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Titlebook: Bayesian Networks and Decision Graphs; Finn V. Jensen,Thomas D. Nielsen Textbook 2007Latest edition Springer-Verlag New York 2007 Analysis

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發(fā)表于 2025-3-21 17:06:44 | 只看該作者 |倒序?yàn)g覽 |閱讀模式
期刊全稱Bayesian Networks and Decision Graphs
影響因子2023Finn V. Jensen,Thomas D. Nielsen
視頻videohttp://file.papertrans.cn/182/181864/181864.mp4
發(fā)行地址Gives a well-founded practical introduction to Bayesian networks.Includes presentation of the most efficient algorithm for solving influence diagrams.Includes supplementary material:
學(xué)科分類Information Science and Statistics
圖書封面Titlebook: Bayesian Networks and Decision Graphs;  Finn V. Jensen,Thomas D. Nielsen Textbook 2007Latest edition Springer-Verlag New York 2007 Analysis
影響因子.Probabilistic graphical models and decision graphs are powerful modeling tools for reasoning and decision making under uncertainty. As modeling languages they allow a natural specification of problem domains with inherent uncertainty, and from a computational perspective they support efficient algorithms for automatic construction and query answering. This includes belief updating, finding the most probable explanation for the observed evidence, detecting conflicts in the evidence entered into the network, determining optimal strategies, analyzing for relevance, and performing sensitivity analysis...The book introduces probabilistic graphical models and decision graphs, including Bayesian networks and influence diagrams. The reader is introduced to the two types of frameworks through examples and exercises, which also instruct the reader on how to build these models. ..The book is a new edition of .Bayesian Networks and Decision Graphs. by Finn V. Jensen. The new edition is structured into two parts. The first part focuses on probabilistic graphical models. Compared with the previous book, the new edition also includes a thorough description of recent extensions to the Bayesian ne
Pindex Textbook 2007Latest edition
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Michael St.Pierre,Gesine HofingerThe primary issue in dealing with a decision problem is to determine an optimal strategy, but other issues may be relevant. This chapter deals with value of information, the relevant past and future for a decision, and the sensitivity of decisions with respect to parameters.
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Bayesian Networks as ClassifiersYou receive a mail and wish to determine whether it is spam; you see a bird and wish to determine its species; you examine a patient and wish to diagnose him. These are only a few examples of the very common human task, classification.
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Methods for Analyzing Decision ProblemsThe primary issue in dealing with a decision problem is to determine an optimal strategy, but other issues may be relevant. This chapter deals with value of information, the relevant past and future for a decision, and the sensitivity of decisions with respect to parameters.
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Prerequisites on Probability Theoryty theory before, and the purpose of this section is simply to brush up on some of the basic concepts and to introduce some of the notation used in the later chapters. Sections 1.1–1.3 are prerequisites for Section 2.3 and forward. Section 1.4 is a prerequisite for Chapter 4. and Section 1.5 is a prerequisite for Chapter 6 and Chapter 7.
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