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A System for Sentiment Analysis of Colloquial Arabic Using Human Computation

Domaine:

natural language processing

Type de record:

paper
Créateur:
AfnHen
Éditeur:
WILEY
Hôte:
We present the implementation and evaluation of a sentiment analysis system that is conducted over Arabic text with evaluative content. Our system is broken into two different components. The first component is a game that enables users to annotate large corpuses of text in a fun manner. The game produces necessary linguistic resources that will be used by the second component which is the sentimental analyzer. Two different algorithms have been designed to employ these linguistic resources to analyze text and classify it according to its sentimental polarity. The first approach is using sentimental tag patterns, which reached a precision level of 56.14%. The second approach is the sentimental majority approach which relies on calculating the number of negative and positive phrases in the sentence and classifying the sentence according to the dominant polarity. The results after evaluating the system for the first sentimental majority approach yielded the highest accuracy level reached by our system which is 60.5% while the second variation scored an accuracy of 60.32%.

Visit

doi.org

Tasks

sentiment analysistext classification

Languages

Arabic, Moroccan Spoken

Licenses

http://creativecommons.org/licenses/by/3.0/