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Leander Girrbach

6 accepted papers

2026

Are Reasoning LLMs Robust to Interventions on their Chain-of-Thought?

ICLR 2026poster

Reasoning LLMs (RLLMs) generate step-by-step chains of thought (CoTs) before giving an answer, which improves performance on complex tasks and makes reasoning transparent. But how robust are these reasoning traces to disruptions that occur within them? To address this question, we introduce a contro…

Cited by 0SourcecodeScholar
2026

Person-Centric Annotations of LAION-400M: Auditing Bias and Its Transfer to Models

ICLR 2026poster

Vision-language models trained on large-scale multimodal datasets show strong demographic biases, but the role of training data in producing these biases remains unclear. A major barrier has been the lack of demographic annotations in web-scale datasets such as LAION-400M. We address this gap by cre…

Cited by 0SourceScholar
2025

Revealing and Reducing Gender Biases in Vision and Language Assistants (VLAs)

ICLR 2025poster

Pre-trained large language models (LLMs) have been reliably integrated with visual input for multimodal tasks. The widespread adoption of instruction-tuned image-to-text vision-language assistants (VLAs) like LLaVA and InternVL necessitates evaluating gender biases. We study gender bias in 22 popula…

2025

SUB: Benchmarking CBM Generalization via Synthetic Attribute Substitutions

ICCV 2025poster

Concept Bottleneck Models (CBMs) and other concept-based interpretable models show great promise for making AI applications more transparent, which is essential in fields like medicine. Despite their success, we demonstrate that CBMs struggle to reliably identify the correct concepts under distribut…