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README.md
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### Response:
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-
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### Response:
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+
```
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+
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# Original model card: WizardLM's Wizardcoder 33B V1.1
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## WizardCoder: Empowering Code Large Language Models with Evol-Instruct
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<p style="font-size:28px;" align="center">
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🏠 <a href="https://wizardlm.github.io/" target="_blank">Home Page</a> </p>
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<p align="center">
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<p align="center">
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🤗 <a href="https://huggingface.co/WizardLM" target="_blank">HF Repo</a> •🐱 <a href="https://github.com/nlpxucan/WizardLM" target="_blank">Github Repo</a> • 🐦 <a href="https://twitter.com/WizardLM_AI" target="_blank">Twitter</a> </p>
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<p align="center">
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📃 <a href="https://arxiv.org/abs/2304.12244" target="_blank">[WizardLM]</a> • 📃 <a href="https://arxiv.org/abs/2306.08568" target="_blank">[WizardCoder]</a> • 📃 <a href="https://arxiv.org/abs/2308.09583" target="_blank">[WizardMath]</a> <br>
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</p>
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<p align="center">
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👋 Join our <a href="https://discord.gg/VZjjHtWrKs" target="_blank">Discord</a>
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</p>
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## News
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[2023/01/04] 🔥 We released **WizardCoder-33B-V1.1** trained from deepseek-coder-33b-base, the **SOTA OSS Code LLM** on [EvalPlus Leaderboard](https://evalplus.github.io/leaderboard.html), achieves **79.9 pass@1** on HumanEval, **73.2 pass@1** on HumanEval-Plus, **78.9 pass@1** on MBPP, and **66.9 pass@1** on MBPP-Plus.
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[2023/01/04] 🔥 **WizardCoder-33B-V1.1** outperforms **ChatGPT 3.5**, **Gemini Pro**, and **DeepSeek-Coder-33B-instruct** on HumanEval and HumanEval-Plus pass@1.
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[2023/01/04] 🔥 **WizardCoder-33B-V1.1** is comparable with **ChatGPT 3.5**, and surpasses **Gemini Pro** on MBPP and MBPP-Plus pass@1.
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| Model | Checkpoint | Paper | HumanEval | HumanEval+ | MBPP | MBPP+ | License |
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| ----- |------| ---- |------|-------| ----- | ----- |----- |
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| GPT-4-Turbo (Nov 2023) | - | - | 85.4 | 81.7 | 83.0 | 70.7 |-|
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| GPT-4 (May 2023) | - | - | 88.4 | 76.8 | - | - |-|
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| GPT-3.5-Turbo (Nov 2023) | - | - | 72.6 | 65.9 | 81.7 | 69.4 |-|
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| Gemini Pro | - | - | 63.4 | 55.5 | 72.9 | 57.9 |-|
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| DeepSeek-Coder-33B-instruct | - | - | 78.7 | 72.6 | 78.7 | 66.7 |-|
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| **WizardCoder-33B-V1.1** | 🤗 <a href="https://huggingface.co/WizardLM/WizardCoder-33B-V1.1" target="_blank">HF Link</a> | 📃 <a href="https://arxiv.org/abs/2306.08568" target="_blank">[WizardCoder]</a> | 79.9 | 73.2 | 78.9 | 66.9 | <a href="https://huggingface.co/WizardLM/WizardMath-7B-V1.1/resolve/main/LICENSE" target="_blank">MSFTResearch</a> |
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| WizardCoder-Python-34B-V1.0 | 🤗 <a href="https://huggingface.co/WizardLM/WizardCoder-Python-34B-V1.0" target="_blank">HF Link</a> | 📃 <a href="https://arxiv.org/abs/2306.08568" target="_blank">[WizardCoder]</a> | 73.2 | 64.6 | 73.2 | 59.9 | <a href="https://ai.meta.com/resources/models-and-libraries/llama-downloads/" target="_blank">Llama2</a> |
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| WizardCoder-15B-V1.0 | 🤗 <a href="https://huggingface.co/WizardLM/WizardCoder-15B-V1.0" target="_blank">HF Link</a> | 📃 <a href="https://arxiv.org/abs/2306.08568" target="_blank">[WizardCoder]</a> | 59.8 | 52.4 | -- | -- | <a href="https://huggingface.co/spaces/bigcode/bigcode-model-license-agreement" target="_blank">OpenRAIL-M</a> |
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| WizardCoder-Python-13B-V1.0 | 🤗 <a href="https://huggingface.co/WizardLM/WizardCoder-Python-13B-V1.0" target="_blank">HF Link</a> | 📃 <a href="https://arxiv.org/abs/2306.08568" target="_blank">[WizardCoder]</a> | 64.0 | -- | -- | -- | <a href="https://ai.meta.com/resources/models-and-libraries/llama-downloads/" target="_blank">Llama2</a> |
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| WizardCoder-Python-7B-V1.0 | 🤗 <a href="https://huggingface.co/WizardLM/WizardCoder-Python-7B-V1.0" target="_blank">HF Link</a> | 📃 <a href="https://arxiv.org/abs/2306.08568" target="_blank">[WizardCoder]</a> | 55.5 | -- | -- | -- | <a href="https://ai.meta.com/resources/models-and-libraries/llama-downloads/" target="_blank">Llama2</a> |
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| WizardCoder-3B-V1.0 | 🤗 <a href="https://huggingface.co/WizardLM/WizardCoder-3B-V1.0" target="_blank">HF Link</a> | 📃 <a href="https://arxiv.org/abs/2306.08568" target="_blank">[WizardCoder]</a> | 34.8 | -- | -- | -- | <a href="https://huggingface.co/spaces/bigcode/bigcode-model-license-agreement" target="_blank">OpenRAIL-M</a> |
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| WizardCoder-1B-V1.0 | 🤗 <a href="https://huggingface.co/WizardLM/WizardCoder-1B-V1.0" target="_blank">HF Link</a> | 📃 <a href="https://arxiv.org/abs/2306.08568" target="_blank">[WizardCoder]</a> | 23.8 | -- | -- | -- | <a href="https://huggingface.co/spaces/bigcode/bigcode-model-license-agreement" target="_blank">OpenRAIL-M</a> |
