Applying Commonsense Reasoning to Place Identification

M. Mamei
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引用次数: 15

Abstract

Recent mobile computing applications try to automatically identify the places visited by the user from a log of GPS readings. Such applications reverse geocode the GPS data to discover the actual places shops, restaurants, etc. where the user has been. Unfortunately, because of GPS errors, the actual addresses and businesses being visited cannot be extracted unambiguously and often only a list of candidate places can be obtained. Commonsense reasoning can notably help the disambiguation process by invalidating some unlikely findings e.g., a user visiting a cinema in the morning. This paper illustrates the use of Cyc-an artificial intelligence system comprising a database of commonsense knowledge-to improve automatic place identification. Cyc allows to probabilistically rank the list of candidate places in consideration of the commonsense likelihood of that place being actually visited on the basis of the user profile, the time of the day, what happened before, and so forth. The system has been evaluated using real data collected from a mobile computing application.
将常识推理应用于地点识别
最近的移动计算应用程序试图从GPS读数日志中自动识别用户访问过的地方。此类应用程序对GPS数据进行反向地理编码,以发现用户去过的商店、餐馆等实际地点。不幸的是,由于GPS错误,无法明确地提取被访问的实际地址和企业,通常只能获得候选地点的列表。常识性推理可以通过使一些不太可能的发现无效来显著地帮助消歧过程,例如,用户在早上去电影院。本文介绍了使用cyc——一个包含常识性知识数据库的人工智能系统来改进自动地点识别。Cyc允许对候选地点列表进行概率排序,根据用户配置文件、一天中的时间、之前发生的事情等,考虑该地点实际访问的常见性可能性。使用从移动计算应用程序收集的真实数据对该系统进行了评估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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