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Scientific Article details

Title A Convolutional Neural Network Approach to Parking Monitoring in Urban Radar Sensing
ID_Doc 44334
Authors Martinez, J; Zoeke, D; Vossiek, M
Title A Convolutional Neural Network Approach to Parking Monitoring in Urban Radar Sensing
Year 2017
Published
DOI
Abstract We propose a method for occupancy detection of parking space using background estimation and convolutional neural networks. To reduce the impact of ongoing traffic on the MIMO radar image, the moving objects in the scene are labeled as foreground and separated from static background. A convolutional neural network is trained to classify the images based on the occupancy of the parking spaces in the static images. Experimental measurements of real scenarios are presented showing very good performance after removing the foreground objects.
Author Keywords Convolutional neural networks; MIMO radar imaging; background estimation; smart city
Index Keywords Index Keywords
Document Type Other
Open Access Open Access
Source Conference Proceedings Citation Index - Science (CPCI-S)
EID WOS:000427787400022
WoS Category Engineering, Electrical & Electronic; Telecommunications
Research Area Engineering; Telecommunications
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