๐ซ Community Model> Phi-3.1 mini 4k instruct by Microsoft
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Model creator: Microsoft
Original model: Phi-3-mini-4k-instruct
GGUF quantization: provided by bartowski based on llama.cpp
release b3460
Model Summary:
Though the name was left as Phi-3 in Microsoft's release, this is NOT the same model as before! It features massive improvements across a range of benchmarks, so we've renamed it as Phi-3.1 for clarity.
This update used additional post-training data which improved instruction following, structuring output, multi-turn conversations, explicitly support <|system|> tag, and significantly improve reasoning capability.
This model is tuned with common sense, language understanding, math, code, long conteext, and logical reasoning as the primary focus.
Prompt template:
Choose the Phi 3
preset in your LM Studio.
Under the hood, the model will see a prompt that's formatted like so:
<|system|>
You are a helpful AI assistant.<|end|>
<|user|>
{prompt}<|end|>
<|assistant|>
Technical Details
Phi-3.1 Mini-4K-Instruct has 3.8B parameters and is a dense decoder-only Transformer model. The model is fine-tuned with Supervised fine-tuning (SFT) and Direct Preference Optimization (DPO) to ensure alignment with human preferences and safety guidlines.
Context length: 4K tokens
This model was trained on 3.3T tokens of data and is a combination:
- publicly available documents that were filtered rigorously for quality, selected high-quality educational data, and code
- Newly created synthetic, โtextbook-likeโ data for the purpose of teaching math, coding, common sense reasoning, general knowledge of the world (science, daily activities, theory of mind, etc.)
- High quality chat format supervised data covering various topics to reflect human preferences on different aspects such as instruct-following, truthfulness, honesty and helpfulness.
Phi 3.1 features additional tuning based on customer feedback, emphasizing instruction following, structure output, multi-turn conversation quality, explicitly support <|system|> tag, and significantly improve reasoning capability.
Find more details on the arXiv report here
Special thanks
๐ Special thanks to Georgi Gerganov and the whole team working on llama.cpp for making all of this possible.
๐ Special thanks to Kalomaze for his dataset (linked here) that was used for calculating the imatrix for the IQ1_M and IQ2_XS quants, which makes them usable even at their tiny size!
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microsoft/Phi-3-mini-4k-instruct