Explainable Occupancy Prediction Using QLattice

Ajith N. Nair, Harshwardhan Tanwar, Pandarasamy Arjunan, Prashant Anand, Ardeshir Mahdavi

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

Abstract

Occupant presence and their behaviour in the built environment significantly impact energy consumption in buildings. Currently, building systems are often operated based on assumed occupancy and fixed schedules, or occupants manually adjust them for their comfort, which sometimes leads to energy wastage. Also, the inherent complexity and unpredictability of occupancy patterns can contribute to disparities between simulated and actual energy consumption, underscoring the importance of selecting suitable methods for occupancy prediction. Various methods, such as occupancy cameras, thermal imagers, Passive Infrared Sensors, and Radio-Frequency Identification, can collect occupancy information. However, they often come with limitations including cost, complexity, and invasiveness. Hence, there is a growing interest in creating occupancy prediction models using an indirect approach based on indoor air quality (IAQ) data. However, this indirect approach must be further explored within the building simulation field. In this study, we apply an approach based on the novel QLattice algorithm for occupancy detection, utilizing a minimal sensing strategy with a comprehensive set of IAQ data. Furthermore, we compare the QLattice algorithm's performance with that of traditional machine learning (ML) algorithms such as Support Vector Machines (SVM), Decision Trees (DT), and XGBoost using metrics including accuracy, precision, recall, F1 score, AUC-ROC values, and computational time. The QLattice algorithm outperforms traditional ML algorithms in all evaluation metrics, achieving over 90% accuracy on the test dataset. Additionally, compared to traditional black-box ML algorithms, QLattice stands out for its explainability and interpretability, providing insights useful in decision-making.

Original languageEnglish
Title of host publicationBuildSys 2023 - Proceedings of the10th ACM International Conference on Systems for Energy-Efficient Buildings, Cities, and Transportation
PublisherAssociation of Computing Machinery
Pages543-549
Number of pages7
ISBN (Electronic)9798400702303
DOIs
Publication statusPublished - 15 Nov 2023
Event10th ACM International Conference on Systems for Energy-Efficient Buildings, Cities, and Transportation: BuildSys 2023 - Istanbul, Turkey
Duration: 15 Nov 202316 Nov 2023

Conference

Conference10th ACM International Conference on Systems for Energy-Efficient Buildings, Cities, and Transportation
Abbreviated titleBuildSys 2023
Country/TerritoryTurkey
CityIstanbul
Period15/11/2316/11/23

Keywords

  • Data-Driven Modelling
  • Explainable Artificial Intelligence
  • Indoor Air Quality
  • Occupancy Prediction
  • QLattice

ASJC Scopus subject areas

  • Electrical and Electronic Engineering
  • Building and Construction
  • Architecture
  • Computer Networks and Communications
  • Information Systems
  • Renewable Energy, Sustainability and the Environment

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