Application of extended state cellular automata to spatiotemporal data mining

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作者
Guangzhou Urban Planning and Design Surveying Research Institute, 23 Jianshe Road, Guangzhou 510060, China [1 ]
不详 [2 ]
不详 [3 ]
不详 [4 ]
不详 [5 ]
机构
来源
Geomatics Inf. Sci. Wuhan Univ. | 2008年 / 6卷 / 592-595期
关键词
Attribute information - Domain knowledge - Intelligent GIS - Nonlinear problems - Pattern recognize - Spatio-temporal data mining - Spatio-temporal relationships - STDM;
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摘要
The paper introduces an extended state cellular automata (CA) model to spatio-temporal data mining(STDM). The core of the model adds numerable and uncountable attribute to the cell and intends to resolve the problem of the sparse data and large attribute information interaction in the spatial and spatiotemporal data mining tasks. The preliminary experiment shows the approach is suited for the nonlinear problems, even in the face of sparse data. They can tackle problems of previously prohibitive complexity and also improve previous approaches. The paper advises the method in combination with domain knowledge and other data mining techniques offer a chance to discover nonlinear spatiotemporal relationships.
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