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java.lang.Object | +--weka.classifiers.Classifier | +--weka.classifiers.trees.J48
Class for generating an unpruned or a pruned C4.5 decision tree. For more information, see
Ross Quinlan (1993). C4.5: Programs for Machine Learning, Morgan Kaufmann Publishers, San Mateo, CA.
Valid options are:
-U
Use unpruned tree.
-C confidence
Set confidence threshold for pruning. (Default: 0.25)
-M number
Set minimum number of instances per leaf. (Default: 2)
-R
Use reduced error pruning. No subtree raising is performed.
-N number
Set number of folds for reduced error pruning. One fold is
used as the pruning set. (Default: 3)
-B
Use binary splits for nominal attributes.
-S
Don't perform subtree raising.
-L
Do not clean up after the tree has been built.
-A
If set, Laplace smoothing is used for predicted probabilites.
-Q
The seed for reduced-error pruning.
Field Summary |
Fields inherited from interface weka.core.Drawable |
BayesNet, NOT_DRAWABLE, TREE |
Constructor Summary | |
J48()
|
Method Summary | |
java.lang.String |
binarySplitsTipText()
Returns the tip text for this property |
void |
buildClassifier(Instances instances)
Generates the classifier. |
double |
classifyInstance(Instance instance)
Classifies an instance. |
java.lang.String |
confidenceFactorTipText()
Returns the tip text for this property |
double[] |
distributionForInstance(Instance instance)
Returns class probabilities for an instance. |
java.util.Enumeration |
enumerateMeasures()
Returns an enumeration of the additional measure names |
boolean |
getBinarySplits()
Get the value of binarySplits. |
float |
getConfidenceFactor()
Get the value of CF. |
double |
getMeasure(java.lang.String additionalMeasureName)
Returns the value of the named measure |
int |
getMinNumObj()
Get the value of minNumObj. |
int |
getNumFolds()
Get the value of numFolds. |
java.lang.String[] |
getOptions()
Gets the current settings of the Classifier. |
boolean |
getReducedErrorPruning()
Get the value of reducedErrorPruning. |
boolean |
getSaveInstanceData()
Check whether instance data is to be saved. |
int |
getSeed()
Get the value of Seed. |
boolean |
getSubtreeRaising()
Get the value of subtreeRaising. |
boolean |
getUnpruned()
Get the value of unpruned. |
boolean |
getUseLaplace()
Get the value of useLaplace. |
java.lang.String |
globalInfo()
Returns a string describing classifier |
java.lang.String |
graph()
Returns graph describing the tree. |
int |
graphType()
Returns the type of graph this classifier represents. |
java.util.Enumeration |
listOptions()
Returns an enumeration describing the available options. |
static void |
main(java.lang.String[] argv)
Main method for testing this class |
double |
measureNumLeaves()
Returns the number of leaves |
double |
measureNumRules()
Returns the number of rules (same as number of leaves) |
double |
measureTreeSize()
Returns the size of the tree |
java.lang.String |
minNumObjTipText()
Returns the tip text for this property |
java.lang.String |
numFoldsTipText()
Returns the tip text for this property |
java.lang.String |
prefix()
Returns tree in prefix order. |
java.lang.String |
reducedErrorPruningTipText()
Returns the tip text for this property |
java.lang.String |
saveInstanceDataTipText()
Returns the tip text for this property |
java.lang.String |
seedTipText()
Returns the tip text for this property |
void |
setBinarySplits(boolean v)
Set the value of binarySplits. |
void |
setConfidenceFactor(float v)
Set the value of CF. |
void |
setMinNumObj(int v)
Set the value of minNumObj. |
void |
setNumFolds(int v)
Set the value of numFolds. |
void |
setOptions(java.lang.String[] options)
Parses a given list of options. |
void |
setReducedErrorPruning(boolean v)
Set the value of reducedErrorPruning. |
void |
setSaveInstanceData(boolean v)
Set whether instance data is to be saved. |
void |
setSeed(int newSeed)
Set the value of Seed. |
void |
setSubtreeRaising(boolean v)
Set the value of subtreeRaising. |
void |
setUnpruned(boolean v)
Set the value of unpruned. |
void |
setUseLaplace(boolean newuseLaplace)
Set the value of useLaplace. |
java.lang.String |
subtreeRaisingTipText()
Returns the tip text for this property |
java.lang.String |
toSource(java.lang.String className)
Returns tree as an if-then statement. |
java.lang.String |
toString()
Returns a description of the classifier. |
java.lang.String |
toSummaryString()
Returns a superconcise version of the model |
java.lang.String |
unprunedTipText()
Returns the tip text for this property |
java.lang.String |
useLaplaceTipText()
Returns the tip text for this property |
Methods inherited from class weka.classifiers.Classifier |
debugTipText, forName, getDebug, makeCopies, setDebug |
Methods inherited from class java.lang.Object |
equals, getClass, hashCode, notify, notifyAll, wait, wait, wait |
Constructor Detail |
public J48()
Method Detail |
public java.lang.String globalInfo()
public void buildClassifier(Instances instances) throws java.lang.Exception
buildClassifier
in class Classifier
instances
- set of instances serving as training data
java.lang.Exception
- if classifier can't be built successfullypublic double classifyInstance(Instance instance) throws java.lang.Exception
classifyInstance
in class Classifier
instance
- the instance to be classified
java.lang.Exception
- if instance can't be classified successfullypublic final double[] distributionForInstance(Instance instance) throws java.lang.Exception
distributionForInstance
in class Classifier
instance
- the instance to be classified
java.lang.Exception
- if distribution can't be computed successfullypublic int graphType()
graphType
in interface Drawable
public java.lang.String graph() throws java.lang.Exception
graph
in interface Drawable
java.lang.Exception
- if graph can't be computedpublic java.lang.String prefix() throws java.lang.Exception
prefix
in interface Matchable
java.lang.Exception
- if something goes wrongpublic java.lang.String toSource(java.lang.String className) throws java.lang.Exception
toSource
in interface Sourcable
className
- the name that should be given to the source class.
