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签到天数: 757 天 [LV.10]以坛为家III
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资源详情
-------------------课程目录-------------------(U)A'Y4b5G8Q
2A0M3I5{#B$F(U$Z
01_handout.pdf7q&A7g9I6u-]5Y(}
02_handout.pdf6H5{.k5? C:Y![-u)@:_
03_handout.pdf
04_handout.pdf,A+j.} P.o+d2|
05_handout.pdf
06_handout.pdf
07_handout.pdf
08_handout.pdf4l%U$a"~!u)R5W4P;s*T"i
09_handout.pdf/M5B&O0m6B!N.N
1-1-CourseIntroduction(10-58).mp4
1-2-WhatisMachineLearning(18-28).mp4&J!d7K"E+J.k7B
1-3-ApplicationsofMachineLearning(18-56).mp4
1-4-ComponentsofMachineLearning(11-45).mp4
1-5-MachineLearningandOtherFields(10-21).mp40o$l:s9D:B3n
10-1-LogisticRegressionProblem(14-33).mp4
10-2-LogisticRegressionError(15-58).mp4
10-3-GradientofLogisticRegressionError(15-38).mp4
10-4-GradientDescent(19-18).mp44u*J"P*Q$j'`
10_handout.pdf8i&V.f:s(b0z#Q6U
11-1-LinearModelsforBinaryClassification(21-35).mp4
11-2-StochasticGradientDescent(11-39).mp4
11-3-MulticlassviaLogisticRegression(14-18).mp4:\9X1v!h5q4]5t6c8J,v
11-4-MulticlassviaBinaryClassification(11-35).mp4
11_handout.pdf0L*x5E-i,_%V1Q
12-1-QuadraticHypothesis(23-47).mp4+u B,X8Y-C4?9j7n$v)Q-j9B
12-2-NonlinearTransform(09-52).mp4
12-3-PriceofNonlinearTransform(15-37).mp4
12-4-StructuredHypothesisSets(09-36).mp4
12_handout.pdf
2-1-PerceptronHypothesisSet(15-42).mp4
2-2-PerceptronLearningAlgorithm(PLA)(19-46).mp4
2-3-GuaranteeofPLA(12-37).mp41a)Y*|/G5m&m
2-4-Non-SeparableData(12-55).mp4/f)} y/{&c6n2j!m
3-1-LearningwithDifferentOutputSpace(17-26).mp4$Y4?;q,{!t"T4B+U
3-2-LearningwithDifferentDataLabel(18-12).mp4:m6c2r!o;Y/G6B
3-3-LearningwithDifferentProtocol(11-09).mp4
3-4-LearningwithDifferentInputSpace(14-13).mp4
4-1-LearningisImpossible-(13-32).mp4$b8y#b"E;k3m
4-2-ProbabilitytotheRescue(11-33).mp4
4-3-ConnectiontoLearning(16-46).mp45j.v.R4R7U%@6?
4-4-ConnectiontoRealLearning(18-06).mp4&I"`(m4s*F9P
5-1-RecapandPreview(13-44).mp4$t/}!m7y6M%o
5-2-EffectiveNumberofLines(15-26).mp4
5-3-EffectiveNumberofHypotheses(16-17).mp4
5-4-BreakPoint(07-44).mp4
6-1-RestrictionofBreakPoint(14-18).mp4
6-2-BoundingFunction-BasicCases(06-56).mp4
6-3-BoundingFunction-InductiveCases(14-47).mp4
6-4-APictorialProof(16-01).mp4-F;g8m5i+S2D:H
7-1-DefinitionofVCDimension(13-10).mp4
7-2-VCDimensionofPerceptrons(13-27).mp4
7-3-PhysicalIntuitionofVCDimension(6-11).mp4 M5R+E2B4x8V"B5E9]
7-4-InterpretingVCDimension(17-13).mp4*e.a%x+l#y*R/w7h&P-V
8-1-NoiseandProbabilisticTarget(17-01).mp4
8-2-ErrorMeasure(15-10).mp4$F:| |'@!O,u9g:E7d1f
8-3-AlgorithmicErrorMeasure(13-46).mp4-e#E"Y5[5Z&p+w8T
8-4-WeightedClassification(16-54).mp40f0r*~3O,r.]%J%~7`-|
9-1-LinearRegressionProblem(10-08).mp4
9-2-LinearRegressionAlgorithm(20-03).mp4
9-3-GeneralizationIssue(20-34).mp4+c)V9V.A!A.f'N
9-4-LinearRegressionforBinaryClassification(11-23).mp4
HomeWork1.doc
homework2.docx
homework3.docx
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