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cs.CL2026
APM: Evaluating Style Personalization in LLMs with Arbitrary Preference Mappings
Philipp Spohn, Leander Girrbach, Zeynep Akata
Typical LLM responses tend to follow a default style, even though users often have distinct preferences regarding tone, verbosity, and formality that they do not explicitly state i…
cs.CL2025
Align-then-Unlearn: Embedding Alignment for LLM Unlearning
Philipp Spohn, Leander Girrbach, Jessica Bader +1
As large language models (LLMs) are trained on massive datasets, they have raised significant privacy and ethical concerns due to their potential to inadvertently retain sensitive…