Flexible software reliability growth models

dc.contributor.authorKapur, P.K.
dc.contributor.authorGupta, A.
dc.contributor.authorYadavalli, Venkata S. Sarma
dc.contributor.authorClaasen, S.J. (Schalk Johannes)
dc.contributor.emailsarma.yadavalli@up.ac.zaen
dc.date.accessioned2008-07-24T06:12:27Z
dc.date.available2008-07-24T06:12:27Z
dc.date.issued2006-11
dc.description.abstractNumerous Software Reliability Growth Models (SRGMs) have been discussed in the literature. These models are used to predict fault content and reliability of software. It has been observed that the relationship between testing time and the corresponding number of faults removed is either exponential or S-shaped, or a mix of the two. Another important class of SRGMs, known as flexible SRGMs, can depict both exponential and S-shaped growth curves. The paper introduces a new concept of power logistic learning function that proves to be very flexible, in the sense that it represents various curve types – exponential, Rayleigh, Weibull or simple logistic. The flexible nature of the power logistic function gives the flexible SRGM a higher degree of accuracy and wider applicability.en
dc.description.abstractVerskeie voorbeelde van Betroubaarheidsgroeimodelle vir programmatuur word in die literatuur beskryf. Die modelle word gebruik vir die voorspelling van foutinhoud en programmatuurbetroubaarheid. Daar word waargeneem dat die verband tussen toetstyd en die resulterende foutverwydering eksponensiaal of S-vormig of ‘n kombinasie daarvan is. Aanpasbare modelle insluitende diskrete ekwivalente word ook behandel. Die publikasie ontleed vervolgens algemene plooibare maglogistieke leerkromme met wye toepasbaarheid wat slaan op eksponensiële, Rayleigh-, Weilbull- en logistieke funksies. Die plooibaarheid van die model waarborg akkuraatheid en wye toepasbaarheid met die verlangde gehalte van voorspelbaarheid.
dc.format.extent151700 bytes
dc.format.mimetypeapplication/pdf
dc.identifier.citationKapur, PK, Gupta, A, Yadavalli, VSS, & Claasen, SJ 2006, 'Flexible software reliability growth models', South African Journal of Industrial Engineering, vol. 17, no. 2, pp. 109-125. [http://www.journals.co.za/ej/ejour_indeng.html]en
dc.identifier.issn1012-277X
dc.identifier.urihttp://hdl.handle.net/2263/6304
dc.language.isoenen
dc.publisherSouthern African Institute for Industrial Engineeringen
dc.rightsSouthern African Institute for Industrial Engineeringen
dc.subjectSoftware Reliability Growth Models (SRGMs)en
dc.subjectExponential growth curvesen
dc.subjectS-shape growth curvesen
dc.subjectPrediction fault contenten
dc.subjectReliability of softwareen
dc.subjectFlexible SRGMsen
dc.subject.lcshComputer software -- Verification
dc.titleFlexible software reliability growth modelsen
dc.typeArticleen

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