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Sammenlign metoder

Gjennomgå de valgte metodene side om side; rader som avviker, er uthevet.

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FamilieMachine learningMachine learning
Opprinnelsesår2015–20162012–2014
OpphavspersonOquab, M. et al.; Zhou, B. et al.Yosinski, J. et al. (theoretical basis); practice widespread from Krizhevsky et al. 2012 onward
TypeWeakly supervised deep learningTransfer learning technique (supervised fine-tuning)
Opprinnelig kildeZhou, B., Khosla, A., Lapedriza, A., Oliva, A., & Torralba, A. (2016). Learning deep features for discriminative localization. Proceedings of the IEEE Conference on Computer Vision and Pattern Recognition (CVPR), 2921–2929. DOI ↗Yosinski, J., Clune, J., Bengio, Y., & Lipson, H. (2014). How transferable are features in deep neural networks? Advances in Neural Information Processing Systems, 27. link ↗
AliasWS-CNN, weakly supervised CNN, CNN with weak labels, CNN with noisy labelsFine-tuned CNN, CNN fine-tuning, CNN transfer learning with fine-tuning, adapted convolutional network
Relaterte55
SammendragA weakly supervised CNN is a convolutional neural network trained with incomplete, coarse, or noisy annotations instead of full pixel-level or bounding-box labels. Typical weak labels include image-level class tags, partial annotations, or crowd-sourced noisy labels. The model learns to classify and often to roughly localize objects using these cheaper, lower-quality supervision signals.Fine-tuning a CNN means starting from a network already trained on a large dataset — typically ImageNet — and continuing training on a smaller target dataset so the model adapts its learned visual features to a new task. This approach dramatically reduces the data and compute required to reach strong performance compared with training from scratch.
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ScholarGateSammenlign metoder: Weakly supervised convolutional neural network · Fine-Tuned Convolutional Neural Network. Hentet 2026-06-17 fra https://scholargate.app/no/compare