Towards Designing a Question-Answering Chatbot for Online News: Understanding Questions and Perspectives

December 17, 2023 Β· Declared Dead Β· πŸ› International Conference on Human Factors in Computing Systems

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Authors Md Naimul Hoque, Ayman Mahfuz, Mayukha Kindi, Naeemul Hassan arXiv ID 2312.10650 Category cs.HC: Human-Computer Interaction Citations 9 Venue International Conference on Human Factors in Computing Systems Last Checked 4 months ago
Abstract
Large Language Models (LLMs) have created opportunities for designing chatbots that can support complex question-answering (QA) scenarios and improve news audience engagement. However, we still lack an understanding of what roles journalists and readers deem fit for such a chatbot in newsrooms. To address this gap, we first interviewed six journalists to understand how they answer questions from readers currently and how they want to use a QA chatbot for this purpose. To understand how readers want to interact with a QA chatbot, we then conducted an online experiment (N=124) where we asked each participant to read three news articles and ask questions to either the author(s) of the articles or a chatbot. By combining results from the studies, we present alignments and discrepancies between how journalists and readers want to use QA chatbots and propose a framework for designing effective QA chatbots in newsrooms.
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