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Online Random Forest×جنگل تصادفی نیمه‌نظارت‌شده×
حوزهیادگیری ماشینیادگیری ماشین
خانوادهMachine learningMachine learning
سال پیدایش20092009
پدیدآورSaffari, A. et al.Leistner, C., Saffari, A., Santner, J., & Bischof, H.
نوعIncremental ensemble (streaming decision trees)Semi-supervised ensemble classifier
منبع بنیادینSaffari, A., Leistner, C., Santner, J., Godec, M., & Bischof, H. (2009). On-line random forests. In Proceedings of the 3rd IEEE International Workshop on On-Line Learning for Computer Vision (OLCV 2009), pp. 1–8. IEEE. link ↗Leistner, C., Saffari, A., Santner, J., & Bischof, H. (2009). Semi-supervised random forests. In Proceedings of the IEEE 12th International Conference on Computer Vision (ICCV), pp. 506–513. IEEE. DOI ↗
نام‌های دیگرORF, streaming random forest, incremental random forest, adaptive random forestSSL-RF, semi-supervised forest, label-propagation random forest, self-training random forest
مرتبط63
خلاصهOnline Random Forest (ORF) extends the classic Random Forest to streaming settings, updating each tree incrementally as new observations arrive without storing or replaying the full training set. Algorithms such as Adaptive Random Forests (ARF) add drift detection so the ensemble adapts when the data distribution changes over time.Semi-supervised Random Forest (SSL-RF) extends the classic Random Forest by exploiting both labeled and unlabeled training examples. When labeling data is expensive or time-consuming, SSL-RF assigns tentative pseudo-labels to unlabeled observations through the forest itself, then retrains on the enriched dataset, progressively improving accuracy without requiring additional human annotation.
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  1. v1
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  3. PUBLISHED

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ScholarGateمقایسهٔ روش‌ها: Online Random Forest · Semi-supervised Random Forest. بازیابی‌شده در 2026-06-17 از https://scholargate.app/fa/compare