Modeling groundwater quality with Bayesian techniques

K. Shihab
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引用次数: 5

Abstract

Bayesian techniques are attractive and viable tools for modeling complex stochastic processes in general and the groundwater contamination process in particular. This is mainly because these techniques do not only emphasize the stochastic nature of this process but also the precision and the accuracy of the tested methods used by environmental laboratories. In this work, we describe the development and application of a prototype dynamic Bayesian network (DBN) that models groundwater quality in order to assess and predict the impact of pollutants on the water column.
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用贝叶斯技术模拟地下水水质
贝叶斯技术对于复杂的随机过程,特别是地下水污染过程的建模是一种有吸引力且可行的工具。这主要是因为这些技术不仅强调了这一过程的随机性,而且强调了环境实验室使用的测试方法的精确性和准确性。在这项工作中,我们描述了一个原型动态贝叶斯网络(DBN)的开发和应用,该网络模拟地下水质量,以评估和预测污染物对水柱的影响。
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