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📄 averagelink.java

📁 mallet是自然语言处理、机器学习领域的一个开源项目。
💻 JAVA
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/* Copyright (C) 2002 Univ. of Massachusetts Amherst, Computer Science Dept.   This file is part of "MALLET" (MAchine Learning for LanguagE Toolkit).   http://www.cs.umass.edu/~mccallum/mallet   This software is provided under the terms of the Common Public License,   version 1.0, as published by http://www.opensource.org.  For further   information, see the file `LICENSE' included with this distribution. */package edu.umass.cs.mallet.projects.seg_plus_coref.condclust.pipe;import edu.umass.cs.mallet.projects.seg_plus_coref.condclust.types.*;import edu.umass.cs.mallet.projects.seg_plus_coref.coreference.*;import edu.umass.cs.mallet.base.types.*;import edu.umass.cs.mallet.base.classify.*;import edu.umass.cs.mallet.base.pipe.*;import java.util.*;/** Feature is similarity between node and closest node in cluster, as * determined by the classifier*/public class AverageLink extends Pipe{	Classifier classifier;		public AverageLink (Classifier _classifier)		{		this.classifier = _classifier;	}	public Instance pipe (Instance carrier) {		NodeClusterPair pair = (NodeClusterPair)carrier.getData();		Citation node = (Citation)pair.getNode();		Collection cluster = (Collection)pair.getCluster();		Iterator iter = cluster.iterator ();		double total = 0.0;				while (iter.hasNext()) {			Citation c = (Citation) iter.next();			NodePair np = new NodePair (c, node);			Instance inst = new Instance (np, "unknown", null, np, classifier.getInstancePipe());			Classification classification = classifier.classify (inst);			Labeling labeling = classification.getLabeling();			double val = 0.0;			if (labeling.labelAtLocation(0).toString().equals("no")) 				val =  labeling.valueAtLocation(1)-labeling.valueAtLocation(0);			else 				val =  labeling.valueAtLocation(0)-labeling.valueAtLocation(1);			total += val;		} 		double average = total / (double)cluster.size();		if (average > 0.9)			pair.setFeatureValue ("AverageNodeSimilarityHigh", 1.0);		else if (average > 0.75)			pair.setFeatureValue ("AverageNodeSimilarityMed", 1.0);		else if (average > 0.5)			pair.setFeatureValue ("AverageNodeSimilarityWeak", 1.0);		else if (average > 0.3)			pair.setFeatureValue ("AverageNodeSimilarityMin", 1.0);		else			pair.setFeatureValue ("AverageNodeSimilarityNone", 1.0);		//pair.setFeatureValue ("AverageNodeSimilarity", average);				 		return carrier;	}}

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