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Updated: Oct 31, 2025

Trajectory Data Analyses for Pedestrian Space-time Activity Study
Published on: February 25, 2013
Vehicle trajectory prediction and generation using LSTM models and GANs.
Luca Rossi1, Andrea Ajmar2, Marina Paolanti1
1Dipartimento di Ingegneria dell'Informazione (DII), Universitá Politecnica delle Marche, Ancona, Italy.
This study introduces new methods and datasets for vehicle trajectory prediction, enhancing accuracy in complex scenarios like autonomous driving. Generative models show superior performance in multimodal traffic situations.
Area of Science:
- Computer Science
- Artificial Intelligence
- Transportation Engineering
Background:
- Vehicle trajectory prediction is crucial for autonomous driving, traffic management, and urban planning.
- Existing methods struggle with challenges like multimodality and generalizability in predicting vehicle movements from Floating Car Data (FCD).
Purpose of the Study:
- To address the limitations in current vehicle trajectory prediction models, particularly concerning multimodality and generalizability.
- To propose novel datasets, evaluation metrics, and deep learning models for improved trajectory prediction.
Main Methods:
- Developed and compared Long Short-Term Memory (LSTM) and Generative Adversarial Network (GAN) based deep learning models.
- Introduced new datasets and evaluation metrics (N-ADE, N-FDE) to better assess prediction accuracy.
- Conducted experiments in four Italian cities using real-world FCD.
Main Results:
- GAN-based models, specifically GAN-3, demonstrated superior performance in multimodal traffic scenarios.
- LSTM models proved effective in unimodal traffic situations.
- New metrics (N-ADE, N-FDE) provided a normalized evaluation, reducing biases in standard metrics.
Conclusions:
- The proposed generative models offer a significant advancement for multimodal vehicle trajectory prediction.
- The study highlights the importance of specialized models for different traffic complexities.
- The methodology is validated for real-world applications in traffic management and urban planning.
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