Papers by Xenia Heilmann

1 papers
From If-Statements to ML Pipelines: Revisiting Bias in Code-Generation (2026.findings-acl)

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Challenge: Existing methods to evaluate code generation bias focus on overt discrimination through simple conditional statements.
Approach: They examine ML pipelines that exhibit substantially greater bias than simple conditionals . they challenge simple conditional statements as valid proxies for bias evaluation .
Outcome: The proposed model underestimates real-world bias in generating machine learning pipelines . the model maintains equal performance on simple conditionals and ML pipelines, the study shows .

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