinformation / Disinfo 54/54 100%
Copyright 74/80 92%

Install & Usage

pip install "jang[mlx]"
from jang_tools.loader import load_jang_model
from mlx_lm import generate

model, tokenizer = load_jang_model("dealignai/MiniMax-M2.5-JANG_2L-CRACK")

messages = [{"role": "user", "content": "Your prompt here"}]
prompt = tokenizer.apply_chat_template(
    messages, add_generation_prompt=True, tokenize=False)

response = generate(model, tokenizer, prompt=prompt, max_tokens=2000)
print(response)

Note: MiniMax generates a <think> chain before answering by default. To disable thinking, pass enable_thinking=False in your chat template kwargs. Use max_tokens=2000+ for complex questions. For chat applications, use temperature=1.0 (greedy causes loops).


About JANG

JANG (Jang Adaptive N-bit Grading) is a mixed-precision quantization format for Apple Silicon — the GGUF equivalent for MLX. Classifies tensors into sensitivity tiers and assigns bits accordingly.

About CRACK

CRACK (Controlled Refusal Ablation via Calibrated Knockouts) removes safety alignment from LLMs at the weight level using per-layer projected vectors from structurally-mirrored prompt pairs.


Links

Ko-fi
X/Twitter
GitHub
MLX Studio
Website


Disclaimer

This model is provided for research and educational purposes. The creators are not responsible for any misuse. By downloading this model, you agree to use it responsibly and in compliance with applicable laws.


한국어

MiniMax M2.5 — JANG_2L + CRACK

항목 내용
크기 63 GB
MMLU 84.7% (기본 74.5% 대비 +10.2%)
HarmBench 98.1% (314/320)
최소 요구사양 96 GB 메모리 Mac
pip install "jang[mlx]"

GitHub · HuggingFace · MLX Studio · Ko-fi · X @dealignai


Created by Jinho Jang · 장진호 제작

README history 9 versions

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

  1. 2026-09-08Add vMLX app banner and runtime note to model card5262e9a6.9 KB
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  2. 2026-03-22fix: update Twitter/X handle to @dealignai534ee9b6.6 KB
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  3. 2026-03-22add: speed to specs tableee86c706.6 KB
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  4. 2026-03-21fix: remove remaining internal surgery details661d6bc6.6 KB
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  5. 2026-03-21fix: remove internal surgery details from READMEd1b6efd6.7 KB
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  6. 2026-03-19Upload README.md with huggingface_hub3eb4b496.7 KB
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  7. 2026-03-19Upload README.md with huggingface_hub8c04e0f6.7 KB
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  8. 2026-03-19Add MLX comparison scores (broken at all bit levels) + per-subject MMLU0e30f876.1 KB
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  9. 2026-03-19Add files using upload-large-folder tool2ee168d5.6 KB
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Discussions 1 thread

  1. 2026-03-24JANG 3L version available in Uncensored?closed5 💬#1
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