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Polygonizer: An auto-regressive building delineator

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arxiv 2304.04048 v1 pith:YUIPY2GL submitted 2023-04-08 cs.CV cs.LG

classification cs.CVcs.LG
keywords modelformatimageobjectsachievingadditionaladdressedallows
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In geospatial planning, it is often essential to represent objects in a vectorized format, as this format easily translates to downstream tasks such as web development, graphics, or design. While these problems are frequently addressed using semantic segmentation, which requires additional post-processing to vectorize objects in a non-trivial way, we present an Image-to-Sequence model that allows for direct shape inference and is ready for vector-based workflows out of the box. We demonstrate the model's performance in various ways, including perturbations to the image input that correspond to variations or artifacts commonly encountered in remote sensing applications. Our model outperforms prior works when using ground truth bounding boxes (one object per image), achieving the lowest maximum tangent angle error.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. GeoFormer: A Multi-Polygon Segmentation Transformer

    cs.CV 2024-11 conditional novelty 6.0 of 10

    GeoFormer generates multi-polygon building footprints directly from satellite images via an autoregressive transformer, reporting state-of-the-art average precision on the Aicrowd Mapping Challenge.

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