Detecting Resemblance Of Orchid Plant Image Through Support Vector Machine (SVM) Of Kernel Linear Method

Penulis

  • Dewi Kania Widyawati
  • Zuriati Zuriati

DOI:

https://doi.org/10.25181/esai.v8i3.952

Abstrak

The research dealt with detecting resemblance of orchid plant image through Support vector machine (SVM) of Kernel Linear method. With one versus rest modeling, the images were taken by using single type camera Canon S550D. The use of trial data and test data varied into for ratio types namely : 50% trial data - 50% test data , 60% trial data - 40% test data , 70% trial data - 30% test data , and 80% trial data - 20% test data. The extract of texture features was done with combining operator circular neighborhood (8,1) and (8,2) and concatenation done through fuzzyfication. The research aimed to (1) design a program to detect the resemblance of orchid plant image (2) implement Support Vector Machine kernel Linear method with one versus Rest model to identify the image of orchid plants both with and without flowers (3) analyze distribution level of accuracy of the four trial and test data examined from each specimen. (4) Analyze resemblance of orchid plant image through Support Vector Machine kernel Linear with one versus Rest model. The research was carried out through: (1) collecting the image and praposes (2) extracting the textures, (3) classifying the Support Vector Machine kernel Linear, (4) data testing and (5) evaluating classification result. The main target of the research is to find out a system to detect the resemblance of orchid plants both with and without flower.Keywords: circular neighborhood, one versus rest, Support Vector Machine kernel Linear

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Biografi Penulis

Dewi Kania Widyawati

Staf Pengajar pada Program Studi Manajemen Informatika, Jurusan Ekonomi dan Bisnis, Politeknik Negeri Lampung

Zuriati Zuriati

Staf Pengajar pada Program Studi Manajemen Informatika, Jurusan Ekonomi dan Bisnis, Politeknik Negeri Lampung

Referensi

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2018-06-29

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