Papers by Faiz Ghifari Haznitrama

2 papers
OLA: Output Language Alignment in Code-Switched LLM Interactions (2026.acl-long)

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Challenge: Existing LLMs that code-switch between languages often fail to align with user's implicit language expectation, causing responses to be in undesired languages.
Approach: They propose a benchmark to evaluate LLMs’ Output Language Alignment in code-switched interactions.
Outcome: The proposed benchmark evaluates LLMs’ Output Language Alignment in code-switched interactions.
BabyBabelLM: A Multilingual Benchmark of Developmentally Plausible Training Data (2026.eacl-long)

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Challenge: prevailing trend in language modeling research is to prioritize scaling, authors say . from infancy to maturity, English learners acquire language through exposure to less than 100M words .
Approach: They propose a multilingual collection of datasets modeling the language a person observes from birth until they acquire a native language.
Outcome: The proposed models outperform models trained on a fixed, developmentally plausible English corpus on various benchmarks.

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