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Papers/Part-aware Panoptic Segmentation

Part-aware Panoptic Segmentation

Daan de Geus, Panagiotis Meletis, Chenyang Lu, Xiaoxiao Wen, Gijs Dubbelman

2021-06-11CVPR 2021 1Scene ParsingPanoptic SegmentationPart-aware Panoptic SegmentationScene UnderstandingSegmentationImage Segmentation
PaperPDFCode(official)

Abstract

In this work, we introduce the new scene understanding task of Part-aware Panoptic Segmentation (PPS), which aims to understand a scene at multiple levels of abstraction, and unifies the tasks of scene parsing and part parsing. For this novel task, we provide consistent annotations on two commonly used datasets: Cityscapes and Pascal VOC. Moreover, we present a single metric to evaluate PPS, called Part-aware Panoptic Quality (PartPQ). For this new task, using the metric and annotations, we set multiple baselines by merging results of existing state-of-the-art methods for panoptic segmentation and part segmentation. Finally, we conduct several experiments that evaluate the importance of the different levels of abstraction in this single task.

Results

TaskDatasetMetricValueModel
2D Semantic SegmentationPascal Panoptic PartsmIoUPartS58.6PPS
Image SegmentationPascal Panoptic PartsmIoUPartS58.6PPS

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