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ViCoS Lab

Authors

Lojze Žust, MSc
Lojze Žust, MSc
Janez Perš
Janez Perš
Matej Kristan, PhD
Matej Kristan, PhD

Links

  •   External link
  •   arXiv link

Tags

dataset semantic segmentation maritime obstacle detection panoptic segmentation

LaRS: A Diverse Panoptic Maritime Obstacle Detection Dataset and Benchmark

Lojze Žust, Janez Perš and Matej Kristan
ICCV 2023, 2023,

The progress in maritime obstacle detection is hindered by the lack of a diverse dataset that adequately captures the complexity of general maritime environments. We present the first maritime panoptic obstacle detection benchmark LaRS, featuring scenes from Lakes, Rivers and Seas. Our major contribution is the new dataset, which boasts the largest diversity in recording locations, scene types, obstacle classes, and acquisition conditions among the related datasets. LaRS is composed of over 4000 per-pixel labeled key frames with nine preceding frames to allow utilization of the temporal texture, amounting to over 40k frames. Each key frame is annotated with 8 thing, 3 stuff classes and 19 global scene attributes. We report the results of 27 semantic and panoptic segmentation methods, along with several performance insights and future research directions. To enable objective evaluation, we have implemented an online evaluation server. The LaRS dataset, evaluation toolkit and benchmark are publicly available at: https://lojzezust.github.io/lars-dataset

Faculty of Computer and Information Science

Visual Cognitive Systems Laboratory

University of Ljubljana

Faculty of Computer and Information Science

Večna pot 113
SI-1000 Ljubljana
Slovenia
Tel.: +386 1 479 8245