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Lec-34 Hebbian-Based Principal Component Analysis
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Indian Institute of Technology Kharagpur
Neural Networks and Applications
Lec-34 Hebbian-Based Principal Component Analysis
Course Lectures
Lec-1 Introduction to Artificial Neural Networks
Prof. Somnath Sengupta
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Lec-2 Artificial Neuron Model and Linear Regression
Prof. Somnath Sengupta
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Lec-3 Gradient Descent Algorithm
Prof. Somnath Sengupta
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Lec-4 Nonlinear Activation Units and Learning Mechanisms
Prof. Somnath Sengupta
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Lec-5 Learning Mechanisms-Hebbian,Competitive,Boltzmann
Prof. Somnath Sengupta
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Lec-6 Associative memory
Prof. Somnath Sengupta
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Lec-7 Associative Memory Model
Prof. Somnath Sengupta
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Lec-8 Condition for Perfect Recall in Associative Memory
Prof. Somnath Sengupta
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Lec-9 Statistical Aspects of Learning
Prof. Somnath Sengupta
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Lec-10 V.C. Dimensions: Typical Examples
Prof. Somnath Sengupta
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Lec-11 Importance of V.C. Dimensions Structural Risk Minimization
Prof. Somnath Sengupta
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Lec-12 Single-Layer Perceptions
Prof. Somnath Sengupta
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Lec-13 Unconstrained Optimization: Gauss-Newtons Method
Prof. Somnath Sengupta
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Lec-14 Linear Least Squares Filters
Prof. Somnath Sengupta
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Lec-15 Least Mean Squares Algorithm
Prof. Somnath Sengupta
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Lec-16 Perceptron Convergence Theorem
Prof. Somnath Sengupta
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Lec-17 Bayes Classifier&Perceptron: An Analogy
Prof. Somnath Sengupta
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Lec-18 Bayes Classifier for Gaussian Distribution
Prof. Somnath Sengupta
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Lec-19 Back Propagation Algorithm
Prof. Somnath Sengupta
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Lec-20 Practical Consideration in Back Propagation Algorithm
Prof. Somnath Sengupta
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Lec-21 Solution of Non-Linearly Separable Problems Using MLP
Prof. Somnath Sengupta
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Lec-22 Heuristics For Back-Propagation
Prof. Somnath Sengupta
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Lec-23 Multi-Class Classification Using Multi-layered Perceptrons
Prof. Somnath Sengupta
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Lec-24 Radial Basis Function Networks: Cover's Theorem
Prof. Somnath Sengupta
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Lec-25 Radial Basis Function Networks: Separability&Interpolation
Prof. Somnath Sengupta
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Lec-26 Radial Basis Function as ill-Posed Surface Reconstruc
Prof. Somnath Sengupta
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Lec-27 Solution of Regularization Equation: Greens Function
Prof. Somnath Sengupta
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Lec-28 Use of Greens Function in Regularization Networks
Prof. Somnath Sengupta
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Lec-29 Regularization Networks and Generalized RBF
Prof. Somnath Sengupta
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Lec-30 Comparison Between MLP and RBF
Prof. Somnath Sengupta
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Lec-31 Learning Mechanisms in RBF
Prof. Somnath Sengupta
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Lec-32 Introduction to Principal Components and Analysis
Prof. Somnath Sengupta
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Lec-33 Dimensionality reduction Using PCA
Prof. Somnath Sengupta
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Lec-34 Hebbian-Based Principal Component Analysis
Prof. Somnath Sengupta
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Lec-35 Introduction to Self Organizing Maps
Prof. Somnath Sengupta
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Lec-36 Cooperative and Adaptive Processes in SOM
Prof. Somnath Sengupta
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Lec-37 Vector-Quantization Using SOM
Prof. Somnath Sengupta
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