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Constraint-Based Bayesian Network Structure Learning using Uncertain Experts’ Knowledge
Published 2021-04-01“…In this paper, we fill this gap by introducing the mathematical foundations for new independence tests including this kind of information. We provide a new constraint-based algorithm relying on these tests as well as experiments that highlight the robustness of our method and its benefits compared to other constraint-based learning algorithms.…”
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A Variational Bayesian Truncated Adaptive Filter for Uncertain Systems with Inequality Constraints
Published 2024-01-01“…In this paper, a variational Bayesian (VB) truncated adaptive filter for uncertain systems with inequality constraints is proposed. …”
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Stochastic Fractal Search for Bayesian Network Structure Learning Under Soft/Hard Constraints
Published 2025-06-01“…Moreover, a new feature selection (FS) method is proposed to mine fragmented knowledge. This fragmented prior knowledge serves as a soft constraint, and the acquired expert knowledge serves as a hard constraint. …”
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A Novel Hyper-Heuristic Algorithm for Bayesian Network Structure Learning Based on Feature Selection
Published 2025-07-01“…Bayesian networks (BNs) are effective and universal tools for addressing uncertain knowledge. …”
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Efficient Tuning of an Isotope Separation Online System Through Safe Bayesian Optimization with Simulation-Informed Gaussian Process for the Constraints
Published 2024-11-01“…Therefore, a slight modification of safe Bayesian optimization allows for applying the method using a probabilistic classifier for learning classification constraints. …”
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Optimizing a Bayesian Method for Estimating the Hurst Exponent in Behavioral Sciences
Published 2025-05-01“…The Bayesian Hurst–Kolmogorov (HK) method estimates the Hurst exponent of a time series more accurately than the age-old Detrended Fluctuation Analysis (DFA), especially when the time series is short. …”
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Optimizing Rotary Cement Kiln modelling: A comparative analysis of metaheuristics in a real-world application
Published 2025-03-01Subjects: Get full text
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CausNet-partial: 'Partial Generational Orderings' based search for optimal sparse Bayesian networks via dynamic programming with parent set constraints.
Published 2025-01-01“…In our recent work, we developed a novel dynamic programming algorithm to find optimal Bayesian networks with parent set constraints. This 'generational orderings' based dynamic programming algorithm-CausNet-efficiently searches the space of possible Bayesian networks. …”
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Constraints on power law and exponential models in f(Q) gravity
Published 2024-12-01Get full text
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Effects of Neural Assembles in Causal Inference Based on an Entropy-Maximization Bayesian Neural Network
Published 2024-01-01“…In this paper, a Bayesian spiking neural network is designed with the entropy-maximization (EM) method to simulate causal inference of visual hidden cues. …”
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Precision in Brief: The Bayesian Hurst–Kolmogorov Method for the Assessment of Long-Range Temporal Correlations in Short Behavioral Time Series
Published 2025-05-01“…However, the Bayesian foundation of the HK method fuels reservations about its performance when artifacts corrupt time series. …”
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Constrained Bayesian Optimization: A Review
Published 2025-01-01“…Bayesian optimization is a sequential optimization method that is particularly well suited for problems with limited computational budgets involving expensive and non-convex black-box functions. …”
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Determination of Maximum Bayesian Entropy Probability Distribution
Published 2005-12-01Get full text
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Cognitive biases as Bayesian probability weighting in context
Published 2025-08-01“…By integrating normative Bayesian principles with psychological insights, the ABC model recasts cognitive biases as adaptive strategies shaped by capacity constraints and meta-learning in specific contexts. …”
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Quantum Bayesian Inference with Renormalization for Gravitational Waves
Published 2025-01-01“…In this work, we introduce a hybrid quantum algorithm qBIRD , which performs quantum Bayesian inference with renormalization and downsampling to infer GW parameters. …”
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Quality prediction method for automotive body resistance spot welding based on digital twin technology
Published 2025-07-01“…However, traditional prediction methods are limited by the constraints of on-site data collection, which poses challenges to the accuracy of predictions. …”
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Distributed robust scheduling of distribution-microgrid based on deep learning method integration
Published 2025-06-01“…Aiming at the problems such as the uncertainty of distributed power output and the low efficiency of operation in the coupled system scheduling of distribution network and microgrid, an optimized scheduling model of Branch-bar operation with chance constraint based on the integration of deep learning method for distribution network and microgrid interconnection system is proposed. …”
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