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README.md
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Using OpenOrca GPT-4 data + cosmopedia for some extra data + dolly15k for instruct
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## Model Details:
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- 8 attention heads
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- 384 embeddings size
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- Batch size 16
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- llama.cpp (train-text-from-scratch)
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- 96gb RAM
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- 10 iterations
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- Loss Target = 2.5 to 3.0
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- Approx
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- Training data = Refer to OpenOrca page
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## Notes:
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Using OpenOrca GPT-4 data + cosmopedia for some extra data + dolly15k for instruct
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## Model Details:
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- 83.59M parameters (83591800)
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- 8 attention heads
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- 40 layers
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- 384 embeddings size
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- 4096/8192/16384 context (please use 2/4x RoPE scaling, may train a 16k finetuned version later)
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- Batch size 16
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- llama.cpp (train-text-from-scratch)
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- 96gb RAM
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- 10 iterations
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- Loss Target = 2.5 to 3.0
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- Approx 480 samples/1M train tokens (>0.0001 epoches)
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- Training data = Refer to OpenOrca page
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## Notes:
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