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Erschienen in:

08.02.2024

A smart Iot-based waste management system using vehicle shortest path routing and trashcan visiting decision making based on deep convolutional neural network

verfasst von: V V Satyanarayana Kona, M. Subramoniam

Erschienen in: Peer-to-Peer Networking and Applications | Ausgabe 3/2024

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Abstract

Der Artikel stellt ein intelligentes IoT-basiertes Abfallmanagementsystem vor, das tiefe konvolutionale neuronale Netzwerke zur Abfalltypklassifizierung und Fahrzeugroutingoptimierung nutzt. Sie befasst sich mit den wachsenden Herausforderungen im Bereich Abfallmanagement in Großstädten, einschließlich ineffizienter Abfallsammlung und -entsorgung, Gesundheitsrisiken und Umweltauswirkungen. Das vorgeschlagene System verwendet IoT-Geräte, um Abfalleimer zu überwachen, Abfallarten genau zu klassifizieren und Abfallsammelrouten zu optimieren. Durch den Einsatz eines hybridisierten heuristischen Ansatzes namens HEO-SOA steigert das System die Effizienz des Abfallmanagements, senkt die Kosten und minimiert die Umweltauswirkungen. Der Artikel bietet eine umfassende Bewertung der Leistung des Systems, vergleicht es mit bestehenden Methoden und hebt seine überlegene Genauigkeit und Effizienz hervor. Der in diesem Artikel vorgestellte neuartige Ansatz bietet eine vielversprechende Lösung für nachhaltiges Abfallmanagement in städtischen Umgebungen.

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Metadaten
Titel
A smart Iot-based waste management system using vehicle shortest path routing and trashcan visiting decision making based on deep convolutional neural network
verfasst von
V V Satyanarayana Kona
M. Subramoniam
Publikationsdatum
08.02.2024
Verlag
Springer US
Erschienen in
Peer-to-Peer Networking and Applications / Ausgabe 3/2024
Print ISSN: 1936-6442
Elektronische ISSN: 1936-6450
DOI
https://doi.org/10.1007/s12083-024-01623-z