A framework of software requirements quality analysis system using case-based reasoning and Neural Network

In this paper, we propose a new approach to Software Requirements Specifications (SRS) or software requirements quality analysis process. We apply the Software Quality Assurance (SQA) audit technique in determining whether or not the required quality standards within the requirements specifications...

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Main Authors: Mat Jani H., Tariqul Islam A.B.M.
Other Authors: 13609136000
Format: Conference paper
Published: 2023
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spelling my.uniten.dspace-301412023-12-29T15:44:54Z A framework of software requirements quality analysis system using case-based reasoning and Neural Network Mat Jani H. Tariqul Islam A.B.M. 13609136000 55810282400 Artificial neural network (ANN) case-based reasoning (CBR) quality analysis software requirements specifications (SRS) Computer software selection and evaluation Data mining Data processing Information science Neural networks Quality assurance Requirements engineering Specifications Artificial intelligence techniques Casebased reasonings (CBR) Information processing paradigms Neural network techniques Requirements specifications Software quality assurance Software requirements Software requirements specifications Quality control In this paper, we propose a new approach to Software Requirements Specifications (SRS) or software requirements quality analysis process. We apply the Software Quality Assurance (SQA) audit technique in determining whether or not the required quality standards within the requirements specifications phase are being followed closely. Quality analysis of the SRS is performed to ensure that the software requirements among others are complete, consistent, correct, modifiable, ranked, traceable, unambiguous, and understandable. Here, a new approach that combines case-based reasoning (CBR) and neural network techniques in analyzing SRS quality is proposed. This approach is used in improving the process of analyzing the quality of a given SRS document for a specific project. The CBR technique is used to evaluate the requirements quality by referring to previously stored software requirements quality analysis cases (past experiences). CBR is an artificial intelligence technique that reasons by remembering previously experienced cases, and this technique will speed up the quality analysis process. Neural Network (Artificial Neural Network or ANN) is the type of information processing paradigm that is inspired by the way biological nervous systems (brain) process information. Neural network technique works well with CBR because it also uses examples to solve problems. The new approach proposed in this research aims at enhancing and improving existing methods in analyzing SRS quality. A framework of the proposed approach is the main outcome of this research study. � 2012 AICIT. Final 2023-12-29T07:44:53Z 2023-12-29T07:44:53Z 2012 Conference paper 2-s2.0-84880995361 https://www.scopus.com/inward/record.uri?eid=2-s2.0-84880995361&partnerID=40&md5=6f0765a33083b47ef0fb767f5436b2eb https://irepository.uniten.edu.my/handle/123456789/30141 6528619 152 157 Scopus
institution Universiti Tenaga Nasional
building UNITEN Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider Universiti Tenaga Nasional
content_source UNITEN Institutional Repository
url_provider http://dspace.uniten.edu.my/
topic Artificial neural network (ANN)
case-based reasoning (CBR)
quality analysis
software requirements specifications (SRS)
Computer software selection and evaluation
Data mining
Data processing
Information science
Neural networks
Quality assurance
Requirements engineering
Specifications
Artificial intelligence techniques
Casebased reasonings (CBR)
Information processing paradigms
Neural network techniques
Requirements specifications
Software quality assurance
Software requirements
Software requirements specifications
Quality control
spellingShingle Artificial neural network (ANN)
case-based reasoning (CBR)
quality analysis
software requirements specifications (SRS)
Computer software selection and evaluation
Data mining
Data processing
Information science
Neural networks
Quality assurance
Requirements engineering
Specifications
Artificial intelligence techniques
Casebased reasonings (CBR)
Information processing paradigms
Neural network techniques
Requirements specifications
Software quality assurance
Software requirements
Software requirements specifications
Quality control
Mat Jani H.
Tariqul Islam A.B.M.
A framework of software requirements quality analysis system using case-based reasoning and Neural Network
description In this paper, we propose a new approach to Software Requirements Specifications (SRS) or software requirements quality analysis process. We apply the Software Quality Assurance (SQA) audit technique in determining whether or not the required quality standards within the requirements specifications phase are being followed closely. Quality analysis of the SRS is performed to ensure that the software requirements among others are complete, consistent, correct, modifiable, ranked, traceable, unambiguous, and understandable. Here, a new approach that combines case-based reasoning (CBR) and neural network techniques in analyzing SRS quality is proposed. This approach is used in improving the process of analyzing the quality of a given SRS document for a specific project. The CBR technique is used to evaluate the requirements quality by referring to previously stored software requirements quality analysis cases (past experiences). CBR is an artificial intelligence technique that reasons by remembering previously experienced cases, and this technique will speed up the quality analysis process. Neural Network (Artificial Neural Network or ANN) is the type of information processing paradigm that is inspired by the way biological nervous systems (brain) process information. Neural network technique works well with CBR because it also uses examples to solve problems. The new approach proposed in this research aims at enhancing and improving existing methods in analyzing SRS quality. A framework of the proposed approach is the main outcome of this research study. � 2012 AICIT.
author2 13609136000
author_facet 13609136000
Mat Jani H.
Tariqul Islam A.B.M.
format Conference paper
author Mat Jani H.
Tariqul Islam A.B.M.
author_sort Mat Jani H.
title A framework of software requirements quality analysis system using case-based reasoning and Neural Network
title_short A framework of software requirements quality analysis system using case-based reasoning and Neural Network
title_full A framework of software requirements quality analysis system using case-based reasoning and Neural Network
title_fullStr A framework of software requirements quality analysis system using case-based reasoning and Neural Network
title_full_unstemmed A framework of software requirements quality analysis system using case-based reasoning and Neural Network
title_sort framework of software requirements quality analysis system using case-based reasoning and neural network
publishDate 2023
_version_ 1806427732556382208
score 13.188404