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车辆与运载学院291期学术沙龙-云上创新和实践支撑车-路-云产业链数字化升级
第465期“工物学术论坛”: 基于边缘照射暗场成像的危险品探测方法
锦屏论坛:中国的奥本海默
AIR学术工作坊第5期|智能新药研发学术研讨会
报告题目:
Convex Optimization
 报告人:
Stephen Boyd教授
Information Systems Laboratory  主任
Electrical Engineering Department, Stanford University, USA
报告时间:
2006-08-02 10:00
报告地点:
数学科学系理科楼1304
主办单位:
数学科学系方述诚讲席教授组
  简介:
报告时间:2006年8月2日上午10:00-11:50
报告地点:清华大学数学科学系理科楼1304

组织单位:数学科学系方述诚讲席教授组

联系人:邢文训,电话:010-62787945

内容简介:In this talk I will give an overview of general convex optimization, which can be thought of as an extension of linear programming, and some recently developed subfamilies such as second-order cone, semidefinite, and geometric programming.  Like linear programming, we have a fairly complete duality theory, and very effective numerical methods for these problem classes; in addition, recently developed software tools considerably reduce the effort of specifying and solving convex optimization problems. There is a steadily expanding list of new applications of convex optimization, in areas such as circuit design, signal processing, statistics, machine learning, communications, control, finance, and other fields. Convex optimization is also emerging as an important tool for hard, non-convex problems, where it can be used to generate lower bounds on the optimal value, and as a heuristic method for generating suboptimal points.

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