Informasi Umum

Kode

22.04.1072

Klasifikasi

006.31 - Machine Learning

Jenis

Karya Ilmiah - Skripsi (S1) - Reference

Subjek

Machine Learning

Dilihat

13 kali

Informasi Lainnya

Abstraksi

Bonferroni Mean Fuzzy K- Nearest Neighbors (BMFKNN) based Chinese character recognition is presented in this paper. The Chinese Academy of Sciences (CASIA) contributed the dataset utilized in this study; we limited the data to 3,408 images out of a total of 1,121,749 images (897,758 train sets and 223,991 test sets). The most difficult aspect of this research was the high degree of similarity between some of the characters. After the images were resized, the noise reduction using Gaussian filter and image binarization using Otsu’s method was employed. Next, we use the Histogram of Gradients (HOG) to extract features. BM-FKNN is used as the classifier in the final step. The final result was obtained by averaging the accuracy of each iteration using k-fold cross-validation. With BM-FKNN, we achieved an accuracy of 80.15% in our experiments.

Keywords—Chinese Character, Character Recognition, Classification, Bonferroni Mean Fuzzy K-Nearest Neighbors, Histogram of Oriented Gradient

Koleksi & Sirkulasi

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Pengarang

Nama NOVITA
Jenis Perorangan
Penyunting SUYANTO
Penerjemah

Penerbit

Nama Universitas Telkom, S1 Informatika
Kota Bandung
Tahun 2022

Sirkulasi

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