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Recommender System for Improving Customer Loyalty (Hardcover, 1st ed. 2020)
Loot Price: R2,789
Discovery Miles 27 890
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Recommender System for Improving Customer Loyalty (Hardcover, 1st ed. 2020)
Series: Studies in Big Data, 55
Expected to ship within 10 - 15 working days
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This book presents the Recommender System for Improving Customer
Loyalty. New and innovative products have begun appearing from a
wide variety of countries, which has increased the need to improve
the customer experience. When a customer spends hundreds of
thousands of dollars on a piece of equipment, keeping it running
efficiently is critical to achieving the desired return on
investment. Moreover, managers have discovered that delivering a
better customer experience pays off in a number of ways. A study of
publicly traded companies conducted by Watermark Consulting found
that from 2007 to 2013, companies with a better customer service
generated a total return to shareholders that was 26 points higher
than the S&P 500. This is only one of many studies that
illustrate the measurable value of providing a better service
experience. The Recommender System presented here addresses several
important issues. (1) It provides a decision framework to help
managers determine which actions are likely to have the greatest
impact on the Net Promoter Score. (2) The results are based on
multiple clients. The data mining techniques employed in the
Recommender System allow users to "learn" from the experiences of
others, without sharing proprietary information. This dramatically
enhances the power of the system. (3) It supplements traditional
text mining options. Text mining can be used to identify the
frequency with which topics are mentioned, and the sentiment
associated with a given topic. The Recommender System allows users
to view specific, anonymous comments associated with actual
customers. Studying these comments can provide highly accurate
insights into the steps that can be taken to improve the customer
experience. (4) Lastly, the system provides a sensitivity analysis
feature. In some cases, certain actions can be more easily
implemented than others. The Recommender System allows managers to
"weigh" these actions and determine which ones would have a greater
impact.
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