SEBIS/code_trans_t5_small_source_code_summarization_sql
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1---2tags:3- summarization4widget:5- text: "select time ( col0 ) from tab0"6 7---8 9 10 11# CodeTrans model for source code summarization sql12Pretrained model on programming language sql using the t5 small model architecture. It was first released in13[this repository](https://github.com/agemagician/CodeTrans). This model is trained on tokenized sql code functions: it works best with tokenized sql functions.14 15 16## Model description17 18This CodeTrans model is based on the `t5-small` model. It has its own SentencePiece vocabulary model. It used single-task training on source code summarization sql dataset.19 20## Intended uses & limitations21 22The model could be used to generate the description for the sql function or be fine-tuned on other sql code tasks. It can be used on unparsed and untokenized sql code. However, if the sql code is tokenized, the performance should be better.23 24### How to use25 26Here is how to use this model to generate sql function documentation using Transformers SummarizationPipeline:27 28```python29from transformers import AutoTokenizer, AutoModelWithLMHead, SummarizationPipeline30 31pipeline = SummarizationPipeline(32 model=AutoModelWithLMHead.from_pretrained("SEBIS/code_trans_t5_small_source_code_summarization_sql"),33 tokenizer=AutoTokenizer.from_pretrained("SEBIS/code_trans_t5_small_source_code_summarization_sql", skip_special_tokens=True),34 device=035)36 37tokenized_code = "select time ( col0 ) from tab0"38pipeline([tokenized_code])39```40Run this example in [colab notebook](https://github.com/agemagician/CodeTrans/blob/main/prediction/single%20task/source%20code%20summarization/sql/small_model.ipynb).41## Training data42 43The supervised training tasks datasets can be downloaded on [Link](https://www.dropbox.com/sh/488bq2of10r4wvw/AACs5CGIQuwtsD7j_Ls_JAORa/finetuning_dataset?dl=0&subfolder_nav_tracking=1)44 45 46## Evaluation results47 48For the source code summarization tasks, different models achieves the following results on different programming languages (in BLEU score):49 50Test results :51 52| Language / Model | Python | SQL | C# |53| -------------------- | :------------: | :------------: | :------------: |54| CodeTrans-ST-Small | 8.45 | 17.55 | 19.74 |55| CodeTrans-ST-Base | 9.12 | 15.00 | 18.65 | 56| CodeTrans-TF-Small | 10.06 | 17.71 | 20.40 |57| CodeTrans-TF-Base | 10.94 | 17.66 | 21.12 |58| CodeTrans-TF-Large | 12.41 | 18.40 | 21.43 |59| CodeTrans-MT-Small | 13.11 | 19.15 | 22.39 |60| CodeTrans-MT-Base | **13.37** | 19.24 | 23.20 |61| CodeTrans-MT-Large | 13.24 | 19.40 | **23.57** |62| CodeTrans-MT-TF-Small | 12.10 | 18.25 | 22.03 |63| CodeTrans-MT-TF-Base | 10.64 | 16.91 | 21.40 |64| CodeTrans-MT-TF-Large | 12.14 | **19.98** | 21.10 |65| CODE-NN | -- | 18.40 | 20.50 |66 67 68> Created by [Ahmed Elnaggar](https://twitter.com/Elnaggar_AI) | [LinkedIn](https://www.linkedin.com/in/prof-ahmed-elnaggar/) and Wei Ding | [LinkedIn](https://www.linkedin.com/in/wei-ding-92561270/)69 