JOURNAL ARTICLE

Flow-Based Spatio-Temporal Structured Prediction of Motion Dynamics

Mohsen ZandAli EtemadMichael Greenspan

Year: 2023 Journal:   IEEE Transactions on Pattern Analysis and Machine Intelligence Vol: 45 (11)Pages: 13523-13535   Publisher: IEEE Computer Society

Abstract

Conditional Normalizing Flows (CNFs) are flexible generative models capable of representing complicated distributions with high dimensionality and large interdimensional correlations, making them appealing for structured output learning. Their effectiveness in modelling multivariates spatio-temporal structured data has yet to be completely investigated. We propose MotionFlow as a novel normalizing flows approach that autoregressively conditions the output distributions on the spatio-temporal input features. It combines deterministic and stochastic representations with CNFs to create a probabilistic neural generative approach that can model the variability seen in high-dimensional structured spatio-temporal data. We specifically propose to use conditional priors to factorize the latent space for the time dependent modeling. We also exploit the use of masked convolutions as autoregressive conditionals in CNFs. As a result, our method is able to define arbitrarily expressive output probability distributions under temporal dynamics in multivariate prediction tasks. We apply our method to different tasks, including trajectory prediction, motion prediction, time series forecasting, and binary segmentation, and demonstrate that our model is able to leverage normalizing flows to learn complicated time dependent conditional distributions.

Keywords:
Computer science Leverage (statistics) Artificial intelligence Curse of dimensionality Autoregressive model Generative model Probabilistic logic Time series Trajectory Probability distribution Prior probability Machine learning Bayesian probability Pattern recognition (psychology) Mathematics Generative grammar

Metrics

9
Cited By
2.42
FWCI (Field Weighted Citation Impact)
113
Refs
0.87
Citation Normalized Percentile
Is in top 1%
Is in top 10%

Citation History

Topics

Time Series Analysis and Forecasting
Physical Sciences →  Computer Science →  Signal Processing
Music and Audio Processing
Physical Sciences →  Computer Science →  Signal Processing
Computational Physics and Python Applications
Physical Sciences →  Computer Science →  Artificial Intelligence

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