Deformation-Invariant Neural Network and Its Applications in Distorted Image Restoration and Analysis
Han Zhang, Qiguang Chen, Lok Ming Lui

TL;DR
This paper introduces the deformation-invariant neural network (DINN), a framework that enhances image recognition and restoration for geometrically distorted images by integrating a quasiconformal transformer network to produce consistent features and improve performance.
Contribution
The paper presents DINN, a novel framework incorporating QCTN to achieve deformation invariance in neural networks for distorted image analysis and restoration tasks.
Findings
DINN outperforms existing GAN-based methods in image restoration under turbulence.
The framework achieves accurate classification of distorted images.
Successful application to face verification under atmospheric turbulence.
Abstract
Images degraded by geometric distortions pose a significant challenge to imaging and computer vision tasks such as object recognition. Deep learning-based imaging models usually fail to give accurate performance for geometrically distorted images. In this paper, we propose the deformation-invariant neural network (DINN), a framework to address the problem of imaging tasks for geometrically distorted images. The DINN outputs consistent latent features for images that are geometrically distorted but represent the same underlying object or scene. The idea of DINN is to incorporate a simple component, called the quasiconformal transformer network (QCTN), into other existing deep networks for imaging tasks. The QCTN is a deep neural network that outputs a quasiconformal map, which can be used to transform a geometrically distorted image into an improved version that is closer to the…
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Taxonomy
TopicsAdvanced Image Processing Techniques · Image Processing Techniques and Applications · Advanced Vision and Imaging
