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A Comparison of Alternative Parse Tree Paths for Labeling Semantic Roles
A Comparison of Alternative Parse Tree Paths
for Labeling Semantic Roles
Reid Swanson and Andrew S. Gordon
Institute for Creative Technologies
University of Southern California
13274 Fiji Way, Marina del Rey, CA 90292 USA
swansonr@ict.usc.edu, gordon@ict.usc.edu
Abstract
The integration of sophisticated infer-
ence-based techniques into natural lan-
guage processing applications first re-
quires a reliable method of encoding the
predicate-argument structure of the pro-
positional content of text. Recent statisti-
cal approaches to automated predicate-
argument annotation have utilized parse
tree paths as predictive features, which
encode the path between a verb predicate
and a node in the parse tree that governs
its argument. In this paper, we explore a
number of alternatives for how these
parse tree paths are encoded, focusing on
the difference between automatically
generated constituency parses and de-
pendency parses. After describing five al-
ternatives for encoding parse tree paths,
we investigate how well each can be
aligned with the argument substrings in
annotated text corpora, their relative pre-
cision and recall performance, and their
comparative learning curves. Results in-
dicate that constituency parsers produce
parse tree paths that can more easily be
aligned to argument substrings, perform
better in precision and recall, and have
more favorable learning curves than
those produced by a dependency parser.
1 Introduction
A persistent goal of natural language processing
research has been the automated transformation
of natural language texts into representations that
unambiguously encode their propositional
content in formal notation. Increasingly, first-
order predicate calculus representations of
textual meaning have been used in natural
lanugage processing applications that involve
automated inference. For example, Moldovan et
al. (2003) demonstrate how predicate-argument
formulations of questions and cand
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