Recognizing textual entailment with statistical methods
MA Ríos Gaona, A Gelbukh… - Advances in Pattern …, 2010 - Springer
MA Ríos Gaona, A Gelbukh, S Bandyopadhyay
Advances in Pattern Recognition: Second Mexican Conference on Pattern …, 2010•SpringerIn this paper we propose a new cause-effect non-symmetric measure applied to the task of
Recognizing Textual Entailment. First we searched over a big corpus for sentences which
contains the discourse marker “because” and collected cause-effect pairs. The entailment
recognition is based on measure the cause-effect relation between the text and the
hypothesis using the relative frequencies of words from the cause-effect pairs. Our measure
outperformed the baseline method, over the three test sets of the PASCAL Recognizing …
Recognizing Textual Entailment. First we searched over a big corpus for sentences which
contains the discourse marker “because” and collected cause-effect pairs. The entailment
recognition is based on measure the cause-effect relation between the text and the
hypothesis using the relative frequencies of words from the cause-effect pairs. Our measure
outperformed the baseline method, over the three test sets of the PASCAL Recognizing …
Abstract
In this paper we propose a new cause-effect non-symmetric measure applied to the task of Recognizing Textual Entailment .First we searched over a big corpus for sentences which contains the discourse marker “because” and collected cause-effect pairs. The entailment recognition is based on measure the cause-effect relation between the text and the hypothesis using the relative frequencies of words from the cause-effect pairs. Our measure outperformed the baseline method, over the three test sets of the PASCAL Recognizing Textual Entailment Challenges (RTE). The measure shows to be good at discriminate over the “true” class. Therefore we develop a meta-classifier using a symmetric measure and a non-symmetric measure as base classifiers. So, our meta-classifier has a competitive performance.
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