Penerapan Seleksi Fitur Pada Metode K-Nearest Neighbor Untuk Identifikasi Kerusakan Buah Tomat (Lycopersicon Esculentum L.)

Paulina, Niske Elmy (2021) Penerapan Seleksi Fitur Pada Metode K-Nearest Neighbor Untuk Identifikasi Kerusakan Buah Tomat (Lycopersicon Esculentum L.). Diploma thesis, Politeknik Negeri Jember.

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Abstract

Tomato (Lycopersicon esculentum L.) is one of the most horticultural crops that have economically high value in Indonesia. The researchers applied feature selection to the K-Nearest Neighbor method to identify damage to tomatoes (Lycopersicon Esculentum L.) to increase government efforts through counseling to make it easier for farmers to recognize the damage of tomat - feature extraction, namely: perimeter, area and shape factor. The use of digital images is an effective and efficient way to identify damaged tomatoes without damaging the fruit. By using the k-nearest neighbor method, from the comparison of k values, the highest percentage of accuracy is K=3 with training results of 87% and testing of 70%. The results of the feature selection obtained a comparison with a suitable level of accuracy for k-nearest neighbor, namely morphology and correlation GLCM features have better accuracy compared to other morphological and GLCM features. Keywords : Tomato, Morphological Feature, GLCM, K-Nearest Neighbor

Item Type: Thesis (Diploma)
Contributors:
ContributionContributorsNIDN/NIDK
Thesis advisorFitri, Zilvanhisna EmkaNIDN0002039203
Uncontrolled Keywords: Tomato, Morphological Feature, GLCM, K-Nearest Neighbor
Subjects: 410 - Rumpun Ilmu Teknik > 450 - Teknik Elektro dan Informatika > 458 - Teknik Informatika
Divisions: Jurusan Teknologi Informasi > Prodi D4 Teknik Informatika (Bondowoso) > Tugas Akhir
Depositing User: Niske Elmy P
Date Deposited: 16 Sep 2021 08:31
Last Modified: 16 Sep 2021 08:32
URI: https://sipora.polije.ac.id/id/eprint/6570

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