Plant Identification Using New Architecture Convolutional Neural Networks Combine with Replacing the Red of Color Channel Image by Vein Morphology Leaf

Author:

Huynh Hiep Xuan1,Truong Bao Quoc2,Nguyen Thanh Kiet Tan1,Truong Dinh Quoc1

Affiliation:

1. College of Information & Communication Technology, Can Tho University, Can Tho City, Vietnam

2. College of Engineering Technology, Can Tho University, Can Tho City, Vietnam

Abstract

The determination of plant species from field observation requires substantial botanical expertise, which puts it beyond the reach of most nature enthusiasts. Traditional plant species identification is almost impossible for the general public and challenging even for professionals who deal with botanical problems daily such as conservationists, farmers, foresters, and landscape architects. Even for botanists themselves, species identification is often a difficult task. This paper proposes a model deep learning with a new architecture Convolutional Neural Network (CNN) for leaves classifier based on leaf pre-processing extract vein shape data replaced for the red channel of colors. This replacement improves the accuracy of the model significantly. This model experimented on collector leaves data set Flavia leaf data set and the Swedish leaf data set. The classification results indicate that the proposed CNN model is effective for leaf recognition with the best accuracy greater than 98.22%.

Publisher

World Scientific Pub Co Pte Lt

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