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Neuronal Stochastic Attention Circuit (NSAC) for Probabilistic Representation Learning

About

Reliable quantification of uncertainty estimates in continuous-time (CT) representation learning remains nascent, particularly within CT attention architectures. We introduce the Neuronal Stochastic Attention Circuit (NSAC), a novel biologically-inspired CT attention architecture that reformulates attention logit computation as the solution of an Ornstein-Uhlenbeck stochastic differential equation modulated by input-dependent, nonlinear interlinked gates derived from repurposed C.elegans Neuronal Circuit Policies (NCPs) wiring mechanism. It induces Gaussian distribution over logits that propagates principled stochasticity through logistic-normal distribution over attention weights to yield probabilistic output. A two-term objective function combining Gaussian negative log-likelihood with an epistemic-separation regularizer enforces higher predictive variance and enables joint quantification of aleatoric and epistemic uncertainty. Empirically, we implement NSAC in a diverse set of learning tasks including: (i) irregular CT function approximation; (ii) multivariate regression; (iii) long-range forecasting; (iv) Industry 4.0; and (v) the lane-keeping of autonomous vehicles. We observe that the NSAC remains competitive against several baselines in terms of accuracy and produces reasonably well-calibrated uncertainty estimates while being interpretable at the neuronal cell level.

Waleed Razzaq, Yun-Bo Zhao• 2026

Related benchmarks

TaskDatasetResultRank
Autonomous Driving RegressionUdacity
MSE0.0249
6
Industry 4.0 MonitoringXJTU-SY
MSE0.0048
6
Industry 4.0 MonitoringHUST
MSE0.0033
6
Long-range ForecastingJ.Climate
MSE0.1675
6
Multivariate RegressionBoston
MSE0.0301
6
Multivariate RegressionKin8nm
MSE0.0327
6
Uncertainty Quantificationspiral
MSE2.00e-4
6
Autonomous Driving RegressionCarRacing
MSE0.0154
6
Industry 4.0 MonitoringPRONOSTIA
MSE0.0294
6
Long-range ForecastingETTm1
MSE0.0199
6
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