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Liczba wyników
2023 | z. 189 Współczesne zarządzanie = Contemporary management | 759--769
Tytuł artykułu

The Usage of Smart Thermostats in Smart Home

Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Purpose: The purpose of this publication is to present the usage of smart lighting in smart tehmostats.

Design/methodology/approach: Critical literature analysis. Analysis of international literature from main databases and polish literature and legal acts connecting with researched topic.

Findings: Smart thermostats stand as a transformative innovation in home automation, reshaping the management of heating and cooling systems in smart homes. This integration introduces a host of advantages that go beyond conventional thermostat functionalities. The ability to remotely control and monitor temperature settings via dedicated mobile applications provides users with unparalleled flexibility and convenience. The seamless integration with popular smart home platforms like Amazon Alexa, Google Assistant, or Apple HomeKit fosters a cohesive and automated living environment by harmonizing with other smart devices. Beyond temperature control, smart thermostats exhibit a dedication to energy efficiency through learning algorithms that optimize settings over time, potentially reducing energy bills. Features such as weather integration, occupancy sensors, and voice control further enhance efficiency and convenience. With a pivotal role in environmental sustainability, these devices promote energy conservation, offer insights into consumption patterns, and support compatibility with renewable energy sources. While acknowledging substantial advantages, potential challenges such as connectivity issues and privacy concerns should be addressed through measures like stable internet connections and prioritizing security features. Smart thermostats embody the fusion of technology, convenience, and sustainability in modern homes, with ongoing evolution poised to further shape intelligent and comfortable living spaces.

Originality/Value: Detailed analysis of all subjects related to the problems connected with the usage of smart thermostats in smart home.(original abstract)
Twórcy
  • Silesian University of Technology, Poland
  • The Pennsylvania State University, State College, USA
Bibliografia
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  • 3. Ameur, A., Berrada, A., Emrani, A. (2023). Intelligent energy management system for smart home with grid-connected hybrid photovoltaic/gravity energy storage system. Journal of Energy Storage, 72, 108525.
  • 4. Basarir-Ozel, B., Nasir, V.A., Turker, H.B. (2023). Determinants of smart home adoption and differences across technology readiness segments. Technological Forecasting and Social Change, 197, 122924.
  • 5. Chaudhari, R.R., Joshi, K.K., Joshi, N., Pandey, A.K. (2023). Smart and ecofriendly intelligent house based on iot and simulation using a Cisco networking simulator. Intelligent Sensor Node-Based Systems: Applications in Engineering and Science, 259-273.
  • 6. Chen, H., Zhang, Y., Wang, L. (2023). A study on the quality evaluation index system of smart home care for older adults in the community --based on Delphi and AHP. BMC Public Health, 23(1), 411.
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  • 8. Douha, N.Y.-R., Renaud, K., Taenaka, Y., Kadobayashi, Y. (2023). Smart home cybersecurity awareness and behavioral incentives. Information and Computer Security, 31(5), 545-575.
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  • 12. Hussain, S., Azim, M.I., Lai, C., Eicker, U. (2023). New coordination framework for smart home peer-to-peer trading to reduce impact on distribution transformer. Energy, 284, 129297.
  • 13. Hussain, S., Imran Azim, M., Lai, C., Eicker, U. (2023). Multi-stage optimization for energy management and trading for smart homes considering operational constraints of a distribution network. Energy and Buildings, 301, 113722.
  • 14. Jonek-Kowalska, I., Wolniak, R. (2021). Economic opportunities for creating smart cities in Poland. Does wealth matter? Cities, 114, 1-6.
  • 15. Jonek-Kowalska, I., Wolniak, R. (2022). Sharing economies' initiatives in municipal authorities' perspective: research evidence from Poland in the context of smart cities' development. Sustainability, 14(4), 1-23.
  • 16. Olabode, S., Owens, R., Zhang, V.N., Shi, L., Chambers, D. (2023). Complex online harms and the smart home: A scoping review. Future Generation Computer Systems, 149, 664-678.
  • 17. Patheja, P.S., Kalra, Y., Tyagi, A. Patheja, P.S., Kalra, Y., Tyagi, A. (2023). Intelligent Sensor Node-Based Systems: Applications in Engineering and Science, 155-175.
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  • 20. Rohde, F., von Andrian, N., Lange, S. (2023). Threat, fixable or opportunity? Contested smart home futures in the German social media debate. Energy Research and Social Science, 106, 103306.
  • 21. Sobhani, A., Khorshidi, F., Fakhredanesh, M. (2023). DeePLS: Personalize Lighting in Smart Home by Human Detection, Recognition, and Tracking. SN Computer Science, 4(6), 773.
  • 22. Tong, Z., Mansouri, S.A., Huang, S., Rezaee Jordehi, A., Tostado-Véliz, M. (2023). The role of smart communities integrated with renewable energy resources, smart homes and electric vehicles in providing ancillary services: A tri-stage optimization mechanism. Applied Energy, 351, 121897.
  • 23. Valencia-Arias, A., Cardona-Acevedo, S., Gómez-Molina, S., Gonzalez-Ruiz, J.D., Valencia, J. (2023). Smart home adoption factors: A systematic literature review and research agenda. PLoS ONE, 18(10 October), e0292558.
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Typ dokumentu
Bibliografia
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Identyfikator YADDA
bwmeta1.element.ekon-element-000171691126

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