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Accidents, Traffic, and Efficiency: AI for Transportation and Logistics

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Manage episode 446500682 series 3605861
Kandungan disediakan oleh Brian Carter. Semua kandungan podcast termasuk episod, grafik dan perihalan podcast dimuat naik dan disediakan terus oleh Brian Carter atau rakan kongsi platform podcast mereka. Jika anda percaya seseorang menggunakan karya berhak cipta anda tanpa kebenaran anda, anda boleh mengikuti proses yang digariskan di sini https://ms.player.fm/legal.

This paper provides a comprehensive overview of deep generative models (DGMs) and their applications within transportation research. It begins by outlining the fundamental principles and concepts of DGMs, focusing on various model types such as Variational Autoencoders (VAEs), Generative Adversarial Networks (GANs), Normalizing Flows, and Diffusion Models. The paper then examines the effectiveness of DGMs in diverse transportation research areas, including data generation, estimation and prediction, and unsupervised representation learning. It also includes practical tutorial codes to guide researchers in implementing these models for real-world transportation applications, highlighting current challenges and opportunities for future development.

Read the paper: https://arxiv.org/abs/2410.07066

  continue reading

71 episod

Artwork
iconKongsi
 
Manage episode 446500682 series 3605861
Kandungan disediakan oleh Brian Carter. Semua kandungan podcast termasuk episod, grafik dan perihalan podcast dimuat naik dan disediakan terus oleh Brian Carter atau rakan kongsi platform podcast mereka. Jika anda percaya seseorang menggunakan karya berhak cipta anda tanpa kebenaran anda, anda boleh mengikuti proses yang digariskan di sini https://ms.player.fm/legal.

This paper provides a comprehensive overview of deep generative models (DGMs) and their applications within transportation research. It begins by outlining the fundamental principles and concepts of DGMs, focusing on various model types such as Variational Autoencoders (VAEs), Generative Adversarial Networks (GANs), Normalizing Flows, and Diffusion Models. The paper then examines the effectiveness of DGMs in diverse transportation research areas, including data generation, estimation and prediction, and unsupervised representation learning. It also includes practical tutorial codes to guide researchers in implementing these models for real-world transportation applications, highlighting current challenges and opportunities for future development.

Read the paper: https://arxiv.org/abs/2410.07066

  continue reading

71 episod

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