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Constantin Marc Seibold

3 accepted papers

2025

Every Component Counts: Rethinking the Measure of Success for Medical Semantic Segmentation in Multi-Instance Segmentation Tasks

AAAI 2025technical

We present Connected-Component (CC)-Metrics, a novel semantic segmentation evaluation protocol, targeted to align existing semantic segmentation metrics to a multi-instance detection scenario in which each connected component matters. We motivate this setup in the common medical scenario of semantic…

2023

On the Impact of Cross-Domain Data on German Language Models

EMNLP 2023long findings

Traditionally, large language models have been either trained on general web crawls or domain-specific data. However, recent successes of generative large language models, have shed light on the benefits of cross-domain datasets. To examine the significance of prioritizing data diversity over qualit…

Cited by 0SourceScholar
2022

Reference-Guided Pseudo-Label Generation for Medical Semantic Segmentation

AAAI 2022technical

Producing densely annotated data is a difficult and tedious task for medical imaging applications. To address this problem, we propose a novel approach to generate supervision for semi-supervised semantic segmentation. We argue that visually similar regions between labeled and unlabeled images lik…

Cited by 75SourcePDFScholar