Convex Analysis and Minimization Algorithms: Part 1: Fundamentals (Grundlehren d
Convex Analysis may be considered as a refinement of standard calculus, with equalities and approximations replaced by inequalities. As such, it can easily be integrated into a graduate study curriculum. Minimization algorithms, more specifically those adapted to non-differentiable functions, provide an immediate application of convex analysis to various fields related to optimization and operations research. These two topics making up the title of the book, reflect the two origins of the authors, who belong respectively to the academic world and to that of applications. Part I can be used as an introductory textbook (as a basis for courses, or for self-study); Part II continues this at a higher technical level and is addressed more to specialists, collecting results that so far have not appeared in books.
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Minimization Algorithms Introductory Textbook Convex Analysis Study Curriculum Differentiable Functions Equalities Academic World Graduate Study Operations Research Approximations Self Study Refinement Calculus Inequalities Origins Optimization Applicatio
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