Deep Dive into Networked AI

[Deep Dive] GLANCE: Graph-based Learnable Digital Twin for Wireless Networks

17 min · 31 de ene de 2025
Portada del episodio [Deep Dive] GLANCE: Graph-based Learnable Digital Twin for Wireless Networks

Descripción

In this episode, we dive into the applications of graph neural networks as a learnable digital twin of network simulators, which can accelerate network optimization by its fast and differentiable prediction of networking key performance indicators (KPIs). This episode is based on a preprient authored by Boning Li, et al. Generated using NotebookLM from Google, this podcast highlights the key findings and implications of this research. 🎧 Read the paper here: [arXiv [https://arxiv.org/pdf/2408.09040]] 📷 Cover Image Source: imagine.art, Microsoft Designer 🎵 BGM: Artlist.io 🛠️ Credits: NotebookLM by Google

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episode [Deep Dive] AirGNN: Graph Neural Networks over the air for Wireless Networks artwork

[Deep Dive] AirGNN: Graph Neural Networks over the air for Wireless Networks

In this episode, we explore the nuances and key considerations of implementing graph neural networks as decentralized applications in wireless networks, such as source localization, multi-robot flocking, and wireless channel management — a core theme of this podcast, especially in this season. This discussion is based on a journal paper published in IEEE Transactions on Signal Processing, authored by Zhan Gao and Deniz Gündüz. Generated using NotebookLM from Google, this podcast highlights the key findings and implications of this research. 🎧 Read the paper here: [IEEE TSP](https://ieeexplore.ieee.org/document/9042352) 📷 Cover Image Source: imagine.art, Microsoft Designer 🎵 BGM: Artlist.io 🛠️ Credits: NotebookLM by Google

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