Rice yield prediction using a support vector regression method

Rice yield prediction is the procedure to predict the rice grain weight. The objectives of the procedure are finding out whether the location is appropriate to grow rice, and reducing any risk in the investment of rice yield production. There were many researchers trying to find the precise results...

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Main Authors: Jaikla R., Auephanwiriyakul S., Jintrawet A.
Format: Conference or Workshop Item
Language:English
Published: 2014
Online Access:http://www.scopus.com/inward/record.url?eid=2-s2.0-52949132203&partnerID=40&md5=2f868207f87b61842d15c9f98db2ca54
http://cmuir.cmu.ac.th/handle/6653943832/1386
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Institution: Chiang Mai University
Language: English
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spelling th-cmuir.6653943832-13862014-08-29T09:29:14Z Rice yield prediction using a support vector regression method Jaikla R. Auephanwiriyakul S. Jintrawet A. Rice yield prediction is the procedure to predict the rice grain weight. The objectives of the procedure are finding out whether the location is appropriate to grow rice, and reducing any risk in the investment of rice yield production. There were many researchers trying to find the precise results of rice yield prediction, however, the proposed methods are complicated and unique. This paper, therefore, is aimed to develop rice yield prediction procedure using the Support Vector Regression method (SVR), one of the most widely used techniques in data prediction. The prediction method in this paper is divided into 3 phases, i.e., soil nitrogen prediction, rice stem weight prediction and rice grain weight prediction. We compare the results with the commercial software, i.e., DSSAT4 program implementing Crop Simulation Model (CSM-Rice simulation model). The results indicate that our method is comparable with that of the CSM-Rice simulation model. The error from our model is also in the acceptable range. ©2008 IEEE. 2014-08-29T09:29:14Z 2014-08-29T09:29:14Z 2008 Conference Paper 1424421012; 9781424421015 10.1109/ECTICON.2008.4600365 73753 http://www.scopus.com/inward/record.url?eid=2-s2.0-52949132203&partnerID=40&md5=2f868207f87b61842d15c9f98db2ca54 http://cmuir.cmu.ac.th/handle/6653943832/1386 English
institution Chiang Mai University
building Chiang Mai University Library
country Thailand
collection CMU Intellectual Repository
language English
description Rice yield prediction is the procedure to predict the rice grain weight. The objectives of the procedure are finding out whether the location is appropriate to grow rice, and reducing any risk in the investment of rice yield production. There were many researchers trying to find the precise results of rice yield prediction, however, the proposed methods are complicated and unique. This paper, therefore, is aimed to develop rice yield prediction procedure using the Support Vector Regression method (SVR), one of the most widely used techniques in data prediction. The prediction method in this paper is divided into 3 phases, i.e., soil nitrogen prediction, rice stem weight prediction and rice grain weight prediction. We compare the results with the commercial software, i.e., DSSAT4 program implementing Crop Simulation Model (CSM-Rice simulation model). The results indicate that our method is comparable with that of the CSM-Rice simulation model. The error from our model is also in the acceptable range. ©2008 IEEE.
format Conference or Workshop Item
author Jaikla R.
Auephanwiriyakul S.
Jintrawet A.
spellingShingle Jaikla R.
Auephanwiriyakul S.
Jintrawet A.
Rice yield prediction using a support vector regression method
author_facet Jaikla R.
Auephanwiriyakul S.
Jintrawet A.
author_sort Jaikla R.
title Rice yield prediction using a support vector regression method
title_short Rice yield prediction using a support vector regression method
title_full Rice yield prediction using a support vector regression method
title_fullStr Rice yield prediction using a support vector regression method
title_full_unstemmed Rice yield prediction using a support vector regression method
title_sort rice yield prediction using a support vector regression method
publishDate 2014
url http://www.scopus.com/inward/record.url?eid=2-s2.0-52949132203&partnerID=40&md5=2f868207f87b61842d15c9f98db2ca54
http://cmuir.cmu.ac.th/handle/6653943832/1386
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