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OpenCV 2.4.6 | |||||||
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java.lang.Object org.opencv.ml.CvANN_MLP_TrainParams
public class CvANN_MLP_TrainParams
Parameters of the MLP training algorithm. You can initialize the structure by a constructor or the individual parameters can be adjusted after the structure is created.
The back-propagation algorithm parameters:
Strength of the weight gradient term. The recommended value is about 0.1.
Strength of the momentum term (the difference between weights on the 2
previous iterations). This parameter provides some inertia to smooth the
random fluctuations of the weights. It can vary from 0 (the feature is
disabled) to 1 and beyond. The value 0.1 or so is good enough
// C++ code:
The RPROP algorithm parameters (see [RPROP93] for details):
Initial value Delta_0 of update-values Delta_(ij).
Increase factor eta^+. It must be >1.
Decrease factor eta^-. It must be <1.
Update-values lower limit Delta_(min). It must be positive.
Update-values upper limit Delta_(max). It must be >1.
Field Summary | |
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static int |
BACKPROP
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static int |
RPROP
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Constructor Summary | |
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CvANN_MLP_TrainParams()
The constructors. |
Method Summary | |
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double |
get_bp_dw_scale()
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double |
get_bp_moment_scale()
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double |
get_rp_dw_max()
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double |
get_rp_dw_min()
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double |
get_rp_dw_minus()
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double |
get_rp_dw_plus()
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double |
get_rp_dw0()
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TermCriteria |
get_term_crit()
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int |
get_train_method()
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void |
set_bp_dw_scale(double bp_dw_scale)
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void |
set_bp_moment_scale(double bp_moment_scale)
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void |
set_rp_dw_max(double rp_dw_max)
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void |
set_rp_dw_min(double rp_dw_min)
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void |
set_rp_dw_minus(double rp_dw_minus)
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void |
set_rp_dw_plus(double rp_dw_plus)
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void |
set_rp_dw0(double rp_dw0)
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void |
set_term_crit(TermCriteria term_crit)
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void |
set_train_method(int train_method)
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Methods inherited from class java.lang.Object |
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equals, getClass, hashCode, notify, notifyAll, toString, wait, wait, wait |
Field Detail |
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public static final int BACKPROP
public static final int RPROP
Constructor Detail |
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public CvANN_MLP_TrainParams()
The constructors.
By default the RPROP algorithm is used:
// C++ code:
CvANN_MLP_TrainParams.CvANN_MLP_TrainParams()
term_crit = cvTermCriteria(CV_TERMCRIT_ITER + CV_TERMCRIT_EPS, 1000, 0.01);
train_method = RPROP;
bp_dw_scale = bp_moment_scale = 0.1;
rp_dw0 = 0.1; rp_dw_plus = 1.2; rp_dw_minus = 0.5;
rp_dw_min = FLT_EPSILON; rp_dw_max = 50.;
Method Detail |
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public double get_bp_dw_scale()
public double get_bp_moment_scale()
public double get_rp_dw_max()
public double get_rp_dw_min()
public double get_rp_dw_minus()
public double get_rp_dw_plus()
public double get_rp_dw0()
public TermCriteria get_term_crit()
public int get_train_method()
public void set_bp_dw_scale(double bp_dw_scale)
public void set_bp_moment_scale(double bp_moment_scale)
public void set_rp_dw_max(double rp_dw_max)
public void set_rp_dw_min(double rp_dw_min)
public void set_rp_dw_minus(double rp_dw_minus)
public void set_rp_dw_plus(double rp_dw_plus)
public void set_rp_dw0(double rp_dw0)
public void set_term_crit(TermCriteria term_crit)
public void set_train_method(int train_method)
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