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آلة المتجهات الداعمة أحادية الفئة البيزية×عملية غاوسية بايزية×
المجالتعلم الآلةتعلم الآلة
العائلةMachine learningMachine learning
سنة النشأة2001–20101978–2006
صاحب الطريقةScholkopf et al. (base OCSVM); Bayesian extension via Tipping and othersO'Hagan, A.; Neal, R. M.; Rasmussen, C. E. & Williams, C. K. I.
النوعProbabilistic anomaly detectionProbabilistic kernel model
المصدر التأسيسيScholkopf, B., Platt, J. C., Shawe-Taylor, J., Smola, A. J., & Williamson, R. C. (2001). Estimating the support of a high-dimensional distribution. Neural Computation, 13(7), 1443–1471. DOI ↗Rasmussen, C. E., & Williams, C. K. I. (2006). Gaussian Processes for Machine Learning. MIT Press. ISBN: 978-0-262-18253-9
الأسماء البديلةBayesian OCSVM, Bayesian one-class classifier, probabilistic one-class SVM, Bayes-OCSVMGP regression, GPR, Gaussian process model, GP classifier
ذات صلة63
الملخصBayesian one-class SVM combines the classical one-class support vector machine — which learns a tight boundary around normal training examples — with Bayesian inference to produce calibrated probability estimates of anomaly, rather than only a binary flag. This allows uncertainty quantification over the novelty decision, making the approach more suitable when downstream actions depend on how confident the model is that a new observation is anomalous.A Bayesian Gaussian Process (GP) places a probability distribution directly over functions, using a kernel to encode similarity between inputs. After observing data, Bayes' rule converts this prior into a posterior that yields not just point predictions but calibrated uncertainty estimates at every new input — making it one of the most principled probabilistic models in machine learning.
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  3. PUBLISHED

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ScholarGateقارن الطرق: Bayesian one-class SVM · Bayesian Gaussian Process. استُرجع بتاريخ 2026-06-15 من https://scholargate.app/ar/compare