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Aprenentatge mètric en línia×Xarxa Neuronal Siamesa×
CampAprenentatge automàticAprenentatge profund
FamíliaMachine learningMachine learning
Any d'origen2004–20091993
Autor originalShalev-Shwartz, S.; Singer, Y.; and othersJane Bromley & Yann LeCun et al.; popularized by Koch et al.
TipusOnline / incremental learning of distance metricsDeep metric-learning architecture
Font seminalShalev-Shwartz, S., Singer, Y., & Ng, A. Y. (2004). Online and batch learning of pseudo-metrics. Proceedings of the 21st International Conference on Machine Learning (ICML 2004), pp. 94. ACM. link ↗Bromley, J., Guyon, I., LeCun, Y., Säckinger, E., & Shah, R. (1993). Signature verification using a 'Siamese' time delay neural network. Advances in Neural Information Processing Systems, 6. link ↗
ÀliesOML, incremental metric learning, streaming metric learning, online distance metric learningtwin network, Siamese neural network, contrastive metric network, Siyam ağı
Relacionats31
ResumOnline Metric Learning adapts a Mahalanobis distance metric incrementally as new labeled examples or pairwise constraints arrive one at a time, without storing the full dataset. It merges the efficiency of online learning with the representational power of metric learning, making it suitable for streaming, large-scale, or continually changing environments where retraining from scratch is impractical.A Siamese network is a deep architecture with two (or more) identical, weight-sharing branches that map inputs into an embedding space where similar inputs land close together and dissimilar ones far apart. Introduced by Bromley, LeCun, and colleagues in 1993 for signature verification and revived by Koch et al. (2015) for one-shot image recognition, it learns a similarity metric rather than fixed class labels, making it ideal for verification, matching, and few-shot tasks.
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ScholarGateCompara mètodes: Online Metric Learning · Siamese Network. Recuperat el 2026-06-18 de https://scholargate.app/ca/compare