2022
DOI: 10.3390/rs14030646
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A Review of Landcover Classification with Very-High Resolution Remotely Sensed Optical Images—Analysis Unit, Model Scalability and Transferability

Abstract: As an important application in remote sensing, landcover classification remains one of the most challenging tasks in very-high-resolution (VHR) image analysis. As the rapidly increasing number of Deep Learning (DL) based landcover methods and training strategies are claimed to be the state-of-the-art, the already fragmented technical landscape of landcover mapping methods has been further complicated. Although there exists a plethora of literature review work attempting to guide researchers in making an inform… Show more

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Cited by 45 publications
(36 citation statements)
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References 181 publications
(279 reference statements)
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“…Bianchi et al [44] integrated the RG, radar and microwave links to improve the measurement accuracy of the spatial distribution of rainfall and rainfall intensity, and the Gauss-Newton method is used to minimize the cost function of all sensing methods. CML also has a great potential in the calibration of rainfall measured by radar or satellite images [106].…”
Section: Combined With Conventional Methods For Rainfall Measurementmentioning
confidence: 99%
“…Bianchi et al [44] integrated the RG, radar and microwave links to improve the measurement accuracy of the spatial distribution of rainfall and rainfall intensity, and the Gauss-Newton method is used to minimize the cost function of all sensing methods. CML also has a great potential in the calibration of rainfall measured by radar or satellite images [106].…”
Section: Combined With Conventional Methods For Rainfall Measurementmentioning
confidence: 99%
“…This is the process by which different classes or themes are extracted from raw remotely sensed digital satellite data [7,28,29]. Each pixel is usually considered to be a unique unit consisting of values in different spectral bands.…”
Section: Image Classificationmentioning
confidence: 99%
“…Each pixel is usually considered to be a unique unit consisting of values in different spectral bands. By comparing pixels to one another and to pixels of known identity, users of remotely sensed data can assemble groups of identical pixels into classes [7,30].…”
Section: Image Classificationmentioning
confidence: 99%
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