MOONA SOFTWARE FOR SURVEY CLASSIFICATION AND EVALUATION OF CRITERIA TO SUPPORT DECISION-MAKING FOR PROPERTIES PORTFOLIO

Author:

Baierle Ismael Cristofer1,Schaefer Jones Luis1ORCID,Sellitto Miguel Afonso2ORCID,Fava Leandro Pinto3ORCID,Furtado João Carlos3ORCID,Nara Elpidio Oscar Benitez3ORCID

Affiliation:

1. Department of Production Engineering, Universidade Federal de Santa Maria, Av. Roraima, 1000, 950, 97.105-900, Santa Maria, RS, Brazil

2. Department of Production and Systems Engineering, University of Vale do Rio dos Sinos, Av. Unisinos, 950, 93.022-750, Sao Leopoldo, RS, Brazil

3. Department of Industrial Systems and Process, University of Santa Cruz do Sul, Av. Independencia, 2293, 55 51 3717-7632, CEP: 96815-900 Santa Cruz do Sul, RS, Brazil

Abstract

The MOORA for Neural Networks Analysis (MONNA) software was created to classify variables and evaluate the degree of correlation between them, helping to choose a property portfolio and facilitating decision making involving multiple criteria. The MONNA software presents the classification of the alternatives calculated automatically by the MOORA (Multi-Objective Optimization on the Basis of Ratio Analysis) and provides a Global Average Rate (GAR). Artificial Neural Networks (ANNs) analysis provides the degree of correlation between variables and uses GAR as the output parameter. The degree of correlation between the variables allows us to assess whether these variables are dependent on each other and can capture customer preferences. For the application we used a survey that sought to know the preferences of customers, which will serve to make the decision of which properties should be part of the company’s portfolio. The contribution and originality of the MONNA software is that through the integration of the MOORA and ANN methods, the classification and criterion evaluation calculations are faster and standardized. The use of software by decision makers helps to have more accurately find and classify available options, preventing simulations from being done by iterative processes and providing validated numerical data for management evaluation.

Publisher

Vilnius Gediminas Technical University

Subject

Strategy and Management

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