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Exploring Deep Learning Architectures for Graph Applications - Jiani Zhang,Irwin King

englanti
2020-10-22
66,82 € 89,10 €

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Toimitus 12-18 arkipäivässä

30 päivän palautusoikeus

Graph-structured data are the backbone of numerous real-world machine learning tasks, such as social networks, recommender systems, traffic networks, and so on. The fundamental challenge in solving these tasks is to find a way to encode graph structures as well as to incorporate various node or edge information so that machine learning models can easily exploit them. In this dissertation, we explore deep le ... Täydellinen kuvaus

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Graph-structured data are the backbone of numerous real-world machine learning tasks, such as social networks, recommender systems, traffic networks, and so on. The fundamental challenge in solving these tasks is to find a way to encode graph structures as well as to incorporate various node or edge information so that machine learning models can easily exploit them. In this dissertation, we explore deep learning architectures, especially the graph neural networks for multiple graph learning applications, i.e., node classification, link prediction, spatiotemporal graph forecasting on irregular grid, and supervised sequence learning problems.

Lisätietoja

Kirjoittaja Jiani Zhang, Irwin King
Julkaisija LAP LAMBERT Academic Publishing
Julkaisuvuosi 2020
Kannen tyyppi Pehmeäkantinen
EAN 9786202917650
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Arvostelet: Exploring Deep Learning Architectures for Graph Applications
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66,82 € 89,10 €