Topic segmentation with an aspect hidden Markov model(13)

时间:2025-04-27

We present a novel probabilistic method for partially unsupervised topic segmentation on unstructured text. Previous approaches to this problem utilize the hidden Markov model framework (HMM). The HMM treats a document as mutually independent sets of words

10

P(missed)

RandomNYT

0.263

ActualATC5EXPERIMENTALRESULTSP(disagree)0.0800.1430.063

Figure6:CoAPresultsontheATCandNYTcorpora.Inthecaseofrandomlygen-eratedtranscripts,thereportedresultsarethemeanovertensetsofrandomtranscriptstakenfromthesamesetoftestingsegments.

5.3QuantitativeResults

Weusetheco-occurrenceagreementprobability(CoAP)introducedin[1]toquantita-tivelyevaluateoursegmenter.TheCoAPisde nedas

agreement

Thefunctionisaprobabilitydistributionoverthedistancesbetweenwordsinadocument;thefunctionsareifthetwowordsfallinthesamesegmentandotherwise;andfunctionindicatesagreementbetweentheoperands.Inourcase,ifthewordsarewordsapartandotherwise.Withthischoiceof,theCoAPisameasureofhowoftenasegmentationiscorrectwithrespecttotwowordsthatarewordsapartinthedocument.Following[1],wechoosetobehalftheaveragelengthofasegmentinthetrainingcorpus,170intheATCcorpus,and200intheNYTcorpus.

AusefulinterpretationoftheCoAPisthroughitscompliment[1]

disagreementmissedsegsegfalse

wheresegistheaprioriprobabilityofasegment,missedistheprobabilityofmissingasegment,andfalseistheprobabilityofhypothesizingasegmentwherethereisnosegment.

Figure6showstheerroranditsdecompositionforthreeexperiments:theNYTcorpuswithrandomlygeneratedsequencesofarticles;theATCcorpuswithrandomlygeneratedsequencesofsegments;andtheATCcorpuswiththetrueorderingofseg-mentsastheywereaired.Itisinterestingtonotethatoursystemtendstounderseg-mentasindicatedbythehighmissed.Furthermore,intheactualATCorderingsmissedisevenhigherduetothephenomenonofmultiplesegmentswithsimilartopics(seesection5.2).

Figure7isacomparisonbetweentheAHMMandHMMoverwindowwidthsfrom2to200.AHMMsegmentationoutperformsHMMsegmentationforsmallwin-dowwidths.However,asweincreasethewindowsize,theperformanceoftheas-pectmodeldecreases.Thisisduetotwofacts.First,theprecisionofthesegmenterdecreases,causingaslightdecreaseinscore.Moreimportantlyhowever,thisbehav-ioroccursbecauseweareusinganapproximationof.Intheapproximation

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