Open Access
Identifying Sources of Opinions with Conditional Random Fields and
Yejin Choi,Claire Cardie,Ellen Riloff,Siddharth Patwardhan +3 more
- 01 Jan 2005
11
TL;DR: The authors adopted a hybrid approach that combines Conditional Random Fields (CRF) and a variation of AutoSlog (Riloff, 1996a) to identify sources of opinions, emotions, and sentiments.
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Abstract: Recent systems have been developed for sentiment classification, opinion recognition, and opinion analysis (e.g., detecting polarity and strength). We pursue another aspect of opinion analysis: identifying the sources of opinions, emotions, and sentiments. We view this problem as an information extraction task and adopt a hybrid approach that combines Conditional Random Fields (Lafferty et al., 2001) and a variation of AutoSlog (Riloff, 1996a). While CRFs model source identification as a sequence tagging task, AutoSlog learns extraction patterns. Our results show that the combination of these two methods performs better than either one alone. The resulting system identifies opinion sources with 79.3% precision and 59.5% recall using a head noun matching measure, and 81.2% precision and 60.6% recall using an overlap measure.
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Citations
Climate Finance and Green Bond Evolution: Informing Policy with Machine Learning Text Analytics
Amber Jaycocks
- 04 Aug 2020
TL;DR: In this article, the evolution of themes associated with climate finance and green bonds is explored to identify opportunities to enhance public-private cooperation and facilitate policymaking, and the authors explore the potential for green bonds to be used in green finance.
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•Dissertation
Acquisition de relations entre entités nommées à partir de corpus
Mani Ezzat
- 06 May 2014
TL;DR: Not contribution s’articule autour de deux grands axes : tracer un contour plus precis autour oficial de the definition of the relation entre entites nommees, and explorer des techniques pour l’elaboration de systemes d’extraction automatique qui sollicitent des linguistes.
7
•Proceedings Article
Opinion context extraction for aspect sentiment analysis.
Anil Bandhakavi,Nirmalie Wiratunga,Stewart Massie,Rushi. Luhar +3 more
- 15 Jun 2018
TL;DR: This paper focuses on aspect-level sentiment classification, studying the role of opinion context extraction for a given aspect and the extent to which traditional and neural sentiment classifiers benefit when trained using the opinion context text, and proposes four methods to aspect context extraction.
6
•Dissertation
Extraction d'information dans des documents manuscrits non contraints : application au traitement automatique des courriers entrants manuscrits
Simon Thomas
- 12 Jul 2012
TL;DR: Il en resulte un systeme complet, generique et industrialisable, repondant a des besoins emergents dans le domaine of the lecture automatique de documents manuscrits : l'extraction d'informations complexes dans des documents non-contraints.
6
•Dissertation
Détection de dérivation de texte
Fabien Poulard
- 24 Mar 2011
TL;DR: In this paper, the authors define a cadre theoretique posant les concepts de la derivation ainsi qu'un modele mulitidimensionnel cadrant les different forms of derivation.
5
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Aspect-Oriented Sentiment Analysis of Customer Reviews Using Distant Supervision Techniques
Jürgen Broß
- 01 Jan 2013
TL;DR: This thesis provides a comprehensive study of how to model and automatically analyze the opinion-rich information contained in customer reviews and examines the utility of distant supervision techniques to reduce the amount of required human supervision.
Public Opinion Mining for Governmental Decisions
George K Stylios,Dimitris Christodoulakis,Jeries Besharat,Ioanis Kotrotsos,Sofia Stamou +4 more
- 01 Jan 2010
TL;DR: A method for decomposing citizens" opinions and com- ments that are posted in online fora and blogs is introduced, in order to evaluate how governmental decisions are perceived by the public and thereafter how the public"s implicit feedback should be interpreted by governmental bodies in their subsequent actions.
Adaptive feedback selection for intelligent tutoring systems
Fernando Gutiérrez,John Atkinson +1 more
TL;DR: The approach suggested that combining SVM and CRF models are promising to get effective feedback correction from student tutoring, showing that the multi-strategy selection approach outperformed the traditional meta-linguistic rules based feedback strategies.
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