|
--- |
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annotations_creators: [] |
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language_creators: |
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- crowdsourced |
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- expert-generated |
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language: |
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- code |
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license: |
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- cc-by-sa-4.0 |
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multilinguality: |
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- multilingual |
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size_categories: |
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- unknown |
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source_datasets: [] |
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task_categories: |
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- text-generation |
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task_ids: |
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- language-modeling |
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pretty_name: xlcost-single-prompt |
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--- |
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# XLCost for text-to-code synthesis |
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## Dataset Description |
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This is a subset of [XLCoST benchmark](https://github.com/reddy-lab-code-research/XLCoST), for text-to-code generation at program level for **2** programming languages: `Python, C++`. This dataset is based on [codeparrot/xlcost-text-to-code](https://huggingface.co/datasets/codeparrot/xlcost-text-to-code) with the following improvements: |
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* NEWLINE, INDENT and DEDENT were replaced with the corresponding ASCII codes. |
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* the code text has been reformatted using autopep8 for Python and clang-format for cpp. |
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* new columns have been introduced to allow evaluation using pass@k metric. |
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* programs containing more than one function call in the driver code were removed |
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## Languages |
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The dataset contains text in English and its corresponding code translation. The text contains a set of concatenated code comments that allow to synthesize the program. |
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## Dataset Structure |
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To load the dataset you need to specify the language(Python or C++). |
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```python |
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from datasets import load_dataset |
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load_dataset("giulio98/xlcost-single-prompt", "Python") |
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DatasetDict({ |
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train: Dataset({ |
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features: ['text', 'context', 'code', 'test', 'output', 'fn_call'], |
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num_rows: 8306 |
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}) |
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test: Dataset({ |
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features: ['text', 'context', 'code', 'test', 'output', 'fn_call'], |
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num_rows: 812 |
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}) |
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validation: Dataset({ |
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features: ['text', 'context', 'code', 'test', 'output', 'fn_call'], |
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num_rows: 427 |
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}) |
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}) |
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``` |
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## Data Fields |
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* text: natural language description. |
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* context: import libraries/global variables. |
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* code: code at program level. |
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* test: test function call. |
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* output: expected output of the function call. |
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* fn_call: name of the function to call. |
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## Data Splits |
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Each subset has three splits: train, test and validation. |
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## Citation Information |
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``` |
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@misc{zhu2022xlcost, |
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title = {XLCoST: A Benchmark Dataset for Cross-lingual Code Intelligence}, |
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url = {https://arxiv.org/abs/2206.08474}, |
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author = {Zhu, Ming and Jain, Aneesh and Suresh, Karthik and Ravindran, Roshan and Tipirneni, Sindhu and Reddy, Chandan K.}, |
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year = {2022}, |
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eprint={2206.08474}, |
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archivePrefix={arXiv} |
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} |
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``` |