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Introduction to Probability (Spring 2018) (M-I-T)
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Part II: Inference & Limit Theorems (M-I-T)
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Lecture 15: Linear Models With Normal Noise (M-I-T)
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L15.1 Lecture Overview (M-I-T)
L15.1 Lecture Overview (M-I-T)
Course:
Lecture 15: Linear Models With Normal Noise (M-I-T)
Discipline:
Applied Sciences
Institute:
MIT
Instructor(s):
Prof. John Tsitsiklis, Prof. Patrick Jaillet
Level:
Graduate
Lecture 15: Linear Models With Normal Noise (M-I-T)
L15.1 Lecture Overview (M-I-T)
L15.2 Recognizing Normal PDFs (M-I-T)
L15.3 Estimating a Normal Random Variable in the Presence of Additive Noise (M-I-T)
L15.4 The Case of Multiple Observations (M-I-T)
L15.5 The Mean Squared Error (M-I-T)
L15.6 Multiple Parameters; Trajectory Estimation (M-I-T)
L15.7 Linear Normal Models (M-I-T)
L15.8 Trajectory Estimation Illustration (M-I-T)