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| dataset_info: | |
| features: | |
| - name: instruction | |
| dtype: string | |
| - name: code | |
| dtype: string | |
| - name: response | |
| dtype: string | |
| - name: file | |
| dtype: string | |
| splits: | |
| - name: train | |
| num_bytes: 247832934 | |
| num_examples: 16440 | |
| download_size: 86431840 | |
| dataset_size: 247832934 | |
| configs: | |
| - config_name: default | |
| data_files: | |
| - split: train | |
| path: data/train-* | |
| license: mit | |
| task_categories: | |
| - text-generation | |
| language: | |
| - en | |
| tags: | |
| - code | |
| pretty_name: python docstring dataset | |
| size_categories: | |
| - 10K<n<100K | |
| # Python Docstring Diff Dataset | |
| This dataset contains training samples for models that generate Python documentation patches. | |
| Each example provides a Python source file with its docstrings removed and a corresponding unified diff patch that restores the documentation. | |
| The dataset is designed for training or evaluating language models that assist with: | |
| * Automatic code documentation | |
| * Docstring generation | |
| * Code review automation | |
| * Developer tooling | |
| * Dataset Structure | |
| Each entry contains the following fields: | |
| Field Description | |
| ------------------- | |
| instruction| Task instruction given to the model | |
| code| Python source code with docstrings removed | |
| response| A unified diff patch that adds the correct docstrings | |
| file| Original file path from the source project | |
| ## Task Format | |
| The model receives a Python file missing its documentation and must produce a unified diff that adds appropriate docstrings. | |
| Example input: | |
| ```python | |
| def load_json(path): | |
| with open(path) as f: | |
| return json.load(f) | |
| ``` | |
| Example expected output: | |
| ```diff | |
| --- a/file.py | |
| +++ b/file.py | |
| @@ | |
| def load_json(path): | |
| + """Load JSON data from a file path.""" | |
| with open(path) as f: | |
| return json.load(f) | |
| ``` | |
| ## Data Sources | |
| The dataset was generated by scanning Python packages in github. | |
| Docstrings were extracted from functions, classes, async functions, methods, and modules using Python's AST parser. | |
| Low-quality documentation was filtered out using heuristics such as: | |
| * Minimum docstring length | |
| * Removal of TODO or placeholder documentation | |
| * Deduplication of similar examples | |
| ## Intended Use | |
| This dataset is useful for training models that perform: | |
| * automatic docstring generation | |
| * documentation patch creation | |
| * codebase documentation improvement tools | |
| * AI-assisted code review systems | |
| ## License | |
| This dataset is released under the MIT License. |