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A Language-Based Approach to Indexing Heterogeneous Multimedia Lifelog

机译:基于语言的异构多媒体生命日志索引方法

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摘要

Lifelog systems, inspired by Vannevar Bush's concept of "MEMory Extenders" (MEMEX), are capable of storing a person's lifetime experience as a multimedia database. Despite such systems' huge potential for improving people's everyday life, there are major challenges that need to be addressed to make such systems practical. One of them is how to index the inherently large and heterogeneous lifelog data so that a person can efficiently retrieve the log segments that are of interest. In this paper, we present a novel approach to indexing lifelogs using activity language. By quantizing the heterogeneous high dimensional sensory data into text representation, we are able to apply statistical natural language processing techniques to index, recognize, segment, cluster, retrieve, and infer high-level semantic meanings of the collected lifelogs. Based on this indexing approach, our lifelog system supports easy retrieval of log segments representing past similar activities and generation of salient summaries serving as overviews of segments.
机译:受Vannevar Bush的“内存扩展器”(MEMEX)概念启发的Lifelog系统能够将一个人的一生的经历存储为多媒体数据库。尽管此类系统具有改善人们日常生活的巨大潜力,但要使此类系统实用化,仍需要解决主要挑战。其中之一是如何索引固有的大型异构生命日志数据,以便人们可以有效地检索感兴趣的日志段。在本文中,我们提出了一种使用活动语言索引生活日志的新颖方法。通过将异构的高维感觉数据量化为文本表示形式,我们能够将统计自然语言处理技术应用于索引,识别,分段,聚类,检索和推断所收集生命日志的高级语义。基于这种索引方法,我们的生活日志系统支持轻松检索代表过去类似活动的日志段,并生成显着的摘要作为段的概述。

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