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Predicting Fertilizer Treatment of Maize Using Decision Tree Algorithm

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dc.contributor.author Jahan, Nusrat
dc.contributor.author Shahariar, Rezvi
dc.date.accessioned 2021-09-01T09:31:01Z
dc.date.available 2021-09-01T09:31:01Z
dc.date.issued 2020
dc.identifier.uri http://dspace.daffodilvarsity.edu.bd:8080/handle/123456789/6090
dc.description.abstract Machine learning approaches are progressively successful in image based analysis such as different diseases prediction as well as level of risk assessment. In this paper, image based data analysis with machine learning technique was applied to fertilizer treatment of maize. We address this issue as our country depend on agricultural field rather than others. Maize has a bright future. To predict fertilizer treatment of maize dataset was comprised of ground coverage region which highlights the green pixels of a maize image. For calculating green pixels from an image we used “Can Eye” tool. The achievement of machine learning approaches is highly dependent on quality and quantity of the dataset which is used for training the machine for better classification result. For this perseverance, we have collected images from the maize field directly. Then processed those images and classified the data into four classes (Less Nitrogen=-N, Less Phosphorus=-P, Less Potassium=-K and NPK) to train our machine using decision tree algorithm to predict fertilizer treatment. We have got 93% classification accuracy for decision tree. Finally, the outcome of this paper is fertilizer treatment of a maize field based on the ground cover percentage, and we implemented this whole paper work using an android platform because of the availability of android mobile phone throughout the world en_US
dc.language.iso en_US en_US
dc.publisher Scopus en_US
dc.subject Decision tree en_US
dc.subject Fertilizer treatment en_US
dc.subject Ground cverage en_US
dc.subject Image analysis en_US
dc.subject Machine learning en_US
dc.title Predicting Fertilizer Treatment of Maize Using Decision Tree Algorithm en_US
dc.type Article en_US


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