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Amnesic Neural Network for Classification: Application on Stock Trend Prediction*  Author: Qiang Ye, Bing Liang, Yijun Li 				          Publication: ICSSSM 2005  				          Presenter:  Yu-Hsiang Huang 2011.9.23 1
Introduction & Literature review Methodology BP Neural Network Model  Amnesic Neural Network Model  Training Algorithm Experiment Data  Classification algorithm  Experiment Result Outline 2
Artificial Neural Network models (ANN) ,[object Object]
The ANN learns from experience
Critical step: network trainingTwo classes of predict stock market method ,[object Object],Macroeconomic data and basic financial status of company ,[object Object],History will repeat itself The correlation between price and volume reveals market behavior Prediction ,[object Object]
By analyzing patterns and trends shown in price and volume chartIntroduction & Literature review 3
Stock price prediction ,[object Object]
In real world: customer behavior change greatly
Training data set may be time-variant
Difficult to predict customer behavior from old dataTwo strategies ,[object Object]
Select only the latest data: lose useful information hidden in data of early 			            timeData selectionin stock markets prediction will influence the training result Introduction & Literature review 4
Amnesic Neural network (ANN*) model ,[object Object],Back Propagation (BP) neural network ,[object Object]
Effectiveness data depends on time
Present data is more useful than old data
Old data has less effect on training result, like gradually forgetting5 Introduction (cont.)
Introduction & Literature review Methodology BP Neural Network Model  Amnesic Neural Network Model  Training Algorithm  Experiment Data  Classification algorithm Experiment Result 6
Artificial Neural Network ,[object Object]
Capable of performing massively parallel computations for data processing and knowledge representation
The feed-forward-error-back-propagation learning algorithm is the most famous procedure for training ANNBack Propagation Neural Network ,[object Object]
Each iteration:
Forwardactivation to produce a solution
Backwardpropagation of computed error to modify the weight7 Methodology
Introduction & Literature review Methodology BP Neural Network Model  Amnesic Neural Network Model  Training Algorithm  Experiment Data  Classification algorithm Experiment Result 8
9 Methodology (cont.)  BP network Model ,[object Object]
Output:
Weight:      connects the node j in previous layer to the node k
Activation function:
Error signal:
I(n) is a set of input

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Amnestic neural network for classification