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Temporal Modelling of Customer Behaviour

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Temporal Modelling of Customer Behaviour Synopsis

This book describes advanced machine learning models - such as temporal collaborative filtering, stochastic models and Bayesian nonparametrics - for analysing customer behaviour. It shows how they are used to track changes in customer behaviour, monitor the evolution of customer groups, and detect various factors, such as seasonal effects and preference drifts, that may influence customers' purchasing behaviour. In addition, the book presents four case studies conducted with data from a supermarket health program in which the customers were segmented and the impact of promotional activities on different segments was evaluated. The outcomes confirm that the models developed here can be used to effectively analyse dynamic behaviour and increase customer engagement. Importantly, the methods introduced here can also be used to analyse other types of behavioural data such as activities on social networks, and educational systems.


About This Edition

ISBN: 9783030182885
Publication date:
Author: Ling Luo
Publisher: Springer an imprint of Springer International Publishing
Format: Hardback
Pagination: 123 pages
Series: Springer Theses
Genres: Artificial intelligence
Machine learning
Market research
Public health and preventive medicine
Occupational and industrial psychology