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Title Research On The Classification And Planning Of Functional Areas In Smart Cities Based On Artificial Intelligence
ID_Doc 45723
Authors Yi J.; Wu J.; Liu Q.; Zhou C.; Jia Y.; Wang Y.
Year 2024
Published 2024 3rd International Conference on Robotics, Artificial Intelligence and Intelligent Control, RAIIC 2024
DOI http://dx.doi.org/10.1109/RAIIC61787.2024.10671149
Abstract This study presents an innovative approach for urban functional zoning and planning based on artificial intelligence (AI) techniques. Utilizing multi-modal remote sensing data and geographic information, this research proposes a deep learning framework to accurately classify and segment urban functional areas. The proposed method leverages a Transformer-based Spatio-Temporal Fusion Network (TBST) that integrates high-resolution satellite imagery and time-series population data. The TBST model comprises two feature extraction branches, ResMixer and PDNet, which respectively handle spatial and temporal features, followed by a Transformer-based adaptive fusion layer to enhance the extraction of informal settlements in urban areas. Experimental results demonstrate that the multimodal data fusion significantly improves the accuracy of urban functional area classification, achieving superior performance metrics compared to single-modal approaches. This method holds significant potential for advancing smart city planning by providing precise and up-to-date spatial distribution information, thus supporting urban policy-making and sustainable development. © 2024 IEEE.
Author Keywords component; Deep Learning; Multi-modal Data Fusion; Smart City Planning; Urban Functional Zoning


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