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Convolution Kernels for Opinion Holder Extraction

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by Michael Wieg , Dietrich Klakow
Citations:10 - 3 self
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BibTeX

@MISC{Wieg_convolutionkernels,
    author = {Michael Wieg and Dietrich Klakow},
    title = {Convolution Kernels for Opinion Holder Extraction},
    year = {}
}

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Abstract

Opinion holder extraction is one of the important subtasks in sentiment analysis. The effective detection of an opinion holder depends on the consideration of various cues on various levels of representation, though they are hard to formulate explicitly as features. In this work, we propose to use convolution kernels for that task which identify meaningful fragments of sequences or trees by themselves. We not only investigate how different levels of information can be effectively combined in different kernels but also examine how the scope of these kernels should be chosen. In general relation extraction, the two candidate entities thought to be involved in a relation are commonly chosen to be the boundaries of sequences and trees. The definition of boundaries in opinion holder extraction, however, is less straightforward since there might be several expressions beside the candidate opinion holder to be eligible for being a boundary. 1

Keyphrases

opinion holder extraction    convolution kernel    meaningful fragment    general relation extraction    effective detection    several expression    candidate opinion holder    important subtasks    different kernel    candidate entity    sentiment analysis    opinion holder    different level    various cue    various level   

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