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## ❗ Data Contamination Check:
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Before model training, we carefully and rigorously checked all the training data, and used multiple deduplication methods to verify and prevent data leakage on HumanEval and MBPP test set.
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🔥
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❗<b>Note for model system prompts usage:</b>
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Please use **the same systems prompts strictly** with us, and we do not guarantee the accuracy of the **quantified versions**.
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**Default version:**
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```
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"Below is an instruction that describes a task. Write a response that appropriately completes the request.\n\n### Instruction:\n{instruction}\n\n### Response:"
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```
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## How to Reproduce the Performance of WizardCoder-33B-V1.1
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We provide all codes [here](https://github.com/nlpxucan/WizardLM/tree/main/WizardCoder/src).
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We also provide all generated [results](https://github.com/nlpxucan/WizardLM/blob/main/WizardCoder/data/humaneval_mbpp_wizardcoder33b_v1.1_results.zip).
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```
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transformers==4.36.2
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vllm==0.2.5
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```
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(1) HumanEval and HumanEval-Plus
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- Step 1
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Code Generation (w/o accelerate)
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```bash
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model="WizardLM/WizardCoder-33B-V1.1"
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temp=0.0
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max_len=2048
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pred_num=1
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num_seqs_per_iter=1
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output_path=preds/T${temp}_N${pred_num}_WizardCoder-33B-V1.1_Greedy_Decode
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mkdir -p ${output_path}
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echo 'Output path: '$output_path
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echo 'Model to eval: '$model
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# 164 problems, 21 per GPU if GPU=8
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index=0
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gpu_num=8
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for ((i = 0; i < $gpu_num; i++)); do
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start_index=$((i * 21))
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end_index=$(((i + 1) * 21))
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gpu=$((i))
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echo 'Running process #' ${i} 'from' $start_index 'to' $end_index 'on GPU' ${gpu}
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((index++))
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(
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CUDA_VISIBLE_DEVICES=$gpu python humaneval_gen.py --model ${model} \
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--start_index ${start_index} --end_index ${end_index} --temperature ${temp} \
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--num_seqs_per_iter ${num_seqs_per_iter} --N ${pred_num} --max_len ${max_len} --output_path ${output_path} --greedy_decode
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) &
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if (($index % $gpu_num == 0)); then wait; fi
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done
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```
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Code Generation (w/ vllm accelerate)
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```bash
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model="WizardLM/WizardCoder-33B-V1.1"
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temp=0.0
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max_len=2048
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pred_num=1
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num_seqs_per_iter=1
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output_path=preds/T${temp}_N${pred_num}_WizardCoder-33B-V1.1_Greedy_Decode_vllm
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mkdir -p ${output_path}
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echo 'Output path: '$output_path
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echo 'Model to eval: '$model
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CUDA_VISIBLE_DEVICES=0,1,2,3 python humaneval_gen_vllm.py --model ${model} \
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--start_index 0 --end_index 164 --temperature ${temp} \
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--num_seqs_per_iter ${num_seqs_per_iter} --N ${pred_num} --max_len ${max_len} --output_path ${output_path} --num_gpus 4 --overwrite
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```
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- Step 2: Get the score
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Install [Eval-Plus](https://github.com/evalplus/evalplus) benchmark.
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```bash
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git clone https://github.com/evalplus/evalplus.git
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cd evalplus
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export PYTHONPATH=$PYTHONPATH:$(pwd)
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pip install -r requirements.txt
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```
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Get HumanEval and HumanEval-Plus scores.
