AGRICULTURAL MITIGATION AND ADAPTATION TO CLIMATE CHANGE IN NIGERIA: AN OVERVIEW

Bello, O. B. and Wahab, M.K.A. and Ganiyu, O.T and Azeez, M.A. and Abdulmaliq, S.Y and Ige, S. and Mahamood, J. and Oluleye, F. and Afolabi, M. S. (2012) AGRICULTURAL MITIGATION AND ADAPTATION TO CLIMATE CHANGE IN NIGERIA: AN OVERVIEW. World Research Journal of Agricultural & Biosystems Engineering, 1 (1). 06-11.

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Abstract

- In this paper we put forward a hybrid stacking ensemble approach for classifiers which is found to be a better choice than selecting the best base level classifier. This paper also describes and compares various data mining methodologies for the domain called employment prediction. The proposed application helps the prospective students to make wise career decisions. A student enters his Entrance Rank, Gender (M/F), Sector (rural/urban) and Reservation category. Based on the entered information the data mining model will return which branch of study is Excellent, Good, Average or poor for him/her. Various data mining models are prepared, compared and analyzed. Keywords- Confusion matrix, Data Mining, Decision tree, Neural Network, stacking ensemble, voted perceptron

Item Type: Article
Subjects: S Agriculture > S Agriculture (General)
Depositing User: Mr DIGITAL CONTENT CREATOR LMU
Date Deposited: 28 Oct 2019 16:29
Last Modified: 28 Oct 2019 16:29
URI: https://eprints.lmu.edu.ng/id/eprint/2664

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