健身辅助系统的人工智能推荐系统

T. Tran, Jae-Won Choi, Dang Van Chien, Geon SuPark, Jun-Young Baek, Jong-Wook Kim
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引用次数: 6

摘要

本文提出了一种支持人工智能健身辅助系统的推荐系统(RS)。RS用于为初学者和现有用户提供这些建议。本文的目标是开发一个具有学习,分析,预测和提出这些建议的能力的RS,并通过人工智能与人类交流。采用人工神经网络和逻辑回归预测每个初学者的合适锻炼。此外,利用Soar架构的强化学习能力开发的agent可以帮助成员根据自己的情况选择锻炼。通过实验结果,验证了实用应用的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Recommender System with Artificial Intelligence for Fitness Assistance System
This paper proposes a recommender system (RS) to support the fitness assistance system (F AS) with artificial intelligence. The RS is applied to make these suggestions for the beginners and existing users. The goal of the paper aims to develop an RS that has an ability to learn, analyze, predict, and make these suggestions as well as communicate to human through AI. Artificial Neural Network and Logistic Regression have been employed to predict the suitable workout for each beginner. In addition, the agent developed with reinforcement learning capability of Soar architecture help the members select their workout based on their condition. Through the experimental result, the effectiveness of utility application is validated.
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