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Blackfrost-AI/Muse-Glimmer-30B-Abliterated-MLX-6bit

Blackfrost-AI 30B multimodal second-order
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Response includes
  • classification m1
  • files 17
  • author_summary 19 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 · 30-day
1K
Likes
1
Model age
2mo ago
created 2026-08-10
Downloads over time
Now1K→from0↑0%
03707411.1K0 on Aug 121K on Aug 271K on Aug 26Aug
Aug 12 → Aug 27 · 4 snapshots · spans 15 days

Genealogy 0 direct forks

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Metadata

License
apache-2.0
Tags
mlx safetensors muse_glimmer muse-glimmer abliterated quantized apple-silicon 6-bit image-text-to-text conversational base_model:Blackfrost-AI/Muse-Glimmer-30B-Abliterated-BF16 base_model:quantized:Blackfrost-AI/Muse-Glimmer-30B-Abliterated-BF16

Related

Total size
24.6 GB
Files
17
Quantizations
1
Registered
2026-08-22 13:56
Last updated on HF
2026-08-11 02:33

Files by quantization

Auxiliary files 17 files 24.6 GB
model-00003-of-00005.safetensors 4.96 GB c813a068 download
model-00001-of-00005.safetensors 4.95 GB e35d30c4 download
model-00004-of-00005.safetensors 4.93 GB 232573dd download
model-00002-of-00005.safetensors 4.93 GB a1769489 download
model-00005-of-00005.safetensors 4.82 GB a70b4219 download
tokenizer.json 26.8 MB c9dbee66 download
model.safetensors.index.json 213 KB 586b6db8 download
tokenizer_config.json 78.1 KB d1b80588 download
LICENSE 11.1 KB d6456956 download
chat_template.jinja 9.31 KB 6fbdf45f download
muse_kratos_template.jinja 9.31 KB 6fbdf45f download
config.json 6.64 KB bfcf72ce download
USAGE_POLICY.md 5.11 KB 1a9ed6cf download
README.md 2.75 KB a82480bc download
.gitattributes 1.53 KB 52373fe2 download
processor_config.json 395 B 82e0b73b download
generation_config.json 148 B 3495c31e download

README current version from Hugging Face


license: apache-2.0
base_model:

  • Blackfrost-Research/Muse-Glimmer-30B-Abliterated-BF16
    tags:
  • muse-glimmer
  • abliterated
  • mlx
  • quantized
  • apple-silicon
  • 6-bit
    pipeline_tag: image-text-to-text
    library_name: mlx

MUSE-GLIMMER-30B-ABLITERATED-MLX-6bit

6-bit MLX for Apple Silicon — near-lossless

Built by Blackfrost · Las Vegas, NV

Refusal benchmark — R1-HARMFUL-BENCH-450

Measured on the abliterated model — quantization holds it, no refusal snapback:

Metric Result
True refusal (harmful, n=300) 0 / 300 = 0.0%
True refusal (full 450) 0 / 450 = 0.0%
Substring-harmful 0 / 300
Substring-all 2 / 450 (XSTest false positives)
Errors 0

Why this model exists

Muse Glimmer is Meta Superintelligence Labs' 30B agentic, on-device model. This is the abliterated build — refusal behavior removed via a Blackfrost weight-change process — packaged as MLX 6-bit — ~25 GB for Apple-silicon Macs. The local footprint is the product.


Specifications

Architecture muse_glimmer — dense, 52 layers, hidden 6656, GQA (32 q / 2 kv), sliding-window attention, + vision tower
Base meta-models/Muse-Glimmer-30B — Meta, Apache-2.0
Transform Abliterated — refusal behavior removed via a Blackfrost weight-change process; multimodal capability intact
Format MLX 6-bit — ~25 GB
Context 131,072

Serving (Apple Silicon / MLX)

pip install mlx-lm
# one-off generate:
mlx_lm.generate --model Blackfrost-Research/Muse-Glimmer-30B-Abliterated-MLX-6bit --prompt "Write a binary search in Python." --max-tokens 1024
# OpenAI-compatible server:
mlx_lm.server --model Blackfrost-Research/Muse-Glimmer-30B-Abliterated-MLX-6bit --port 8080

Or open it directly in LM Studio (MLX runtime) on an Apple-silicon Mac.

Sampling (Meta): temperature 1.0, top_p 0.95, top_k 64. It's a heavy thinker — use a generous max_tokens (≥ 1024) and steer depth with a Reasoning strength: low/medium/high/xhigh system line. Reasoning is returned separately from the final answer.


Built by Blackfrost · Las Vegas, NV. Not affiliated with Meta.

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