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Revisiting Shadow Detection: A New Benchmark Dataset for Complex World | IEEE Journals & Magazine | IEEE Xplore

Revisiting Shadow Detection: A New Benchmark Dataset for Complex World


Abstract:

Shadow detection in general photos is a nontrivial problem, due to the complexity of the real world. Though recent shadow detectors have already achieved remarkable perfo...Show More

Abstract:

Shadow detection in general photos is a nontrivial problem, due to the complexity of the real world. Though recent shadow detectors have already achieved remarkable performance on various benchmark data, their performance is still limited for general real-world situations. In this work, we collected shadow images for multiple scenarios and compiled a new dataset of 10,500 shadow images, each with labeled ground-truth mask, for supporting shadow detection in the complex world. Our dataset covers a rich variety of scene categories, with diverse shadow sizes, locations, contrasts, and types. Further, we comprehensively analyze the complexity of the dataset, present a fast shadow detection network with a detail enhancement module to harvest shadow details, and demonstrate the effectiveness of our method to detect shadows in general situations.
Published in: IEEE Transactions on Image Processing ( Volume: 30)
Page(s): 1925 - 1934
Date of Publication: 11 January 2021

ISSN Information:

PubMed ID: 33428570

Funding Agency:


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