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Exploring Large Language Models for Code Explanation

25 October 2023
Paheli Bhattacharya
Manojit Chakraborty
Kartheek N S N Palepu
Vikas Pandey
Ishan Dindorkar
Rakesh Rajpurohit
Rishabh Gupta
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Abstract

Automating code documentation through explanatory text can prove highly beneficial in code understanding. Large Language Models (LLMs) have made remarkable strides in Natural Language Processing, especially within software engineering tasks such as code generation and code summarization. This study specifically delves into the task of generating natural-language summaries for code snippets, using various LLMs. The findings indicate that Code LLMs outperform their generic counterparts, and zero-shot methods yield superior results when dealing with datasets with dissimilar distributions between training and testing sets.

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