Publication | Open Access
Multimodal Remote Sensing Image Registration Methods and Advancements: A Survey
77
Citations
95
References
2021
Year
EngineeringBiometricsMultispectral ImagingMulti-image FusionRobust FeatureImage AnalysisData SciencePattern RecognitionImage RegistrationMmrs ImagesRadiologyHealth SciencesMachine VisionMedical ImagingGeographyDeep LearningMmrs Image RegistrationFeature FusionComputer VisionSpatial VerificationMultimodal SensingBiomedical ImagingRemote SensingImage DenoisingRemote Sensing Sensor
With rapid advancements in remote sensing image registration algorithms, comprehensive imaging applications are no longer limited to single-modal remote sensing images. Instead, multi-modal remote sensing (MMRS) image registration has become a research focus in recent years. However, considering multi-source, multi-temporal, and multi-spectrum input introduces significant nonlinear radiation differences in MMRS images for which researchers need to develop novel solutions. At present, comprehensive reviews and analyses of MMRS image registration methods are inadequate in related fields. Thus, this paper introduces three theoretical frameworks: namely, area-based, feature-based and deep learning-based methods. We present a brief review of traditional methods and focus on more advanced methods for MMRS image registration proposed in recent years. Our review or comprehensive analysis is intended to provide researchers in related fields with advanced understanding to achieve further breakthroughs and innovations.
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