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```bash
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output_path=preds/T0.0_N1_WizardCoder-33B-V1.1_Greedy_Decode
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echo 'Output path: '$output_path
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python process_humaneval.py --path ${output_path} --out_path ${output_path}.jsonl --add_prompt
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evalplus.evaluate --dataset humaneval --samples ${output_path}.jsonl
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```
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(2) MBPP and MBPP-Plus
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The preprocessed questions are provided in [mbppplus.json](https://github.com/nlpxucan/WizardLM/blob/main/WizardCoder/data/mbppplus.json).
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- Step 1
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Code Generation (w/o accelerate)
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```bash
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model="WizardLM/WizardCoder-33B-V1.1"
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temp=0.0
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max_len=2048
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pred_num=1
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num_seqs_per_iter=1
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output_path=preds/MBPP_T${temp}_N${pred_num}_WizardCoder-33B-V1.1_Greedy_Decode
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mkdir -p ${output_path}
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echo 'Output path: '$output_path
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echo 'Model to eval: '$model
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# 399 problems, 50 per GPU if GPU=8
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index=0
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gpu_num=8
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for ((i = 0; i < $gpu_num; i++)); do
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start_index=$((i * 50))
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end_index=$(((i + 1) * 50))
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gpu=$((i))
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echo 'Running process #' ${i} 'from' $start_index 'to' $end_index 'on GPU' ${gpu}
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((index++))
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(
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CUDA_VISIBLE_DEVICES=$gpu python mbppplus_gen.py --model ${model} \
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--start_index ${start_index} --end_index ${end_index} --temperature ${temp} \
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--num_seqs_per_iter ${num_seqs_per_iter} --N ${pred_num} --max_len ${max_len} --output_path ${output_path} --mbpp_path "mbppplus.json" --greedy_decode
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) &
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if (($index % $gpu_num == 0)); then wait; fi
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done
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```
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Code Generation (w/ vllm accelerate)
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```bash
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model="WizardLM/WizardCoder-33B-V1.1"
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temp=0.0
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max_len=2048
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pred_num=1
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num_seqs_per_iter=1
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output_path=preds/MBPP_T${temp}_N${pred_num}_WizardCoder-33B-V1.1_Greedy_Decode_vllm
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mkdir -p ${output_path}
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echo 'Output path: '$output_path
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echo 'Model to eval: '$model
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CUDA_VISIBLE_DEVICES=0,1,2,3 python mbppplus_gen_vllm.py --model ${model} \
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--start_index ${start_index} --end_index ${end_index} --temperature ${temp} \
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+
--num_seqs_per_iter ${num_seqs_per_iter} --N ${pred_num} --max_len ${max_len} --output_path ${output_path} --mbpp_path "mbppplus.json" --num_gpus 4
|
| 232 |
+
```
|
| 233 |
+
|
| 234 |
+
- Step 2: Get the score
|
| 235 |
+
|
| 236 |
+
Install [Eval-Plus](https://github.com/evalplus/evalplus) benchmark.
|
| 237 |
+
```bash
|
| 238 |
+
git clone https://github.com/evalplus/evalplus.git
|
| 239 |
+
cd evalplus
|
| 240 |
+
export PYTHONPATH=$PYTHONPATH:$(pwd)
|
| 241 |
+
pip install -r requirements.txt
|
| 242 |
+
```
|
| 243 |
+
Get HumanEval and HumanEval-Plus scores.
|
| 244 |
+
```bash
|
| 245 |
+
output_path=preds/MBPP_T0.0_N1_WizardCoder-33B-V1.1_Greedy_Decode
|
| 246 |
+
|
| 247 |
+
echo 'Output path: '$output_path
|
| 248 |
+
python mbppplus_process_preds.py --path ${output_path} --out_path ${output_path}.jsonl --add_prompt
|
| 249 |
+
|
| 250 |
+
evalplus.evaluate --dataset mbpp --samples ${output_path}.jsonl
|
| 251 |
+
```
|
| 252 |
+
|
| 253 |
+
|
| 254 |
+
## Citation
|
| 255 |
+
|
| 256 |
+
Please cite the repo if you use the data, method or code in this repo.
|
| 257 |
+
|
| 258 |
+
```
|
| 259 |
+
@article{luo2023wizardcoder,
|
| 260 |
+
title={WizardCoder: Empowering Code Large Language Models with Evol-Instruct},
|
| 261 |
+
author={Luo, Ziyang and Xu, Can and Zhao, Pu and Sun, Qingfeng and Geng, Xiubo and Hu, Wenxiang and Tao, Chongyang and Ma, Jing and Lin, Qingwei and Jiang, Daxin},
|
| 262 |
+
journal={arXiv preprint arXiv:2306.08568},
|
| 263 |
+
year={2023}
|
| 264 |
+
}
|
| 265 |
+
```
|
| 266 |
+
|
| 267 |
+
<!-- original-model-card end -->
|