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Titlebook: High Performance Optimization; Hans Frenk,Kees Roos,Shuzhong Zhang Book 2000 Springer Science+Business Media Dordrecht 2000 Finite.algorit

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发表于 2025-3-21 19:40:05 | 显示全部楼层 |阅读模式
书目名称High Performance Optimization
编辑Hans Frenk,Kees Roos,Shuzhong Zhang
视频video
丛书名称Applied Optimization
图书封面Titlebook: High Performance Optimization;  Hans Frenk,Kees Roos,Shuzhong Zhang Book 2000 Springer Science+Business Media Dordrecht 2000 Finite.algorit
描述For a long time the techniques of solving linear optimization(LP) problems improved only marginally. Fifteen years ago, however, arevolutionary discovery changed everything. A new `golden age‘ foroptimization started, which is continuing up to the current time. Whatis the cause of the excitement? Techniques of linear programmingformed previously an isolated body of knowledge. Then suddenly atunnel was built linking it with a rich and promising land, part ofwhich was already cultivated, part of which was completely unexplored.These revolutionary new techniques are now applied to solve coniclinear problems. This makes it possible to model and solve largeclasses of essentially nonlinear optimization problems as efficientlyas LP problems. This volume gives an overview of the latestdevelopments of such `High Performance Optimization Techniques‘. Thefirst part is a thorough treatment of interior point methods forsemidefinite programming problems. The second part reviews today‘smost exciting research topics and results in the area of convexoptimization. ..Audience:. This volume is for graduate students and researcherswho are interested in modern optimization techniques.
出版日期Book 2000
关键词Finite; algorithms; calculus; function; linear optimization; nonlinear optimization; optimization; proof
版次1
doihttps://doi.org/10.1007/978-1-4757-3216-0
isbn_softcover978-1-4419-4819-9
isbn_ebook978-1-4757-3216-0Series ISSN 1384-6485
issn_series 1384-6485
copyrightSpringer Science+Business Media Dordrecht 2000
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John E. Mitchell,Brian Borchersuture risk of a SEE. Thus, the risk of a SEE in a future period can be predicted by a supervised machine learning method. Predicting the high risk of a SEE improves the daily work of each inspector by focusing only on high-risk SEEs.
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Zhi-Quan Luo,Jos F. Sturmle we present the results of the simulation which allow us to take a stand against the research and to confirm that the research process and, above all, the simulation process, allow us to make a decision about the way in which the times have been adjusted Of traffic lights at most of the intersections of the city of Bogotá.
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The Mosek Interior Point Optimizer for Linear Programming: An Implementation of the Homogeneous Algothe MOSEK interior point optimizer. Fi­nally, computational results are presented to demonstrate the possible speed-up, when using a parallelized version of the MOSEK interior point optimizer on a multiprocessor Silicon Graphics computer.
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1384-6485 ary discovery changed everything. A new `golden age‘ foroptimization started, which is continuing up to the current time. Whatis the cause of the excitement? Techniques of linear programmingformed previously an isolated body of knowledge. Then suddenly atunnel was built linking it with a rich and pr
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Yurii Nesterovroposes to use a neural network to optimize the sampling of soundscapes of three Colombian ecosystems. The neural network is trained to identify meaningful temporal windows for audio recording from previously gathered data. This method simplifies the acoustic complexity analysis.
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