Analysis of chromatic characteristics, in satellite images for the classification of vegetation covers and deforested areas
- ,
- Fernando Sernaque,
- Madelaine Bernardo,
- Percy Castro,
- Elizabeth Oré Núñez,
- Luis Raymundo
- ,
- Universidad Continental, Huancayo,
- Instituto Peruano de Investigación en Ingeniería Avanzada
Publication Information
Output type
Original language
EnglishPages from-to (Number of pages)
Pages 134-139 (6 pages)Publication milestones
- Published - 29/12/2018
Publication status
Publisher
Association for Computing MachineryPublication series
- Publication series name: ACM International Conference Proceeding Series
ISBN (Electronic)
9781450366137Publication IDs
- Scopus: 85064474848
Host publication title
ICVIP 2018 - Proceedings of 2018 the 2nd International Conference on Video and Image ProcessingAbstract
Satellite images provide us with information of vital importance, in order to analyze large tracts of land, so their analysis has a degree of complexity characterized by the weight of the image and its size, analyzing large tracts of land originates analyzing the image in all its extension, there are now intelligent algorithms capable of classifying the images, these can analyze the images causing a decrease in the analysis time and improving the result of the analysis of the images. The vegetal cover in our planet is suffering great changes produced by phenomena caused by man, by effects of deforestation, illegal mining among others, that are originating great changes in the terrestrial cover, the evaluation of these changes can be realized by the analysis of satellite images with which you can classify and then locate the area, for this purpose the chromatic characteristics of the images are analyzed with the help of artificial intelligence techniques. In this work, the chromatic characteristics of an image dataset are analyzed. They correspond areas that belong to vegetal cover and areas that do not correspond to the vegetal cover, with the intention of analyzing if these two classes are linearly separable.
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Sustainable Development Goals
- SDG 15 Life on Land
