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Titel:

Propagating variational model uncertainty for bioacoustic call label smoothing.

Dokumenttyp:
Journal Article
Autor(en):
Rizos, Georgios; Lawson, Jenna; Mitchell, Simon; Shah, Pranay; Wen, Xin; Banks-Leite, Cristina; Ewers, Robert; Schuller, Björn W
Abstract:
Along with propagating the input toward making a prediction, Bayesian neural networks also propagate uncertainty. This has the potential to guide the training process by rejecting predictions of low confidence, and recent variational Bayesian methods can do so without Monte Carlo sampling of weights. Here, we apply sample-free methods for wildlife call detection on recordings made via passive acoustic monitoring equipment in the animals' natural habitats. We further propose uncertainty-aware lab...     »
Zeitschriftentitel:
Patterns (N Y)
Jahr:
2024
Band / Volume:
5
Heft / Issue:
3
Volltext / DOI:
doi:10.1016/j.patter.2024.100932
PubMed:
http://view.ncbi.nlm.nih.gov/pubmed/38487806
TUM Einrichtung:
Lehrstuhl für Health Informatics (Prof. Schuller)
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