java.lang.Exception
- if something goes wrongpublic java.util.Enumeration listOptions()
-U
Use unpruned tree.
-C confidence
Set confidence threshold for pruning. (Default: 0.25)
-M number
Set minimum number of instances per leaf. (Default: 2)
-R
Use reduced error pruning. No subtree raising is performed.
-N number
Set number of folds for reduced error pruning. One fold is
used as the pruning set. (Default: 3)
-B
Use binary splits for nominal attributes.
-S
Don't perform subtree raising.
-L
Do not clean up after the tree has been built.
-A
If set, Laplace smoothing is used for predicted probabilites.
-Q
The seed for reduced-error pruning.
listOptions
in interface OptionHandler
listOptions
in class Classifier
public void setOptions(java.lang.String[] options) throws java.lang.Exception
setOptions
in interface OptionHandler
setOptions
in class Classifier
options
- the list of options as an array of strings
java.lang.Exception
- if an option is not supportedpublic java.lang.String[] getOptions()
getOptions
in interface OptionHandler
getOptions
in class Classifier
public java.lang.String seedTipText()
public int getSeed()
public void setSeed(int newSeed)
newSeed
- Value to assign to Seed.public java.lang.String useLaplaceTipText()
public boolean getUseLaplace()
public void setUseLaplace(boolean newuseLaplace)
newuseLaplace
- Value to assign to useLaplace.public java.lang.String toString()
toString
in class java.lang.Object
public java.lang.String toSummaryString()
toSummaryString
in interface Summarizable
public double measureTreeSize()
public double measureNumLeaves()
public double measureNumRules()
public java.util.Enumeration enumerateMeasures()
enumerateMeasures
in interface AdditionalMeasureProducer
public double getMeasure(java.lang.String additionalMeasureName)
getMeasure
in interface AdditionalMeasureProducer
additionalMeasureName
- the name of the measure to query for its value
java.lang.IllegalArgumentException
- if the named measure is not supportedpublic java.lang.String unprunedTipText()
public boolean getUnpruned()
public void setUnpruned(boolean v)
v
- Value to assign to unpruned.public java.lang.String confidenceFactorTipText()
public float getConfidenceFactor()
public void setConfidenceFactor(float v)
v
- Value to assign to CF.public java.lang.String minNumObjTipText()
public int getMinNumObj()
public void setMinNumObj(int v)
v
- Value to assign to minNumObj.public java.lang.String reducedErrorPruningTipText()
public boolean getReducedErrorPruning()
public void setReducedErrorPruning(boolean v)
v
- Value to assign to reducedErrorPruning.public java.lang.String numFoldsTipText()
public int getNumFolds()
public void setNumFolds(int v)
v
- Value to assign to numFolds.public java.lang.String binarySplitsTipText()
public boolean getBinarySplits()
public void setBinarySplits(boolean v)
v
- Value to assign to binarySplits.public java.lang.String subtreeRaisingTipText()
public boolean getSubtreeRaising()
public void setSubtreeRaising(boolean v)
v
- Value to assign to subtreeRaising.public java.lang.String saveInstanceDataTipText()
public boolean getSaveInstanceData()
public void setSaveInstanceData(boolean v)
v
- true if instance data is to be savedpublic static void main(java.lang.String[] argv)
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Copyright (c) 2003 David Lindsay, Computer Learning Research Centre, Dept. Computer Science, Royal Holloway, University of London