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Website Morphing 2.0: Switching Costs, Partial Exposure, Random Exit, and When to Morph

Author(s)
Liberali, Guilherme (Gui); Hauser, John R; Urban, Glen L
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DownloadWhen to Morph MS March 2014-John-Hauser.pdf (1.076Mb)
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Abstract
Website morphing infers latent customer segments from clickstreams and then changes websites' look and feel to maximize revenue. The established algorithm infers latent segments from a preset number of clicks and then selects the best “morph” using expected Gittins indices. Switching costs, potential website exit, and all clicks prior to morphing are ignored. We model switching costs, potential website exit, and the (potentially differential) impact of all clicks to determine when to morph for each customer. Morphing earlier means more customer clicks are based on the optimal morph; morphing later reveals more about the customer's latent segment. We couple this within-customer optimization to between-customer expected Gittins index optimization to determine which website “look and feel” to give to each customer at each click. We evaluate the improved algorithm with synthetic data and with a proof-of-feasibility application to Japanese bank card loans. The proposed algorithm generalizes the established algorithm, is feasible in real time, performs substantially better when tuning parameters are identified from calibration data, and is reasonably robust to misspecification.
Date issued
2014-05
URI
http://hdl.handle.net/1721.1/111141
Department
Sloan School of Management
Journal
Management Science
Publisher
Institute for Operations Research and the Management Sciences (INFORMS)
Citation
Hauser, John R. et al. “Website Morphing 2.0: Switching Costs, Partial Exposure, Random Exit, and When to Morph.” Management Science 60, 6 (June 2014): 1594–1616 © 2014 Institute for Operations Research and the Management Sciences (INFORMS)
Version: Author's final manuscript
ISSN
0025-1909
1526-5501

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