2021, Vol. 19, No. 2
Selle kollektsiooni püsiv URIhttp://hdl.handle.net/10492/6854
Sirvi
Sirvi 2021, Vol. 19, No. 2 Autor "Arinichev, I." järgi
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Kirje Autoencoders for semantic segmentation of rice fungal diseases(2021) Polyanskikh, S.; Arinicheva, I.; Arinichev, I.; Volkova, G.In the article, the authors examine the possibility of automatic localization of rice fungal infections using modern methods of computer vision. The authors consider a new approach based on the use of autoencoders - special neural network architectures. This approach makes it possible to detect areas on rice leaves affected by a particular disease. The authors demonstrate that the autoencoder can be trained to remove affected areas from the image. In some cases, this allows one to clearly highlight the affected area by comparing the resulting image with the original one. Therefore, modern architectures of convolutional autoencoders provide quite acceptable visual quality of detection.