Methodology for classifying objects in high resolution optical images, using deep learning techniques

Lucas Herrera, Wilver Auccahuasi, Antenor Leva, Kitty Urbano, Edward Flores, Michael Flores, Javier Flores, César Santos, Sergio Arroyo, Karin Rojas, Patricia Bejarano, Fernando Sernaque

Producción científica: Capítulo del libro/informe/acta de congresoContribución a la conferenciarevisión exhaustiva

Resumen

The classification of objects that are present in the images or in the videos, is being developed progressively obtaining good results thanks to the use of Convolutional Networks, in this work we also use the convolutional networks for detection of objects that are present in high resolution satellite images, tests were carried out on ships that are on the high seas and in the ports, this classification is useful for monitoring the coasts, as well as for analysing the dynamics of the ships can be applied in the search of ships, to cover this task of classifying ships in the spectral images, the use of high resolution satellite images of coastal areas and with a large number of ships is used, in order to build a set of images, containing images of the ships, in order to be used for training setting and testing of the convolutional network, a very particular configuration of the convolutional network caused by the particularity of high resolution satellite images is presented, the methodology developed indicating the procedures performed is also presented, a set of images containing 300 was built images of ships that are in the sea or are anchored in the ports, the results obtained in the classification using the convolutional networks are acceptable to be able to be used in different applications.

Idioma originalInglés
Título de la publicación alojada2nd International Conference on Circuits, Signals, Systems and Securities, ICCSSS 2022
EditoresR. Harikumar, C. Ganesh Babu, C. Poongodi
EditorialAmerican Institute of Physics Inc.
ISBN (versión digital)9780735444072
DOI
EstadoPublicada - 4 abr. 2023
Evento2nd International Conference on Circuits, Signals, Systems and Securities, ICCSSS 2022 - Sathyamangalam, India
Duración: 25 mar. 202226 mar. 2022

Serie de la publicación

NombreAIP Conference Proceedings
Volumen2725
ISSN (versión impresa)0094-243X
ISSN (versión digital)1551-7616

Conferencia

Conferencia2nd International Conference on Circuits, Signals, Systems and Securities, ICCSSS 2022
País/TerritorioIndia
CiudadSathyamangalam
Período25/03/2226/03/22

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