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Journal ArticleDOI

The weighted sum method for multi-objective optimization: new insights

TLDR
This paper investigates the fundamental significance of the weights in terms of preferences, the Pareto optimal set, and objective-function values and determines the factors that dictate which solution point results from a particular set of weights.
Abstract
As a common concept in multi-objective optimization, minimizing a weighted sum constitutes an independent method as well as a component of other methods. Consequently, insight into characteristics of the weighted sum method has far reaching implications. However, despite the many published applications for this method and the literature addressing its pitfalls with respect to depicting the Pareto optimal set, there is little comprehensive discussion concerning the conceptual significance of the weights and techniques for maximizing the effectiveness of the method with respect to a priori articulation of preferences. Thus, in this paper, we investigate the fundamental significance of the weights in terms of preferences, the Pareto optimal set, and objective-function values. We determine the factors that dictate which solution point results from a particular set of weights. Fundamental deficiencies are identified in terms of a priori articulation of preferences, and guidelines are provided to help avoid blind use of the method.

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Proceedings ArticleDOI

Multihop Routing in Hybrid Vehicle-to-Vehicle and Vehicle-to-Infrastructure Networks

TL;DR: This paper develops a mathematical framework to address the performance of data delivery in hybrid V2V and V2I networks by considering both latency and throughput requirements and proposes a multihop routing algorithm to select the optimal route for the weighted sum maximization.
Dissertation

Evolutionary approaches for portfolio optimization

Khin T. Lwin
TL;DR: Four hybrid evolutionary algorithms are presented to efficiently solve single-period portfolio optimization problems with practical trading constraints and two different risk measures to incorporate a learning mechanism in order to extract important features from the set of elite solutions.
Journal ArticleDOI

Minimization of the distribution operating costs with D-STATCOMS: A mixed-integer conic model

TL;DR: In this article , a mixed-integer second-order cone programming (MI-SOCP) model is proposed to solve the problem of determining the optimal location and operation of distribution static synchronous compensators (D-STATCOMs) in power distribution networks.
Journal ArticleDOI

A fault-tolerant sensor scheduling approach for target tracking in wireless sensor networks

TL;DR: In this article , a fault-tolerant sensor scheduling (FTSS) approach is proposed to reduce the target loss probability as much as possible, and a low-power scheduling mechanism is designed to reduce energy consumption.
Journal ArticleDOI

Market-oriented online bi-objective service scheduling for pleasingly parallel jobs with variable resources in cloud environments

TL;DR: In this paper, a market-oriented online bi-objective service scheduling problem for pleasingly parallel jobs with variable resources in cloud environments, from the perspective of SaaS providers who provide job-execution services, is studied.
References
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Journal ArticleDOI

A Scaling Method for Priorities in Hierarchical Structures

TL;DR: A method of scaling ratios using the principal eigenvector of a positive pairwise comparison matrix is investigated, showing that λmax = n is a necessary and sufficient condition for consistency.
Book

Nonlinear Multiobjective Optimization

TL;DR: This paper is concerned with the development of methods for dealing with the role of symbols in the interpretation of semantics.
Journal ArticleDOI

Survey of multi-objective optimization methods for engineering

TL;DR: A survey of current continuous nonlinear multi-objective optimization concepts and methods finds that no single approach is superior and depends on the type of information provided in the problem, the user's preferences, the solution requirements, and the availability of software.
Book

Multiple Criteria Optimization: Theory, Computation, and Application

R. S. Laundy
TL;DR: Mathematical Background Topics from Linear Algebra Single Objective Linear Programming Determining all Alternative Optima Comments about Objective Row Parametric Programming Utility Functions, Nondominated Criterion Vectors and Efficient Points Point Estimate Weighted-sums Approach.
Book

Multiple Objective Decision Making ― Methods and Applications: A State-of-the-Art Survey

TL;DR: On MADM Methods Classification.
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