The Mean Squared Error of an Estimator and the Bias Variance Tradeoff
We define the mean squared error of an estimator. We show that the mean squared error is the sum of the variance of the estimator and the squared bias of the...
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About this video
We define the mean squared error of an estimator. We show that the mean squared error is the sum of the variance of the estimator and the squared bias of the estimator. This proof shows that there is a tradeoff between bias and variance which cannot typically be avoided.
#mikethemathematician, #mikedabkowski, #profdabkowski
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4.4K
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78
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Duration
6:58
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Published
Feb 23, 2024
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hd
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#mathematical statistics #MSE #mean squared error #MSE bias and variance #MSE bias variance tradeoff #mike the mathematician #mike the mathematician statistics #Mean Squared Error in Statistics #Proof of Mean Squared Error #Proof of Mean Squared Error Bias and Variance #statistics #SRM #Exam SRM #SRM Course #mike dabkowski math
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