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<?xml version="1.0" standalone="yes"?>
<Paper uid="P06-2097">
  <Title>Visual Information Based on Hidden Markov Models</Title>
  <Section position="2" start_page="0" end_page="0" type="abstr">
    <SectionTitle>
Abstract
</SectionTitle>
    <Paragraph position="0"> This paper presents an unsupervised topic identification method integrating linguistic and visual information based on Hidden Markov Models (HMMs). We employ HMMs for topic identification, wherein a state corresponds to a topic and various features including linguistic, visual and audio information are observed. Our experiments on two kinds of cooking TV programs show the effectiveness of our proposed method.</Paragraph>
  </Section>
class="xml-element"></Paper>
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