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Classification Detection
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Related lectures (32)
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Likelihood Ratio Test: Neyman-Pearson Lemma
Explores likelihood ratio tests and the Neyman-Pearson Lemma for statistical hypothesis testing.
Statistical Hypothesis Testing
Covers statistical hypothesis testing, likelihood estimation, and confidence intervals construction.
Hypothesis Testing: Wilks' Theorem
Explores hypothesis testing using Wilks' Theorem, likelihood ratio statistics, p-values, interval estimation, and confidence regions.
Hypothesis Testing in Statistics
Explores hypothesis testing in statistics, focusing on decision-making based on sample data and controlling error probabilities.
Statistical Tests for Exponential Families
Covers the optimal statistical tests for exponential families and the use of approximations in hypothesis testing.
Confidence Intervals and Hypothesis Tests
Covers confidence intervals, hypothesis tests, standard errors, statistical models, likelihood, Bayesian inference, ROC curve, Pearson statistic, goodness of fit tests, and power of tests.
Bayesian Inference: Optimal Decisions
Explores Bayesian inference for optimal decision-making in hypothesis testing scenarios.
Hypothesis Testing: Neyman-Pearson Framework
On hypothesis testing explores the Neyman-Pearson framework, test functions, errors, and likelihood ratio tests.
Decision Theory: Risk and Hypothesis Testing
Covers decision theory, risk functions, and hypothesis testing in statistical inference.
Statistical Inference
Covers likelihood ratio statistic, confidence intervals, and hypothesis testing concepts.