文件名称:ExerciseSelf-Taught-Learning

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Soft-taught leaning是用的无监督学习来学习到特征提取的参数,然后用有监督学习来训练分类器.-Soft-taught leaning unsupervised learning is to learn the parameters of feature extraction, followed by supervised learning to train the classifier.
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ExerciseSelf-Taught Learning\checkNumericalGradient.m

............................\computeNumericalGradient.m

............................\display_network.m

............................\feedForwardAutoencoder.m

............................\initializeParameters.m

............................\loadMNISTImages.m

............................\loadMNISTLabels.m

............................\minFunc\ArmijoBacktrack.m

............................\.......\autoGrad.m

............................\.......\autoHess.m

............................\.......\autoHv.m

............................\.......\autoTensor.m

............................\.......\callOutput.m

............................\.......\conjGrad.m

............................\.......\dampedUpdate.m

............................\.......\example_minFunc.m

............................\.......\example_minFunc_LR.m

............................\.......\isLegal.m

............................\.......\lbfgs.m

............................\.......\lbfgsC.c

............................\.......\lbfgsC.mexa64

............................\.......\lbfgsC.mexglx

............................\.......\lbfgsC.mexmac

............................\.......\lbfgsC.mexmaci

............................\.......\lbfgsC.mexmaci64

............................\.......\lbfgsC.mexw32

............................\.......\lbfgsC.mexw64

............................\.......\lbfgsUpdate.m

............................\.......\.ogistic\LogisticDiagPrecond.m

............................\.......\........\LogisticHv.m

............................\.......\........\LogisticLoss.m

............................\.......\........\mexutil.c

............................\.......\........\mexutil.h

............................\.......\........\mylogsumexp.m

............................\.......\........\repmatC.c

............................\.......\........\repmatC.dll

............................\.......\........\repmatC.mexglx

............................\.......\........\repmatC.mexmac

............................\.......\mchol.m

............................\.......\mcholC.c

............................\.......\mcholC.mexmaci64

............................\.......\mcholC.mexw32

............................\.......\mcholC.mexw64

............................\.......\mcholinc.m

............................\.......\minFunc.m

............................\.......\minFunc_processInputOptions.m

............................\.......\polyinterp.m

............................\.......\precondDiag.m

............................\.......\precondTriu.m

............................\.......\precondTriuDiag.m

............................\.......\rosenbrock.m

............................\.......\taylorModel.m

............................\.......\WolfeLineSearch.m

............................\softmaxCost.m

............................\softmaxExercise.m

............................\softmaxPredict.m

............................\sparseAutoencoderCost.m

............................\stlExercise.m

............................\t10k-images.idx3-ubyte

............................\t10k-labels.idx1-ubyte

............................\train-images.idx3-ubyte

............................\train-labels.idx1-ubyte

............................\minFunc\logistic

............................\minFunc

ExerciseSelf-Taught Learning

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