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Genetic Modeling of GIS-Based Cell Clusters and Its Application in Mineral Resources Prediction 被引量:2
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作者 ZhangZhenfei HuGuangdao +3 位作者 YangMingguo XiaQinglin jijinseng GaoFengliang 《Journal of China University of Geosciences》 SCIE CSCD 2003年第1期85-89,94,共6页
This paper presents a synthetic analysis method for multi sourced g eo logical data from geographic information system (GIS). In the previous practices of mineral resources prediction, a usually adopted methodol... This paper presents a synthetic analysis method for multi sourced g eo logical data from geographic information system (GIS). In the previous practices of mineral resources prediction, a usually adopted methodology has been sta tistical analysis of cells delimitated based on thoughts of random sampling. Tha t might lead to insufficient utilization of local spatial information, for a cel l is treated as a point without internal structure. We now take “cell clusters ”, i. e. , spatial associations of cells, as basic units of statistics, thus th e spatial configuration information of geological variables is easier to be dete cted and utilized, and the accuracy and reliability of prediction are improved. We build a linear multi discriminating model for the clusters via genetic algor ithm. Both the right judgment rates and the in class vs. between class distan ce ratios are considered to form the evolutional adaptive values of the populati on. An application of the method in gold mineral resources prediction in east Xi njiang, China is presented. 展开更多
关键词 mineral resources prediction multi discrimination genetic algorith m GIS Xinjiang.
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