Nick Doiron commited on
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reattempt upload

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.gitignore ADDED
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+ .DS_Store
README.md CHANGED
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  ---
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  license: mit
 
 
 
 
 
 
 
 
 
 
 
 
 
 
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  ---
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
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  ---
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  license: mit
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+ datasets:
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+ - jmhessel/newyorker_caption_contest
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+ language:
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+ - en
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+ tags:
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+ - nyc
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+ - llama2
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+ widget:
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+ - text: "This scene takes place in the following location: a bank. Three people are standing in line at the bank. The bank teller is a traditional pirate with a hook hand, eye patch, and a parrot. The scene includes: Piracy, Bank teller.\ncaption: Can I interest you in opening an offshore account?\nexplanation of the caption:\n"
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+ example_title: "Training prompt format"
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+ - text: "In this task, you will see a description of an uncanny situation. Then, you will see a joke that was written about the situation. Explain how the joke relates to the situation and why it is funny.\n###\nThis scene takes place in the following location: a bank. Three people are standing in line at the bank. The bank teller is a traditional pirate with a hook hand, eye patch, and a parrot. The scene includes: Piracy, Bank teller.\ncaption: Can I interest you in opening an offshore account?\nexplanation of the caption:\n"
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+ example_title: "Paper prompt format"
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+ - text: "This scene takes place in the following location: a bank. Three people are standing in line at the bank. The bank teller is a traditional pirate with a hook hand, eye patch, and a parrot. The scene includes: Piracy, Bank teller.\ncaption: Can I interest you in opening an offshore account?\nthe caption is funny because"
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+ example_title: "Suggested prompt format"
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  ---
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+
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+ # nyrkr-joker-llama
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+
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+ Essentials:
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+ - Based on LLaMa2-7b-hf (version 2, 7B params)
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+ - Used [QLoRA](https://github.com/artidoro/qlora/blob/main/qlora.py) to fine-tune on [1.2k rows of New Yorker caption contest](https://huggingface.co/datasets/jmhessel/newyorker_caption_contest)
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+ - Merged LLaMa2 with the adapter weights (from checkpoint step=160, epoch=2.7)
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+
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+ ## Prompt options
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+
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+ [The original paper](https://arxiv.org/abs/2209.06293), Figure 10 uses this format for joke explanations:
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+
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+ `In this task, you will see a description of an uncanny situation. Then, you will see a joke that was written about the situation. Explain how the joke relates to the situation and why it is funny.
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+ ###
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+
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+ {few-shot examples separated by ###, newline after "explanation of the caption:"}
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+ This scene takes place in the following location: a bank. Three people are standing in line at the bank. The bank teller is a traditional pirate with a hook hand, eye patch, and a parrot. The scene includes: Piracy, Bank teller.
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+ caption: Can I interest you in opening an offshore account?
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+ explanation of the caption:
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+ `
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+
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+ In training, I used just the individual example:
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+
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+ `This scene takes place in the following location: a bank. Three people are standing in line at the bank. The bank teller is a traditional pirate with a hook hand, eye patch, and a parrot. The scene includes: Piracy, Bank teller.
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+ caption: Can I interest you in opening an offshore account?
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+ explanation of the caption:\n`
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+
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+ In inference, I had some better results with a more natural prompt (no newline or space at end)
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+
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+ `This scene takes place in the following location: a bank. Three people are standing in line at the bank. The bank teller is a traditional pirate with a hook hand, eye patch, and a parrot. The scene includes: Piracy, Bank teller.
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+ caption: Can I interest you in opening an offshore account?
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+ the caption is funny because`
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+
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+ ## Training script
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+
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+ Trained on a V100
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+
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+ ```
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+ git clone https://github.com/artidoro/qlora
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+ cd qlora
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+
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+ pip3 install -r requirements.txt --quiet
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+
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+ ! cd qlora && python qlora.py \
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+ --model_name_or_path ../llama-2-7b-hf \
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+ --output_dir ../thatsthejoke \
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+ --logging_steps 20 \
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+ --save_strategy steps \
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+ --data_seed 42 \
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+ --save_steps 80 \
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+ --save_total_limit 10 \
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+ --evaluation_strategy steps \
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+ --max_new_tokens 64 \
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+ --dataloader_num_workers 1 \
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+ --group_by_length \
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+ --logging_strategy steps \
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+ --remove_unused_columns False \
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+ --do_train \
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+ --lora_r 64 \
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+ --lora_alpha 16 \
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+ --lora_modules all \
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+ --double_quant \
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+ --quant_type nf4 \
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+ --bits 4 \
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+ --warmup_ratio 0.03 \
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+ --lr_scheduler_type constant \
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+ --gradient_checkpointing \
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+ --dataset /content/nycaptions.jsonl \
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+ --dataset_format 'self-instruct' \
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+ --source_max_len 16 \
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+ --target_max_len 512 \
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+ --per_device_train_batch_size 1 \
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+ --gradient_accumulation_steps 16 \
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+ --max_steps 250 \
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+ --eval_steps 187 \
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+ --learning_rate 0.0002 \
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+ --adam_beta2 0.999 \
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+ --max_grad_norm 0.3 \
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+ --lora_dropout 0.1 \
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+ --weight_decay 0.0 \
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+ --seed 0
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+ ```
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+ "LlamaForCausalLM"
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+ "model_type": "llama",
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+ "transformers_version": "4.31.0",
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+ "use_cache": true,
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+ "vocab_size": 32000
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+ }
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