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Uedu Open / Nonlinear Programming
15.084J

Nonlinear Programming

Prof. Robert Freund | Spring 2004
Business & Management Systems Thinking Science & Math Mathematics Engineering Systems Engineering Applied Mathematics Systems Optimization
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CC BY-NC-SA 4.0
課程簡介
This course introduces students to the fundamentals of nonlinear optimization theory and methods. Topics include unconstrained and constrained optimization, linear and quadratic programming, Lagrange and conic duality theory, interior-point algorithms and theory, Lagrangian relaxation, generalized programming, and semi-definite programming. Algorithmic methods used in the class include steepest descent, Newton’s method, conditional gradient and subgradient optimization, interior-point methods and penalty and barrier methods.
Course Information
SourceMIT 開放式課程
科系Electrical Engineering and Computer Science
LanguageEnglish
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