Introduction of code_trans_t5_small_source_code_summarization_python
Model Details of code_trans_t5_small_source_code_summarization_python
CodeTrans model for source code summarization python
Pretrained model on programming language python using the t5 small model architecture. It was first released in
this repository
. This model is trained on tokenized python code functions: it works best with tokenized python functions.
Model description
This 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 python dataset.
Intended uses & limitations
The model could be used to generate the description for the python function or be fine-tuned on other python code tasks. It can be used on unparsed and untokenized python code. However, if the python code is tokenized, the performance should be better.
How to use
Here is how to use this model to generate python function documentation using Transformers SummarizationPipeline:
from transformers import AutoTokenizer, AutoModelWithLMHead, SummarizationPipeline
pipeline = SummarizationPipeline(
model=AutoModelWithLMHead.from_pretrained("SEBIS/code_trans_t5_small_source_code_summarization_python"),
tokenizer=AutoTokenizer.from_pretrained("SEBIS/code_trans_t5_small_source_code_summarization_python", skip_special_tokens=True),
device=0
)
tokenized_code = '''with open ( CODE_STRING , CODE_STRING ) as in_file : buf = in_file . readlines ( ) with open ( CODE_STRING , CODE_STRING ) as out_file : for line in buf : if line == " ; Include this text " : line = line + " Include below " out_file . write ( line ) '''
pipeline([tokenized_code])
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