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Papers/Stepwise Goal-Driven Networks for Trajectory Prediction

Stepwise Goal-Driven Networks for Trajectory Prediction

Chuhua Wang, Yuchen Wang, Mingze Xu, David J. Crandall

2021-03-25PredictionMulti-future Trajectory PredictionTrajectory Prediction
PaperPDFCode(official)

Abstract

We propose to predict the future trajectories of observed agents (e.g., pedestrians or vehicles) by estimating and using their goals at multiple time scales. We argue that the goal of a moving agent may change over time, and modeling goals continuously provides more accurate and detailed information for future trajectory estimation. To this end, we present a recurrent network for trajectory prediction, called Stepwise Goal-Driven Network (SGNet). Unlike prior work that models only a single, long-term goal, SGNet estimates and uses goals at multiple temporal scales. In particular, it incorporates an encoder that captures historical information, a stepwise goal estimator that predicts successive goals into the future, and a decoder that predicts future trajectory. We evaluate our model on three first-person traffic datasets (HEV-I, JAAD, and PIE) as well as on three bird's eye view datasets (NuScenes, ETH, and UCY), and show that our model achieves state-of-the-art results on all datasets. Code has been made available at: https://github.com/ChuhuaW/SGNet.pytorch.

Results

TaskDatasetMetricValueModel
Trajectory PredictionJAADCF_MSE(1.5)4076SGNet
Trajectory PredictionJAADC_MSE(1.5)996SGNet
Trajectory PredictionJAADMSE(0.5)82SGNet
Trajectory PredictionJAADMSE(1.0)328SGNet
Trajectory PredictionJAADMSE(1.5)1049SGNet
Trajectory PredictionHEV-IADE(0.5)6.28SGNet
Trajectory PredictionHEV-IADE(1.0)11.35SGNet
Trajectory PredictionHEV-IADE(1.5)18.27SGNet
Trajectory PredictionHEV-IFDE(1.5)39.86SGNet
Trajectory PredictionHEV-IFIOU(1.5)0.63SGNet
Trajectory PredictionETH/UCYADE-8/120.18SGNet
Trajectory PredictionETH/UCYFDE-8/120.35SGNet
Trajectory PredictionPIECF_MSE(1.5)1761SGNet
Trajectory PredictionPIEC_MSE(1.5)413SGNet
Trajectory PredictionPIEMSE(0.5)34SGNet
Trajectory PredictionPIEMSE(1.0)133SGNet
Trajectory PredictionPIEMSE(1.5)442SGNet

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