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Fault Prediction Modeling for the Prediction of Number of Software Faults

  • Illustrates the process of number of fault prediction
  • Features special chapters on number of fault prediction and ensemble methods
  • Broadens readers’ understanding with an empirical study on learning models

Part of the book series: SpringerBriefs in Computer Science (BRIEFSCOMPUTER)

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Table of contents (6 chapters)

  1. Front Matter

    Pages i-xiii
  2. Introduction

    • Santosh Singh Rathore, Sandeep Kumar
    Pages 1-9
  3. Techniques Used for the Prediction of Number of Faults

    • Santosh Singh Rathore, Sandeep Kumar
    Pages 11-29
  4. Homogeneous Ensemble Methods for the Prediction of Number of Faults

    • Santosh Singh Rathore, Sandeep Kumar
    Pages 31-45
  5. Linear Rule Based Ensemble Methods for the Prediction of Number of Faults

    • Santosh Singh Rathore, Sandeep Kumar
    Pages 47-58
  6. Nonlinear Rule Based Ensemble Methods for the Prediction of Number of Faults

    • Santosh Singh Rathore, Sandeep Kumar
    Pages 59-69
  7. Conclusions

    • Santosh Singh Rathore, Sandeep Kumar
    Pages 71-73
  8. Back Matter

    Pages 75-78

About this book

This book addresses software faults—a critical issue that not only reduces the quality of software, but also increases their development costs. Various models for predicting the fault-proneness of software systems have been proposed; however, most of them provide inadequate information, limiting their effectiveness. This book focuses on the prediction of number of faults in software modules, and provides readers with essential insights into the generalized architecture, different techniques, and state-of-the art literature. In addition, it covers various software fault datasets and issues that crop up when predicting number of faults. 


A must-read for readers seeking a “one-stop” source of information on software fault prediction and recent research trends, the book will especially benefit those interested in pursuing research in this area. At the same time, it will provide experienced researchers with a valuable summary of the latest developments.

 

Authors and Affiliations

  • Department of Computer Science and Engineering, ABV-Indian Institute of Information Technology and Management Gwalior, Gwalior, India

    Santosh Singh Rathore

  • Department of Computer Science and Engineering, Indian Institute of Technology Roorkee, Roorkee, India

    Sandeep Kumar

About the authors


Dr. Santosh Singh Rathore is currently working as an Assistant Professor at the Department of Computer Science and Engineering, National Institute of Technology (NIT) Jalandhar, India. He received his Ph.D. degree from the Indian Institute of Technology Roorkee (IIT) and his master’s degree (M.Tech.) from the Indian Institute of Information Technology Design and Manufacturing (IIITDM) in Jabalpur, India. His research interests include Software Fault Prediction, Software Quality Assurance, Empirical Software Engineering, Object-Oriented Software Development, and Object-Oriented Metrics. He has published in various peer-reviewed journals and international conference proceedings.

Dr. Sandeep Kumar is currently working as an Assistant Professor at the Department of Computer Science and Engineering, Indian Institute of Technology (IIT) Roorkee, India. His areas of interest include Semantic Web, Web Services, and Software Engineering. He is currently engaged in various national and international research/consultancy projects and has many accolades to his credit, e.g. a Young Faculty Research Fellowship from the MeitY (Govt. of India), NSF/TCPP early adopter award—2014, 2015, ITS Travel Award 2011 and 2013, etc. He is a member of the ACM and senior member of the IEEE. His name has also been listed in major directories such as Marquis Who’s Who, IBC, and others.


Bibliographic Information

  • Book Title: Fault Prediction Modeling for the Prediction of Number of Software Faults

  • Authors: Santosh Singh Rathore, Sandeep Kumar

  • Series Title: SpringerBriefs in Computer Science

  • DOI: https://doi.org/10.1007/978-981-13-7131-8

  • Publisher: Springer Singapore

  • eBook Packages: Computer Science, Computer Science (R0)

  • Copyright Information: The Author(s), under exclusive license to Springer Nature Singapore Pte Ltd. 2019

  • Softcover ISBN: 978-981-13-7130-1Published: 12 April 2019

  • eBook ISBN: 978-981-13-7131-8Published: 03 April 2019

  • Series ISSN: 2191-5768

  • Series E-ISSN: 2191-5776

  • Edition Number: 1

  • Number of Pages: XIII, 78

  • Number of Illustrations: 7 b/w illustrations, 1 illustrations in colour

  • Topics: Software Engineering, The Computer Industry

Buy it now

Buying options

eBook USD 39.99
Price excludes VAT (USA)
  • Available as EPUB and PDF
  • Read on any device
  • Instant download
  • Own it forever
Softcover Book USD 54.99
Price excludes VAT (USA)
  • Compact, lightweight edition
  • Dispatched in 3 to 5 business days
  • Free shipping worldwide - see info

Tax calculation will be finalised at checkout

Other ways to access