Meta Llama 3.1 8B Instruct is an open-source language model by NousResearch. Features: 8b LLM, VRAM: 16.1GB, Context: 128K, License: meta, Instruction-Based, LLM Explorer Score: 0.29.
Meta Llama 3.1 8B Instruct Benchmarks
nn.n% — How the model compares to the reference models: Anthropic Sonnet 3.5 ("so35"), GPT-4o ("gpt4o") or GPT-4 ("gpt4").
Meta Llama 3.1 8B Instruct Parameters and Internals
Model Type
Use Cases
Areas: Commercial applications, Research
Applications: Multilingual dialogue use cases, Instruction tuned text applications
Primary Use Cases: Assistant-like chat, Natural language generation tasks
Limitations: Use in non-supported languages not recommended without fine-tuning, Adherence to license and Acceptable Use Policy necessary
Considerations: Compliance with laws and regulations
Additional Notes Static model with offline dataset; future versions will integrate community feedback for enhanced safety
Supported Languages en (English), de (German), fr (French), it (Italian), pt (Portuguese), hi (Hindi), es (Spanish), th (Thai)
Training Details
Data Sources: A new mix of publicly available online data.
Data Volume:
Methodology: Supervised fine-tuning (SFT) and reinforcement learning with human feedback (RLHF)
Context Length:
Hardware Used: Meta's custom built GPU cluster
Model Architecture: Optimized transformer architecture
Safety Evaluation
Methodologies: Adversarial testing, Responsible AI guidelines, Red teaming
Findings: Maintained net zero greenhouse gas emissions
Risk Categories: Misinformation, Bias, Prohibited uses, Critical risk areas
Ethical Considerations: Following Responsible Use Guide
Responsible Ai Considerations
Fairness: Focus on equitable and impartial treatment across different user backgrounds
Transparency: Openness about model capabilities and limitations, safety concerns
Accountability: Meta and developers are responsible for the use of the model
Mitigation Strategies: Incorporation of red-teaming and community feedback for improvements
Input Output
Input Format:
Accepted Modalities:
Output Format: Multilingual Text and code
Performance Tips: Utilize supervised fine-tuning to align with human preferences
Release Notes
Version:
Date:
Notes: Release of instruction tuned versions, focus on multilingual dialogue use cases
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Instruction Following and Task Automation
Factuality and Completeness of Knowledge
Censorship and Alignment
Data Analysis and Insight Generation
Text Generation
Text Summarization and Feature Extraction
Code Generation
Multi-Language Support and Translation
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Release v20260328a