Neuro-Fuzzy Algorithmic (NFA) Models and Tools for Estimation

July 31, 2015 Β· Declared Dead Β· πŸ› arXiv.org

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Authors Danny Ho, Luiz Fernando Capretz, Xishi Huang, Jing Ren arXiv ID 1508.00037 Category cs.SE: Software Engineering Cross-listed cs.AI Citations 2 Venue arXiv.org Last Checked 4 months ago
Abstract
Accurate estimation such as cost estimation, quality estimation and risk analysis is a major issue in management. We propose a patent pending soft computing framework to tackle this challenging problem. Our generic framework is independent of the nature and type of estimation. It consists of neural network, fuzzy logic, and an algorithmic estimation model. We made use of the Constructive Cost Model (COCOMO), Analysis of Variance (ANOVA), and Function Point Analysis as the algorithmic models and validated the accuracy of the Neuro-Fuzzy Algorithmic (NFA) Model in software cost estimation using industrial project data. Our model produces more accurate estimation than using an algorithmic model alone. We also discuss the prototypes of our tools that implement the NFA Model. We conclude with our roadmap and direction to enrich the model in tackling different estimation challenges.
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