Papers › Language-Agnostic Representation Learning of Source Code from Structure and Context

Language-Agnostic Representation Learning of Source Code from Structure and Context

21 Mar 2021ICLR 2021 1arXiv:2103.11318archive 2025-07-28

Daniel Zügner, Tobias Kirschstein, Michele Catasta, Jure Leskovec, Stephan Günnemann

Source code (Context) and its parsed abstract syntax tree (AST; Structure) are two complementary representations of the same computer program. Traditionally, designers of machine learning models have relied predominantly either on Structure or Context. We propose a new model, which jointly learns on Context and Structure of source code. In contrast to previous approaches, our model uses only language-agnostic features, i.e., source code and features that can be computed directly from the AST. Besides obtaining state-of-the-art on monolingual code summarization on all five programming languages considered in this work, we propose the first multilingual code summarization model. We show that jointly training on non-parallel data from multiple programming languages improves results on all individual languages, where the strongest gains are on low-resource languages. Remarkably, multilingual training only from Context does not lead to the same improvements, highlighting the benefits of combining Structure and Context for representation learning on code.

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CodeTransformerCoreConfig danielzuegner/code-transformer/code_transformer/modeling/code_transformer/code_transformer.py official repository ran MIT (permissive) · 1f86a0bbd905f54e · report
CodeTransformerLayerConfig danielzuegner/code-transformer/code_transformer/modeling/code_transformer/code_transformer.py official repository ran · metamorphic tier: deterministic MIT (permissive) · 6ec53c7fa001cf25 · report
DotDict danielzuegner/code-transformer/code_transformer/modeling/code_transformer/code_transformer.py official repository ran · metamorphic tier: deterministic MIT (permissive) · 0501734331999a3e · report
ModelConfiguration danielzuegner/code-transformer/code_transformer/modeling/code_transformer/code_transformer.py official repository ran · metamorphic tier: deterministic MIT (permissive) · 0dc44fcc604df533 · report
RelativeMultiheadAttention danielzuegner/code-transformer/code_transformer/modeling/code_transformer/code_transformer.py official repository ran · metamorphic tier: deterministic MIT (permissive) · 64b531a85f4d4ef2 · report
TransformerPositionalEncoding danielzuegner/code-transformer/code_transformer/modeling/code_transformer/code_transformer.py official repository ran · metamorphic tier: deterministic fingerprinted MIT (permissive) · d4b377df24933af9 · report
CodeTransformer danielzuegner/code-transformer/code_transformer/modeling/code_transformer/code_transformer.py official repository unverified MIT (permissive) · 4a213aced5f54481 · report
CodeTransformerLayer danielzuegner/code-transformer/code_transformer/modeling/code_transformer/code_transformer.py official repository unverified MIT (permissive) · 03641c4317b0aa46 · report

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