推荐系统算法基于内容的过滤方法提供饮料菜单推荐

K. Kosim, Reza Prihandi, Sekolah Tinggi, Ilmu Komputer, Poltek Cirebon, Kosim Sekolah, Tinggi Ilmu, Komputer Poltek, IN Cirebon
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引用次数: 0

摘要

过度选择是一种认知障碍,人们在面临许多选择时难以做出决定,这就是本研究中的问题。这种过度选择的现象经常发生在咖啡馆和餐馆选择饮料。这项研究旨在创建一个推荐系统(RS)来帮助你选择你想要点的饮料。在Mubtada Kopi咖啡馆创建非个性化医院使用了评分最高的基于内容的过滤方法。基于内容的过滤方法尝试显式地检索用户首选项,要求用户从生成的六个内容中选择用户想要的首选项,然后使用点阵公式计算用户的首选项与每个条目中的六个内容之间的匹配。结果将被转换成一个评级,以匹配最佳评级的医院方法,这是在非个性化的基础上做出的。这个评级与用户的偏好和Mubtada Kopi菜单列表项相匹配。评分越高,说明它越符合用户的偏好。RS推荐的基于内容过滤方法的顺序是玫瑰花茶、巧克力茶、柠檬茶、花茶和香料茶。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Recommendation System Algorithm Content-Based Filtering Method to Provide Drink Menu Recommendations
Overchoice is a cognitive disorder in which people have difficulty making decisions when faced with many choices, that make the problem in this study. This over-choice phenomenon often occurs in choosing drinks in cafes and restaurants. This research aims to create a Recommendation System (RS) to assist in choosing the drink you want to order. Making a non-personalized hospital at the Mubtada Kopi cafe uses the best-rated and content-based filtering methods. The content-based filtering method tries to retrieve user preferences explicitly, asking the user to choose the preferences the user wants from the six content made before calculating the match between the user's preferences and the six contents in each item using the dot matrix formula. The results will be converted into a rating to match the best-rated hospital approach, which is made on a non-personalized basis. This rating matches the user's preferences and the Mubtada Kopi menu list items. The higher the rating, the better it matches the user's preferences. The order RS recommends with the Content-based filtering method is rosella tea, chocolate, lemon tea, blossom tea, and spice tea.
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