Deep Hashing Learning for Visual and Semantic Retrieval of Remote Sensing Images
Weiwei Song, Shutao Li, and Jon Atli Benediktsson

TL;DR
This paper introduces a deep hashing neural network that enables both accurate retrieval and semantic classification of remote sensing images, improving efficiency and label accuracy in large-scale datasets.
Contribution
A novel deep hashing CNN framework that unifies image retrieval and semantic classification for remote sensing images.
Findings
Achieves state-of-the-art retrieval performance on remote sensing datasets.
Effectively classifies semantic labels alongside image retrieval.
Demonstrates superior accuracy compared to existing methods.
Abstract
Driven by the urgent demand for managing remote sensing big data, large-scale remote sensing image retrieval (RSIR) attracts increasing attention in the remote sensing field. In general, existing retrieval methods can be regarded as visual-based retrieval approaches which search and return a set of similar images from a database to a given query image. Although retrieval methods have achieved great success, there is still a question that needs to be responded to: Can we obtain the accurate semantic labels of the returned similar images to further help analyzing and processing imagery? Inspired by the above question, in this paper, we redefine the image retrieval problem as visual and semantic retrieval of images. Specifically, we propose a novel deep hashing convolutional neural network (DHCNN) to simultaneously retrieve the similar images and classify their semantic labels in a unified…
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Taxonomy
TopicsAdvanced Image and Video Retrieval Techniques · Remote-Sensing Image Classification · Image Retrieval and Classification Techniques
MethodsSoftmax
