Analysis of the preferences of public transport passengers in the task of building a personalized recommender system

A. Borodinov, V. Myasnikov
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引用次数: 3

Abstract

The paper presents the theoretical and algorithmic aspects for making a personalized recommender system (mobile service) designed for public route transport users. The main focus is on identifying and formalizing the concept of "user preferences", which is the basis of modern personalized recommender systems. Informal (verbal) and formal (mathematical) formulations of the corresponding problems of determining "user preferences" in a specific spatial-temporal context are presented: the preferred stops definition and the preferred "transport correspondence" definition. The first task can be represented as a well-known classification problem. Thus, it can be formulated and solved using well-known pattern recognition and machine learning methods. The second is reduced to the construction of dynamic graphs series. The experiments were conducted on data from the mobile application "Pribyvalka-63". The application is the tosamara.ru service part, currently used to inform Samara residents about the public transport movement.
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分析公交乘客在任务中的偏好,构建个性化的推荐系统
本文从理论和算法两个方面对公交用户个性化推荐系统(移动服务)的设计进行了阐述。主要重点是识别和形式化“用户偏好”的概念,这是现代个性化推荐系统的基础。提出了在特定时空背景下确定“用户偏好”的相应问题的非正式(口头)和正式(数学)公式:首选站点定义和首选“传输对应”定义。第一个任务可以表示为一个众所周知的分类问题。因此,它可以使用众所周知的模式识别和机器学习方法来制定和解决。第二步简化为构造动态图序列。实验是在移动应用程序“Pribyvalka-63”的数据上进行的。该应用程序是tosamara.ru服务部分,目前用于通知萨马拉居民有关公共交通运动。
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