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Dokumenttyp:
Masterarbeit
Autor(en):
Oliver Beck
Titel:
Sampling Weights of Graph Neural Networks
Abstract:
Graph Neural Networks (GNNs) have become the standard tool for learning on structured data such as molecules, citation networks, and social networks. Their training typically depends on iterative backpropagation through several message-passing layers, which can be quite computationally demanding. By contrast, Sampling Where It Matters (SWIM) is a forward-only random-feature method that avoids gradient updates completely. It samples pairs from training data, builds hidden weights and biases from...     »
Aufgabensteller:
Felix Dietrich
Jahr:
2025
Quartal:
3. Quartal
Jahr / Monat:
2025-09
Monat:
Sep
Sprache:
en
Hochschule / Universität:
Technical University of Munich
Fakultät:
TUM School of Computation, Information and Technology
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