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Using dynamic occupancy patterns for improved presence detection in intelligent buildings

Research output: Chapter in Book/Report/Conference proceedingConference contributionAcademicpeer-review

Abstract

Presence detection is used in occupancy-based control to dynamically adjust energy-related appliances in smart buildings. Yet, practical applications typically suffer from high sensor unreliability. In our previous work, we suggested a Hidden Markov Model (HMM) for fusing information from multiple sources to better estimate the user state (presence/absence). We now extend this model and exploit information on the time-dependency of the probability of occupancy according to the time of the day. People generally have a typical working schedule, that is, occupants in an office arrive and leave every day at almost the same time. In this approach, we use our prior knowledge on office occupancy profiles to develop a time-dependent (in-homogeneous) HMM. Judging from our experiments, the algorithm shows improved performance, also, in a real-world test set-up where user presence and sensors error may not exactly follow our idealized model assumptions.

Original languageEnglish
Title of host publication2018 9th IFIP International Conference on New Technologies, Mobility and Security, NTMS 2018 - Proceedings
Place of PublicationPiscataway
PublisherInstitute of Electrical and Electronics Engineers
Number of pages5
ISBN (Electronic)978-1-5386-3662-6
ISBN (Print)978-1-5386-3663-3
DOIs
Publication statusPublished - 29 Mar 2018
Event9th IFIP International Conference on New Technologies, Mobility and Security, NTMS 2018 - Paris, France
Duration: 26 Feb 201828 Feb 2018

Conference

Conference9th IFIP International Conference on New Technologies, Mobility and Security, NTMS 2018
Country/TerritoryFrance
CityParis
Period26/02/1828/02/18

Keywords

  • Dynamic occupancy
  • HMM
  • Multiple observations
  • Presence-detection
  • Smart buildings

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