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Stationarity and Convergence in Reduce-or-Retreat Minimization

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Pages
68pages
Temps de lecture
3heures

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The book presents a comprehensive framework for various numerical optimization methods through its "reduce-or-retreat" approach, which balances reducing the objective at trial points with retreating to closer alternatives. It aligns derivative-based methods, fostering the development of new techniques and theoretical insights. The author introduces generalizations for non-smooth objectives and examines convergence through a novel notion of stationarity. By exploring descent conditions and situational convergence, the text broadens traditional analyses and connects diverse minimization strategies.

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Stationarity and Convergence in Reduce-or-Retreat Minimization, Adam B. Levy

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Année de publication
2012
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