图像分析、随机场和动态蒙特卡罗方法
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九品
仅1件
作者G.Winkler 著
出版社世界图书出版公司
出版时间1999-03
版次1
装帧平装
货号A11
上书时间2024-11-02
商品详情
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图书标准信息
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作者
G.Winkler 著
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出版社
世界图书出版公司
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出版时间
1999-03
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版次
1
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ISBN
9787506238250
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定价
51.00元
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装帧
平装
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开本
24开
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纸张
胶版纸
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页数
324页
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正文语种
英语
- 【内容简介】
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ThistextisconcernedwithaprobabilisticapproachtoimageanalysisasinitiatedbyU.GRENANDER,D.andS.GEMAN,B.R.HUNTandmanyothers,anddevelopedandpopularizedbyD.andS.GEMANinapaperfrom1984.ItformallyadoptstheBayesianparadigmandthereforeisreferredtoas"BayesianImageAnalysis".
Therehasbeenconsiderableandstillgrowinginterestinpriormodelsand,inparticular,indiscreteMarkovrandomfieldmethods.Whereasimageanalysisisrepletewithadhoctechniques,Bayesianimageanalysisprovidesageneralframeworkencompassingvariousproblemsfromimaging.Amongthosearesuch"classical"applicationslikerestoration,edgedetection,texturediscrimination,motionanalysisandtomographicreconstruction.Thesubjectisrapidlydevelopingandinthenearfutureislikelytodealwithhigh-levelapplicationslikeobjectrecognition.FascinatingexperimentsbyY.CHOW,U.GRENANDERandD.M.KEENAN(1987),(1990)stronglysupportthisbelief.
- 【目录】
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Introduction
PartⅠ.BayesianImageAnalysis:Introduction
1.TheBayesianParadigm
1.1TheSpaceofImages
1.2TheSpaceofObservations
1.3PriorandPosteriorDistribution
1.4BayesianDecisionRules
2.CleaningDirtyPictures
2.1DistortionofImages
2.1.1PhysicalDigitalImagingSystems
2.1.2PosteriorDistributions
2.2Smoothing
2.3PiecewiseSmoothing
2.4BoundaryExtraction
3.RandomFields
3.1MarkovRandomFields
3.2GibbsFieldsandPotentials
3.3MoreonPotentials
PartⅡ.TheGibbsSamplerandSimulatedAnnealing
4.MarkovChains:LimitTheorems
4.1Preliminaries
4.2TheContractionCoefficient
4.3HomogeneousMarkovChains
4.4InhomogeneousMarkovChains
5.SamplingandAnnealing
5.1Sampling
5.2SimulatedAnnealing
5.3Discussion
6.CoolingSchedules
6.1TheICMAlgorithm
6.2ExactMAPEVersusFastCooling
6.3FiniteTimeAnnealing
7.SamplingandAnnealingRevisited
7.1ALawofLargeNumbersforInhomogeneousMarkovChains
7.2AGeneralTheoresm
7.3SamplingandAnnealingUnderConstraints
PartⅢ.MoreonSamplingandAnnealing
8.MetropolisAlgorithms
9.AlternativeApproaches
10.ParallelAlgorithms
PartⅣ.TextureAnalysis
11.Partitioning
12.TextureModelsandClassification
PartⅤ.ParameterEstimation
13.MaximumLikelihoodEstimators
14.SpacialMLEstimation
PartⅥ.Supplement
15.AGlanceatNeuralNetworks
16.MixedAPplications
PartⅦ.Appendix
A.SimulationofRandomVariables
B.ThePerron-FrobeniusTheorem
C.ConcaveFunctions
D.AGlobalConvergenceTheoremforDescentAlgorithms
References
Index
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