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--- |
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language: |
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- en |
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license: cc-by-nc-sa-4.0 |
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tags: |
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- code |
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- data science |
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datasets: |
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- ed001/ds-coder-instruct-v1 |
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pipeline_tag: text-generation |
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model-index: |
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- name: datascience-coder-6.7b |
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results: |
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- task: |
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type: text-generation |
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name: Text Generation |
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dataset: |
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name: AI2 Reasoning Challenge (25-Shot) |
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type: ai2_arc |
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config: ARC-Challenge |
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split: test |
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args: |
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num_few_shot: 25 |
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metrics: |
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- type: acc_norm |
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value: 34.64 |
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name: normalized accuracy |
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source: |
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url: https://huggingface.co/spaces/HuggingFaceH4/open_llm_leaderboard?query=ed001/datascience-coder-6.7b |
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name: Open LLM Leaderboard |
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- task: |
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type: text-generation |
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name: Text Generation |
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dataset: |
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name: HellaSwag (10-Shot) |
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type: hellaswag |
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split: validation |
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args: |
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num_few_shot: 10 |
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metrics: |
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- type: acc_norm |
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value: 53.83 |
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name: normalized accuracy |
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source: |
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url: https://huggingface.co/spaces/HuggingFaceH4/open_llm_leaderboard?query=ed001/datascience-coder-6.7b |
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name: Open LLM Leaderboard |
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- task: |
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type: text-generation |
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name: Text Generation |
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dataset: |
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name: MMLU (5-Shot) |
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type: cais/mmlu |
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config: all |
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split: test |
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args: |
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num_few_shot: 5 |
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metrics: |
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- type: acc |
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value: 37.96 |
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name: accuracy |
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source: |
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url: https://huggingface.co/spaces/HuggingFaceH4/open_llm_leaderboard?query=ed001/datascience-coder-6.7b |
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name: Open LLM Leaderboard |
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- task: |
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type: text-generation |
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name: Text Generation |
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dataset: |
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name: TruthfulQA (0-shot) |
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type: truthful_qa |
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config: multiple_choice |
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split: validation |
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args: |
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num_few_shot: 0 |
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metrics: |
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- type: mc2 |
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value: 44.82 |
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source: |
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url: https://huggingface.co/spaces/HuggingFaceH4/open_llm_leaderboard?query=ed001/datascience-coder-6.7b |
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name: Open LLM Leaderboard |
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- task: |
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type: text-generation |
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name: Text Generation |
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dataset: |
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name: Winogrande (5-shot) |
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type: winogrande |
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config: winogrande_xl |
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split: validation |
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args: |
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num_few_shot: 5 |
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metrics: |
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- type: acc |
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value: 55.72 |
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name: accuracy |
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source: |
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url: https://huggingface.co/spaces/HuggingFaceH4/open_llm_leaderboard?query=ed001/datascience-coder-6.7b |
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name: Open LLM Leaderboard |
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- task: |
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type: text-generation |
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name: Text Generation |
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dataset: |
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name: GSM8k (5-shot) |
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type: gsm8k |
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config: main |
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split: test |
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args: |
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num_few_shot: 5 |
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metrics: |
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- type: acc |
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value: 24.94 |
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name: accuracy |
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source: |
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url: https://huggingface.co/spaces/HuggingFaceH4/open_llm_leaderboard?query=ed001/datascience-coder-6.7b |
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name: Open LLM Leaderboard |
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--- |
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# The Data Science Coder |
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Data Science coder is a group of fine tuned models designed to help with coding for data science applications. It comes in 2 variants: 1.3b and 6.7b. Models are fine tuned from DeepSeek Coder instruct versions. Fine tuning was performed on the [ed001/ds-coder-instruct-v1](https://huggingface.co/datasets/ed001/ds-coder-instruct-v1) dataset which is constructed by filtering publicly available datasets on HuggingFace. |
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## Usage |
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```python |
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from transformers import AutoTokenizer, AutoModelForCausalLM, pipeline |
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def build_instruction_prompt(instruction): |
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return ''' |
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You are the Data Science Coder, a helpful AI assistant created by a man named Ed. |
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You help people with data science coding and you answer questions about data science in a helpful manner. |
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### Instruction: |
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{} |
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### Response: |
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'''.format(instruction.strip()).lstrip() |
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tokenizer = AutoTokenizer.from_pretrained("ed001/datascience-coder-6.7b", trust_remote_code=True) |
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model = AutoModelForCausalLM.from_pretrained("ed001/datascience-coder-6.7b", trust_remote_code=True).cuda() |
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pipe = pipeline(task="text-generation", model=model, tokenizer=tokenizer, max_length=1024, top_p=0.95) |
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result = pipe(build_instruction_prompt("Perform EDA on the Iris dataset")) |
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print(result[0]['generated_text']) |
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``` |
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## Training Details |
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lora_r: 16 |
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lora_alpha: 8 |
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lora_dropout: 0.05 |
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target_modules: q, k, v, o, gate_proj, down_proj, up_proj, lm_head |
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weight_decay: 0 |
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optmizer: paged_adamw_32bit |
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lr: 1e-4 |
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lr_scheduler: cosine |
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max_seq_len: 4096 |
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batch_size: 4 |
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max_grad_norm: 0.5 |
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warmup_ratio: 0.05 |
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num_epochs: 1 |
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The model was trained on the python susbet of the ds-coder-instruct dataset. |
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## Samples |
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<img src="https://cdn-uploads.huggingface.co/production/uploads/62618f3e6dae705b2567fb13/0H8lj26xLOfLuCD0yVmER.png" width="90%"/> |
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<img src="https://cdn-uploads.huggingface.co/production/uploads/62618f3e6dae705b2567fb13/8W62qr1cPSLsq6lLfLCib.png" width="90%"/> |
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<img src="https://cdn-uploads.huggingface.co/production/uploads/62618f3e6dae705b2567fb13/XNLclcr4KQqtPseGg2Gzn.png" width="90%"/> |
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## Contact |
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GitHub: [Ea0011](https://github.com/Ea0011) |
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# [Open LLM Leaderboard Evaluation Results](https://huggingface.co/spaces/HuggingFaceH4/open_llm_leaderboard) |
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Detailed results can be found [here](https://huggingface.co/datasets/open-llm-leaderboard/details_ed001__datascience-coder-6.7b) |
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| Metric |Value| |
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|---------------------------------|----:| |
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|Avg. |41.99| |
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|AI2 Reasoning Challenge (25-Shot)|34.64| |
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|HellaSwag (10-Shot) |53.83| |
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|MMLU (5-Shot) |37.96| |
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|TruthfulQA (0-shot) |44.82| |
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|Winogrande (5-shot) |55.72| |
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|GSM8k (5-shot) |24.94| |
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