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Reasoning Under Uncertainty · LearnSpace
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Reasoning Under Uncertainty

Курс от University of Colorado Boulder
Средний≈ 11.9 чАнглийский
О курсеНавыкиПрограммаПреподаватели

О курсе

This course introduces the foundational principles of artificial intelligence through the lens of reasoning and decision-making under uncertainty. Students begin by examining how intelligent agents act in uncertain environments using probability theory, Bayes’ Rule, and independence assumptions to update beliefs—concepts that underpin probabilistic machine learning and data-driven decision-making. The course then explores Bayesian Networks as a structured framework for representing complex dependencies and performing inference, connecting to modern graphical models and causal reasoning. Building on this, students study probabilistic reasoning over time using temporal models such as Hidden Markov Models, with links to contemporary sequence modeling and state estimation in applications like speech recognition and robotics. Finally, the course addresses sequential decision-making through Markov Decision Processes, where students learn to compute optimal policies using value iteration, policy iteration, and the Bellman equation—ideas that form the foundation of modern reinforcement learning methods used in systems such as autonomous agents and game-playing AI.

Навыки, которые вы освоите

ProbabilityMarkov ModelBayesian NetworkBayesian StatisticsReinforcement LearningForecastingStatistical InferenceDecision IntelligenceProbability & StatisticsNetwork ModelTime Series Analysis and ForecastingDependency AnalysisProbability DistributionSampling (Statistics)Statistical MethodsArtificial IntelligenceMachine Learning MethodsApplied Machine LearningStatistical ModelingAgentic systems

Программа курса

4 модулей · 33 учебных материалов

01Acting Under Uncertainty10 материалов

Quantifying Uncertainty

Introduction to Reasoning Under UncertaintyВидеоActing Under UncertaintyВидеоIntroduction to ProbabilityВидеоProbability ReferenceЧтение

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Rhonda Hoenigman

Преподаватель курса

Reasoning Under Uncertainty
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Обучение на Coursera

≈ 11.9 ч

4 модулей

Язык: Английский

Часть программы вашего университета
Probabilistic InferenceВидео

Bayes Rule and Variable Independence

Variable Independence ВидеоConditional IndependenceВидеоBayes' RuleВидеоProbability and Bayes Rule CalculationsЗаданиеActing Under Uncertainty QuizЗадание
02Probabilistic Reasoning8 материалов

Representing Knowledge in Uncertain Domains

Bayesian NetworksВидеоConstructing Bayes NetsВидеоReasoning in Bayes NetsВидеоBayes Net ReferenceЧтение

Inference in Bayes Networks

Approximate Inference - Direct SamplingВидеоApproximate Inference - Gibbs SamplingВидеоBayes Net Terms and Sampling CalculationsЗаданиеImplement a Bayes NetПрограммирование
03Probabilistic Reasoning over time9 материалов

Time and Uncertainty

Introduction To Probabilistic Reasoning Over TimeВидеоInference in Temporal Models - FilteringВидеоInference in Temporal Models - PredictionВидеоInference in Temporal Models - SmoothingВидеоViterbi - Finding the Most Likely State SequencyВидеоHMM ReferenceЧтениеHMMs and Other Hidden State ModelsВидеоProbabilistic Reasoning Over TimeЗаданиеHMM CalculationsЗадание
04Utility Based Decisions6 материалов

Markov Decision Process

Sequential Decisions and Maximum Expected UtilityВидеоPolicies for Markov Decision ProcessВидео

Value Iteration

Introduction to Value Iteration - Bellman EquationsВидеоPolicy IterationВидеоSequential Decision Making and MDPs QuizЗаданиеMDPs and Policy IterationПрограммирование