Using Topic Models to Mine Everyday Object Usage Routines Through Connected IoT Sensors

Conference Paper (2018)
Author(s)

Yanxia Zhang (FX Palo Alto Laboratory)

Hayley Hung (TU Delft - Electrical Engineering, Mathematics and Computer Science)

Research Group
Pattern Recognition and Bioinformatics
DOI related publication
https://doi.org/10.1145/3277593.3277634 Final published version
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Publication Year
2018
Language
English
Research Group
Pattern Recognition and Bioinformatics
Article number
a27
Pages (from-to)
1-4
ISBN (print)
978-1-4503-6564-2
Event
8th International Conference on the Internet of Things, IoT 2018 (2018-10-15 - 2018-10-18), Santa Barbara, United States
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Abstract

With the tremendous progress in sensing and IoT infrastructure, it is foreseeable that IoT systems will soon be available for commercial markets, such as in people's homes. In this paper, we present a deployment study using sensors attached to household objects to capture the resourcefulness of three individuals. The concept of resourcefulness highlights the ability of humans to repurpose objects spontaneously for a different use case than was initially intended. It is a crucial element for human health and wellbeing, which is of great interest for various aspects of HCI and design research. Traditionally, resourcefulness is captured through ethnographic practice. Ethnography can only provide sparse and often short duration observations of human experience, often relying on participants being aware of and remembering behaviours or thoughts they need to report on. Our hypothesis is that resourcefulness can also be captured through continuously monitoring objects being used in everyday life. We developed a system that can record object movement continuously and deployed them in homes of three elderly people for over two weeks. We explored the use of probabilistic topic models to analyze the collected data and identify common patterns.

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