Stanford Root

Schedule

Stanford Root

Schedule

STATS 322

Function Estimation in White Noise

UNITS:3
GRADING:Letter or Credit/No Credit
LEVEL:Graduate
GER:—

Gaussian white noise model sequence space form. Hyperrectangles, quadratic convexity, and Pinsker's theorem. Minimax estimation on Lp balls and Besov spaces. Role of wavelets and unconditional bases. Linear and threshold estimators. Oracle inequalities. Optimal recovery and universal thresholding. Stein's unbiased risk estimator and threshold choice. Complexity penalized model selection. Connecting fast wavelet algorithms and theory. Beyond orthogonal bases.

Syllabus for selected term:
View Spring 2027 Syllabus

Sections

1 Term
Lecture 1Open
ID: 25190
0 / 45 enrolled
DAYS:Tuesday, Thursday
TIME:10:30 AM – 11:50 AM
LOCATION:TBD
INSTRUCTOR:
Johnstone, Iain
3units

STATS 322: Function Estimation in White Noise

3 units · Letter or Credit/No Credit

Gaussian white noise model sequence space form. Hyperrectangles, quadratic convexity, and Pinsker's theorem. Minimax estimation on Lp balls and Besov spaces. Role of wavelets and unconditional bases. Linear and threshold estimators. Oracle inequalities. Optimal recovery and universal thresholding. Stein's unbiased risk estimator and threshold choice. Complexity penalized model selection. Connecting fast wavelet algorithms and theory. Beyond orthogonal bases.

Offered in Spring 2027 at Stanford University.

Spring 2027 sections

  • Lecture — Tuesday Thursday 10:30 AM – 11:50 AM — Johnstone, Iain (Graduate)

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