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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
Course introduction
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
DepartmentElectrical Engineering and Computer Science
LanguageEnglish
Number of videos0
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