Proactive Detractor Detection Framework Based on Message-Wise Sentiment Analysis Over Customer Support Interactions
November 08, 2022 ยท Declared Dead ยท ๐ LatinX in AI at Neural Information Processing Systems Conference 2022
"No code URL or promise found in abstract"
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Authors
Juan Sebastiรกn Salcedo Gallo, Jesรบs Solano, Javier Hernรกn Garcรญa, David Zarruk-Valencia, Alejandro Correa-Bahnsen
arXiv ID
2211.03923
Category
cs.CL: Computation & Language
Cross-listed
cs.IR,
cs.LG
Citations
1
Venue
LatinX in AI at Neural Information Processing Systems Conference 2022
Last Checked
4 months ago
Abstract
In this work, we propose a framework relying solely on chat-based customer support (CS) interactions for predicting the recommendation decision of individual users. For our case study, we analyzed a total number of 16.4k users and 48.7k customer support conversations within the financial vertical of a large e-commerce company in Latin America. Consequently, our main contributions and objectives are to use Natural Language Processing (NLP) to assess and predict the recommendation behavior where, in addition to using static sentiment analysis, we exploit the predictive power of each user's sentiment dynamics. Our results show that, with respective feature interpretability, it is possible to predict the likelihood of a user to recommend a product or service, based solely on the message-wise sentiment evolution of their CS conversations in a fully automated way.
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