TokenBender
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badeea0
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931deff
Create README.md
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README.md
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---
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### Overview:
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description:
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This is a llama2 7B HF chat model fine-tuned on 122k code instructions. In my early experiments it seems to be doing very well.
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additional_info:
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It's a bottom of the barrel model 😂 but after quantization it can be
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valuable for sure. It definitely proves that a 7B can be useful for boilerplate
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code stuff though.
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### Plans:
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next_steps: "I've a few things in mind and after that this will be more valuable."
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tasks:
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- name: "I'll quantize these"
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timeline: "Possibly tonight or tomorrow in the day"
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result: "Then it can be run locally with 4G ram."
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- name: "I've used alpaca style instruction tuning"
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improvement: |
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I'll switch to llama2 style [INST]<<SYS>> style and see if
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it improves anything.
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- name: "HumanEval report and checking for any training data leaks"
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- attempt: "I'll try 8k context via RoPE enhancement"
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hypothesis: "Let's see if that degrades performance or not."
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commercial_use: |
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So far I think this can be used commercially but this is a adapter on Meta's llama2 with
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some gating issues so that is there.
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contact_info: "If you find any issues or want to just holler at me, you can reach out to me - https://twitter.com/4evaBehindSOTA"
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### Library:
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name: "peft"
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### Training procedure:
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quantization_config:
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load_in_8bit: False
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load_in_4bit: True
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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: "nf4"
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bnb_4bit_use_double_quant: False
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bnb_4bit_compute_dtype: "float16"
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### Framework versions:
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PEFT: "0.5.0.dev0"
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