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README.md
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library_name: peft
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---
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## Training procedure
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- load_in_8bit: True
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- load_in_4bit: False
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- llm_int8_threshold: 6.0
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- llm_int8_skip_modules: None
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- llm_int8_enable_fp32_cpu_offload: False
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- llm_int8_has_fp16_weight: False
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- bnb_4bit_quant_type: fp4
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- bnb_4bit_use_double_quant: False
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- bnb_4bit_compute_dtype: float32
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### Framework versions
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---
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datasets:
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- ewof/code-alpaca-instruct-unfiltered
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library_name: peft
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tags:
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- llama2-7b
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- code
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- instruct
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- instruct-code
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- code-alpaca
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- alpaca-instruct
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- alpaca
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- llama7b
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- gpt2
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We finetuned Llama2-7B on Code-Alpaca-Instruct Dataset (ewof/code-alpaca-instruct-unfiltered) for 5 epochs or ~ 25,000 steps using [MonsterAPI](https://monsterapi.ai) no-code [LLM finetuner](https://docs.monsterapi.ai/fine-tune-a-large-language-model-llm).
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This dataset is HuggingFaceH4/CodeAlpaca_20K unfiltered, removing 36 instances of blatant alignment.
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The finetuning session got completed in 4 hours and costed us only `$16` for the entire finetuning run!
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#### Hyperparameters & Run details:
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- Model Path: meta-llama/Llama-2-7b
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- Dataset: ewof/code-alpaca-instruct-unfiltered
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- Learning rate: 0.0003
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- Number of epochs: 5
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- Data split: Training: 90% / Validation: 10%
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- Gradient accumulation steps: 1
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Loss metrics:
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---
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license: apache-2.0
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