Predicting Auction Price of Vehicle License Plate with Deep Residual Learning

October 08, 2019 Β· Declared Dead Β· πŸ› Pacific-Asia Conference on Knowledge Discovery and Data Mining

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Authors Vinci Chow arXiv ID 1910.04879 Category cs.CV: Computer Vision Cross-listed cs.LG, econ.GN Citations 0 Venue Pacific-Asia Conference on Knowledge Discovery and Data Mining Last Checked 3 months ago
Abstract
Due to superstition, license plates with desirable combinations of characters are highly sought after in China, fetching prices that can reach into the millions in government-held auctions. Despite the high stakes involved, there has been essentially no attempt to provide price estimates for license plates. We present an end-to-end neural network model that simultaneously predict the auction price, gives the distribution of prices and produces latent feature vectors. While both types of neural network architectures we consider outperform simpler machine learning methods, convolutional networks outperform recurrent networks for comparable training time or model complexity. The resulting model powers our online price estimator and search engine.
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