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Using learning styles of software professionals to improve their inspection team performance

  • North Dakota State University
    ,
  • Indiana University Bloomington
Scholary Output:
Chapter in Book/Report/Conference proceeding
Conference contribution

Open access

Sustainable Development Goals

  • SDG 3 - Good Health and Well-being
    SDG 3 Good Health and Well

Related Event

Title

27th International Conference on Software Engineering and Knowledge Engineering, SEKE 2015

Event type

Conference

Date

07/06/2015 - 07/08/2015

Location

PittsburghUnited States

Abstract

Inspections of software artifacts during early software development AIDS managers to detect early faults that may be hard to find and fix later. While inspections are effective, evidence suggests that inspection abilities of individuals vary widely which affect overall inspection effectiveness. Cognitive psychologists have used Learning Styles (LS) to measure an individual's characteristic strength and ability to acquire and process information. This concept of LS is being utilized in software engineering domain as a means to improve inspection performance. This paper presents the results from an industrial empirical study, wherein the LS's of individual inspectors were manipulated to measure its impact on the fault detection effectiveness of inspection teams. Using inspection data from nineteen professional developers, we developed virtual teams with varying LS's of individual inspectors and analyzed the team performance. The results from the current study show that, teams of inspectors with diverse LS's are significantly more effective at detecting faults as compared to teams of inspectors with similar LS's. Therefore, LS's can aid software managers to create high performance inspection team(s) and manage software quality.

Publication Information

Output type

Scholary Output:
Chapter in Book/Report/Conference proceeding
Conference contribution

Host publication Subtitle

27th International Conference on Software Engineering and Knowledge Engineering

Original language

English (US)

Pages from-to (Number of pages)

Pages 680-685 (6 pages)

Publication milestones

  • Published - 2015

Publication status

Published - 2015

Publisher

Knowledge Systems Institute Graduate School

Publication series

  • Publication series name: Proceedings of the International Conference on Software Engineering and Knowledge Engineering, SEKE
    ISSN (Print): 2325-9000
    ISSN (Electronic): 2325-9086
    Volume: 2015-January

ISBN (Electronic)

1891706373

Publication IDs

  • Scopus: 84969790527

Host publication title

Proceedings - SEKE 2015

Publication metrics

Metrics

Scopus
citations
Fractional count
1
Fractional count
0.33
Fractional count
2
Fractional count
0.67
Fractional count
1
Fractional count
1

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Captures
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Citation count
5