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How Fast You Will Drive? Predicting Speed of Customized Paths By Deep Neural Network

Hao Yang, Chenxi Liu, Meixin Zhu, Xuegang Ban, Yinhai Wang

2021IEEE Transactions on Intelligent Transportation Systems41 citationsDOI

Abstract

Customized path-based speed prediction is an eventful tool for congestion avoidance, route optimization and travel time prediction for navigation apps, cab-hailing companies and autonomous vehicles. Traditionally, the speed prediction algorithms are based on road segments and can only support several main roads. Path-based speed prediction is very challenging since the speed is always changing in different path locations and is jointly affected by lots of complicated factors. This article presents a novel deep learning framework for customized path-based speed prediction. A Path-based Speed Prediction Neural Network (PSPNN) is designed to achieve speed predictions for a given path and attributes information. A hierarchical Convolutional Neural Network (CNN) and deep Bidirectional Long Short-Term Memory (Bi-LSTM) structure for different kinds of feature extraction are applied for multiple levels: the path cell, sub-path and the whole path. The method narrows down the prediction unit from road segments to customized path cells (mean length: 59.52m) and achieves a mean absolute error (MAE) of 1.94 m/s and Mean Absolute Percentage Error (MAPE) of 18.14%, showing the potential of serving rigorous data-driven applications. So far, PSPNN is the first made-to-order path-based speed prediction algorithm and can help both travelers and managers to obtain large-scale bespoke paths speed information in advance.

Topics & Concepts

Path (computing)Convolutional neural networkMean absolute percentage errorComputer scienceBespokeArtificial neural networkPath lengthArtificial intelligenceSpeedupReal-time computingData miningProgramming languageOperating systemPolitical scienceComputer networkLawTraffic Prediction and Management TechniquesTransportation Planning and OptimizationTraffic control and management
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