DocumentCode :
710782
Title :
Effective models to predict customers´ responses to interactive audio advertisements
Author :
Shengqiang Chen ; Lu Liu ; Fuyuan Wang ; Guadagni, Gianluca
Author_Institution :
Univ. of Virginia, Charlottesville, VA, USA
fYear :
2015
fDate :
24-24 April 2015
Firstpage :
289
Lastpage :
294
Abstract :
XAPPmedia provides an interactive audio advertising service that allows customers to connect with advertisers by speaking prompted phases in their audio advertisement. In order to provide better services for their advertisers, XAPPmedia needs to determine key components that influence advertising performance. We developed an Ad Effectiveness model that coaches advertisers to optimize their XAPP advertising configurations for maximum ROI (Return on Investment), and it can also forecast expected advertising performance in the future. In this project, we implemented logistic regression and decision tree models to determine significant variables and the relationship between predictive variables and the voice response rates. We adopt log loss function and accuracy to evaluate model performance. Logistic regression with higher accuracy and smaller loss is a better model for our data than the decision tree.
Keywords :
advertising data processing; audio systems; customer services; decision trees; investment; regression analysis; ROI; XAPP advertising configurations; XAPPmedia; advertising effectiveness model; advertising performance; customer response prediction; decision tree model; interactive audio advertising service; log loss function; logistic regression model; predictive variables; return on investment; voice response rates; Advertising; Data models; Logistics; Microwave integrated circuits; Predictive models; Regression tree analysis; Advertising performance; Decision tree; Log loss; Logistic regression;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Systems and Information Engineering Design Symposium (SIEDS), 2015
Conference_Location :
Charlottesville, VA
Print_ISBN :
978-1-4799-1831-7
Type :
conf
DOI :
10.1109/SIEDS.2015.7116991
Filename :
7116991
Link To Document :
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