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A practical guide to select quality indicators for assessing pareto-based search algorithms in search-based software engineering

  • Shuai Wang
  • , Shaukat Ali
  • , Tao Yue
  • , Yan Li
  • , Marius Liaaen
  • Simula Research Laboratory
  • University of Oslo
  • Beihang University
  • Cisco Systems, Inc.

Research output: Chapter in Book/Report/Conference proceedingConference contributionpeer-review

Abstract

Many software engineering problems are multi-objective in nature, which has been largely recognized by the Search-based Software Engineering (SBSE) community. In this regard, Paretobased search algorithms, e.g., Non-dominated Sorting Genetic Algorithm II, have already shown good performance for solving multi-objective optimization problems. These algorithms produce Pareto fronts, where each Pareto front consists of a set of nondominated solutions. Eventually, a user selects one or more of the solutions from a Pareto front for their specific problems. A key challenge of applying Pareto-based search algorithms is to select appropriate quality indicators, e.g., hypervolume, to assess the quality of Pareto fronts. Based on the results of an extended literature review, we found that the current literature and practice in SBSE lacks a practical guide for selecting quality indicators despite a large number of published SBSE works. In this direction, the paper presents a practical guide for the SBSE community to select quality indicators for assessing Pareto-based search algorithms in different software engineering contexts. The practical guide is derived from the following complementary theoretical and empirical methods: 1) key theoretical foundations of quality indicators; 2) evidence from an extended literature review; and 3) evidence collected from an extensive experiment that was conducted to evaluate eight quality indicators from four different categories with six Pareto-based search algorithms using three real industrial problems from two diverse domains.

Original languageEnglish
Title of host publicationProceedings - 2016 IEEE/ACM 38th IEEE International Conference on Software Engineering Companion, ICSE 2016
PublisherIEEE Computer Society
Pages631-642
Number of pages12
ISBN (Electronic)9781450339001, 9781450342056
DOIs
StatePublished - 14 May 2016
Externally publishedYes
Event2016 IEEE/ACM 38th IEEE International Conference on Software Engineering, ICSE 2016 - Austin, United States
Duration: 14 May 201622 May 2016

Publication series

NameProceedings - International Conference on Software Engineering
Volume14-22-May-2016
ISSN (Print)0270-5257

Conference

Conference2016 IEEE/ACM 38th IEEE International Conference on Software Engineering, ICSE 2016
Country/TerritoryUnited States
CityAustin
Period14/05/1622/05/16

Keywords

  • Multi-objective Software Engineering Problems
  • Pareto-based Search Algorithms
  • Practical Guide
  • Quality Indicators

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