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Modern Bayesian network inference and its practical applicaitons in probabilistic expert systems

Modern Bayesian network inference and its practical applicaitons in probabilistic expert systems
现代贝叶斯网络推理及其在概率专家系统中的实际应用
批准号:
238880-2006
负责人:
Butz, Cory
金额:
$1.38万
依托单位:
依托单位国家:
加拿大
项目类别:
Discovery Grants Program - Individual
财政年份:
2008
资助国家:
加拿大
项目状态:
已结题
起止时间:
2008-01-01 至 2009-12-31

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中文摘要
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英文摘要
One often has to make decisions under uncertainty. In computer systems, one approach to uncertainty management is to use Bayesian networks. In order to make sound decisions, Bayesian networks use probability theory as a solid mathematical foundation to answer questions (queries). They have been used by many companies, including Microsoft, NASA, Lockheed, Hewlett Packard and Nokia. To answer questions efficiently and quickly, the key is to exploit independencies holding in the problem domain. Current approaches, however, are not fully taking advantage of all available independencies. By utilizing independencies that remain unnoticed in all previous methods, we have recently suggested the first method that can precisely identify the probability information being passed in a Bayesian network. In addition, we can identify these messages significantly faster than they can be physically constructed. Our method can scout the Bayesian network in order to guide the physical computation needed to answer a question. The point to remember is that by doing so we can answer questions faster than before. It is also widely acknowledged in the Bayesian network community that beginners have great difficulty understanding query processing algorithms. The reason is that these previous algorithms are unable to identify the messages being passed in a Bayesian network when answering a question. We can. This research program will produce two major results. First, we will build a state-of-the-art computer system for using Bayesian networks in uncertainty management. Second, we will write a textbook on Bayesian networks describing our new approach. Since our approach can more precisely describe the inference process, it should make Bayesian networks accessible to a wider audience.
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