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t-SNE×গাউসিয়ান মিক্সচার মডেল×SHAP (SHapley Additive exPlanations)×
ক্ষেত্রযন্ত্র শিখনযন্ত্র শিখনযন্ত্র শিখন
পরিবারMachine learningMachine learningMachine learning
উদ্ভবের বছর200819772017
প্রবর্তকvan der Maaten, L. & Hinton, G.Dempster, Laird & Rubin (EM algorithm)Lundberg, S.M. & Lee, S.-I.
ধরনNonlinear dimensionality reduction (manifold visualization)Probabilistic (soft) clustering — mixture modelModel-explanation method (Shapley-value attribution)
মৌলিক উৎসvan der Maaten, L. & Hinton, G. (2008). Visualizing Data using t-SNE. Journal of Machine Learning Research, 9(86), 2579–2605. link ↗Dempster, A.P., Laird, N.M. & Rubin, D.B. (1977). Maximum Likelihood from Incomplete Data via the EM Algorithm. Journal of the Royal Statistical Society: Series B, 39(1), 1–22. DOI ↗Lundberg, S.M. & Lee, S.-I. (2017). A Unified Approach to Interpreting Model Predictions. Advances in Neural Information Processing Systems, 30, 4766–4777. link ↗
অপর নামt-SNE (Boyut İndirgeme / Görselleştirme), t-distributed stochastic neighbor embedding, tsneGaussian Karışım Modeli (GMM Kümeleme), GMM, GMM clustering, mixture of GaussiansSHAP Değerleri (Model Açıklanabilirlik), Shapley additive explanations, SHAP values, model explainability
সম্পর্কিত345
সারসংক্ষেপt-SNE (t-Distributed Stochastic Neighbor Embedding) is a nonlinear dimensionality-reduction method introduced by Laurens van der Maaten and Geoffrey Hinton in 2008 that maps high-dimensional data into a 2D or 3D space for visualization. It preserves probabilistic local similarities, so points that are neighbours in the original space stay close together, revealing cluster structure and local neighbourhoods.A Gaussian Mixture Model is a probabilistic clustering method that models the data as a weighted mixture of several Gaussian distributions, fitted with the Expectation–Maximization algorithm formalized by Dempster, Laird & Rubin in 1977. It is a generalization of K-means in which each cluster can take its own shape, size, and orientation.SHAP is a model-explanation method, introduced by Scott Lundberg and Su-In Lee in 2017, that uses Shapley values from cooperative game theory to measure how much each feature contributes to an individual prediction, making the output of black-box machine-learning models interpretable. It supports both global explanations (overall feature importance) and local explanations (why one specific prediction came out the way it did).
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ScholarGateপদ্ধতির তুলনা করুন: t-SNE · Gaussian Mixture Model · SHAP. 2026-06-19 তারিখে সংগৃহীত, উৎস: https://scholargate.app/bn/compare