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Mixtral 8x7B Instruct V0.1 Hf Attn 4bit MoE 2bitgs8 Metaoffload HQQ by mobiuslabsgmbh

By mobiuslabsgmbh · 9 downloads

Mixtral 8x7B Instruct V0.1 Hf Attn 4bit MoE 2bitgs8 Metaoffload HQQ is an open-source language model by mobiuslabsgmbh. Features: LLM, VRAM: 24.1GB, Context: 32K, License: apache-2.0, MoE, Quantized, Instruction-Based, LLM Explorer Score: 0.11.

  4bit   Conversational   Instruct   Mixtral   Moe   Quantized   Region:us

Mixtral 8x7B Instruct V0.1 Hf Attn 4bit MoE 2bitgs8 Metaoffload HQQ Parameters and Internals

Model Type 
text-generation
Additional Notes 
This model uses Half-Quadratic Quantization (HQQ) for quantizing attention layers to 4-bit and experts to 2-bit, enabling a significant reduction in VRAM usage.
LLM NameMixtral 8x7B Instruct V0.1 Hf Attn 4bit MoE 2bitgs8 Metaoffload HQQ
Repository πŸ€—https://huggingface.co/mobiuslabsgmbh/Mixtral-8x7B-Instruct-v0.1-hf-attn-4bit-moe-2bitgs8-metaoffload-HQQ 
Required VRAM24.1 GB
Updated2026-07-27
Maintainermobiuslabsgmbh
Model Typemixtral
Instruction-BasedYes
Model Files  24.1 GB
Quantization Type4bit
Model ArchitectureMixtralForCausalLM
Licenseapache-2.0
Context Length32768
Model Max Length32768
Transformers Version4.37.2
Tokenizer ClassLlamaTokenizer
Vocabulary Size32000
Torch Data Typefloat16

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Note: green Score (e.g. "73.2") means that the model is better than mobiuslabsgmbh/Mixtral-8x7B-Instruct-v0.1-hf-attn-4bit-moe-2bitgs8-metaoffload-HQQ.