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Förklarbar återkommande neuralt nätverk×Återkommande neuralt nätverk×
ÄmnesområdeDjupinlärningDjupinlärning
FamiljMachine learningMachine learning
Ursprungsår2017–20201986–1990
UpphovspersonArrived via XAI literature (Arrieta et al., Lundberg & Lee, and attention-based RNN work)Rumelhart, D. E.; Elman, J. L.
TypInterpretability framework applied to sequence modelsSequential neural network
UrsprungskällaArrieta, A. B., Diaz-Rodriguez, N., Del Ser, J., Bennetot, A., Tabik, S., Barbado, A., Garcia, S., Gil-Lopez, S., Molina, D., Benjamins, R., Chatila, R., & Herrera, F. (2020). Explainable Artificial Intelligence (XAI): Concepts, taxonomies, opportunities and challenges toward responsible AI. Information Fusion, 58, 82–115. DOI ↗Elman, J. L. (1990). Finding structure in time. Cognitive Science, 14(2), 179–211. DOI ↗
AliasExplainable RNN, Interpretable RNN, XAI-RNN, Transparent Recurrent Neural NetworkRNN, Elman network, Jordan network, simple recurrent network
Närliggande53
SammanfattningAn Explainable Recurrent Neural Network (XAI-RNN) pairs a standard RNN architecture with a post-hoc or intrinsic interpretability method — such as SHAP, LIME, integrated gradients, or attention visualization — to reveal which input time steps or tokens most influence the model's sequential predictions, without sacrificing predictive accuracy.A Recurrent Neural Network (RNN) is a class of neural network designed to process sequential data by maintaining a hidden state that carries information across time steps. Introduced in its modern form by Rumelhart et al. (1986) and further shaped by Elman (1990), RNNs became the dominant architecture for sequence modelling in NLP, speech, and time-series analysis before the rise of attention-based models.
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ScholarGateJämför metoder: Explainable Recurrent Neural Network · Recurrent Neural Network. Hämtad 2026-06-18 från https://scholargate.app/sv/compare