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2016

Marquette University

Benchmark forecasting

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Full-Text Articles in Business

Development And Validation Of A Rule-Based Time Series Complexity Scoring Technique To Support Design Of Adaptive Forecasting Dss, Monica Adya, Edward J. Lusk Mar 2016

Development And Validation Of A Rule-Based Time Series Complexity Scoring Technique To Support Design Of Adaptive Forecasting Dss, Monica Adya, Edward J. Lusk

Management Faculty Research and Publications

Evidence from forecasting research gives reason to believe that understanding time series complexity can enable design of adaptive forecasting decision support systems (FDSSs) to positively support forecasting behaviors and accuracy of outcomes. Yet, such FDSS design capabilities have not been formally explored because there exists no systematic approach to identifying series complexity. This study describes the development and validation of a rule-based complexity scoring technique (CST) that generates a complexity score for time series using 12 rules that rely on 14 features of series. The rule-based schema was developed on 74 series and validated on 52 holdback series using well-accepted …