Notux 8x7b V1.3.5bpw H6 EXL2 by LoneStriker

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Notux 8x7b V1.3.5bpw H6 EXL2 Benchmarks

nn.n% — How the model compares to the reference models: Anthropic Sonnet 3.5 ("so35"), GPT-4o ("gpt4o") or GPT-4 ("gpt4").
Notux 8x7b V1.3.5bpw H6 EXL2 (LoneStriker/notux-8x7b-v1-3.5bpw-h6-exl2)

Notux 8x7b V1.3.5bpw H6 EXL2 Parameters and Internals

Model Type 
Pretrained generative Sparse Mixture of Experts
Supported Languages 
English (Full proficiency), Spanish (Full proficiency), Italian (Full proficiency), German (Full proficiency), French (Full proficiency)
Training Details 
Data Sources:
argilla/ultrafeedback-binarized-preferences-cleaned
Methodology:
Direct Preference Optimization (DPO) and experimental preference tuning methods like distilled DPO (dDPO)
Training Time:
1 epoch (~10hr)
Hardware Used:
8 x H100 80GB hosted in runpod.io
LLM NameNotux 8x7b V1.3.5bpw H6 EXL2
Repository ๐Ÿค—https://huggingface.co/LoneStriker/notux-8x7b-v1-3.5bpw-h6-exl2 
Base Model(s)  mistralai/Mixtral-8x7B-Instruct-v0.1   mistralai/Mixtral-8x7B-Instruct-v0.1
Required VRAM20.7 GB
Updated2025-02-05
MaintainerLoneStriker
Model Typemixtral
Instruction-BasedYes
Model Files  8.6 GB: 1-of-3   8.6 GB: 2-of-3   3.5 GB: 3-of-3
Supported Languagesen de es fr it
Quantization Typeexl2
Model ArchitectureMixtralForCausalLM
Licenseapache-2.0
Context Length32768
Model Max Length32768
Transformers Version4.36.0
Tokenizer ClassLlamaTokenizer
Padding Token</s>
Vocabulary Size32000
Torch Data Typebfloat16

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Note: green Score (e.g. "73.2") means that the model is better than LoneStriker/notux-8x7b-v1-3.5bpw-h6-exl2.

Rank the Notux 8x7b V1.3.5bpw H6 EXL2 Capabilities

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Instruction Following and Task Automation  
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Original data from HuggingFace, OpenCompass and various public git repos.
Release v20241227