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Plant Disease Detection and Classification by Deep Learning
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Home Projects Python Plant Disease Detection and Classification by Deep Learning: A Review
EFFICIENT CLASSIFICATION OF DIABETIC RETINOPATHY USING BINARY CNN
Efficient Classification Of Diabetic Retinopathy Using Binary Cnn ₹5,500.00
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Plant Disease Detection and Classification by Deep Learning: A Review

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SKU: Python - Deep Learning Categories: Deep Learning, Deep Learning, Projects, Python Tags: Convolution Neural Network, Convolutional Neural Network, Deep Learning, Flask Application, Plant Disease, Python
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Description

Aim:

Ā Ā Ā Ā Ā Ā Ā Ā Ā Ā  To detect the plant leaf diseases using convolutional neural network for high accuracy detection.

Synopsis:

Ā Ā Ā Ā Ā Ā Ā Ā Ā Ā  Identification of leaf disease is very difficult in agriculture field. If identification is incorrect then there is a huge loss on the production of crop and economical value of market. Traditionally, visual examination by experts has been carried out to diagnose plant diseases and biological examination is the second option, if necessary. Leaf disease detection requires huge amount of work, knowledge in the plant diseases, and require the more processing time. Therefore, we can use image processing for identification of leaf disease. The system has been tested with the different numbers of test data set collected from different regions. This system has tested for different numbers of clusters to get the optimal number of cluster that can produce the best performance of the proposed leaf disease identification and control prediction system. In our approach, we use the technique of Convolutional Neural Network which uses the concept of hidden layers to classify the different diseases that affect the plants. The proposed deep-learning based approach can automatically identify the discriminative features of the diseased leaf images and detect the types of plant leaf diseases with high accuracy.

Proposed System:

Ā Ā Ā Ā Ā Ā Ā Ā Ā  Agriculture is one of the most significant occupations around the world. It plays a major role because food is a basic need for every living being on this planet. In this proposed system, deep learning approach Region Based Convolutional Neural Networks(R-CNN) for identification. They have two phases namely the training phase and testing phase. In the initial phase, they have carried out image acquisition, pre-processed the image and trained the images using R-CNN. In the second phase classification and identification of the Leaf disease. For training purposes, image is taken from the dataset whereas, for testing, real-time images can be used. The diagnosis of the leaf disease is done with the images that are uploaded in the system or present in the database. If the real-time input is taken from the surrounding, then the image needs to be preprocessed followed by the feature classification The Diagnosis of diseases is detected and the name of the disease is obtained.

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