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Singlish SenticNet: A Concept-Based Sentiment Resource for Singapore English

机译:Singlish Senticnet:新加坡英语的基于概念情感资源

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Singlish (or Singapore Colloquial English) is markedly distinct from Standard English due to extensive influence from other languages in Singapore. There is thus a need to construct Singlish-specific resources and tools to improve the sentiment analysis performance of online texts in Singlish. This paper leverages sentic computing techniques to develop Singlish SenticNet, a concept-level resource for sentiment analysis that provides the semantics and sentics associated with 10,000 words and multi-word expressions in Singlish. It is semi-automatically constructed by applying graph-mining and multi-dimensional scaling techniques on the affective commonsense knowledge collected from different sources. The knowledge is represented redundantly at three levels (semantic network, matrix, and vector space), each useful for a certain reasoning. A preliminary evaluation revealed a higher accuracy for Singlish SenticNet than SenticNet in the polarity assessment of Singlish tweets.
机译:由于新加坡的其他语言的广泛影响,单身英语(或新加坡口语英语)显着与标准英语不同。因此,需要构建单个特定的资源和工具,以改善单个英语文本的情感分析性能。本文利用了Sentic Computing技术来开发Singlish Senticnet,这是一种情感分析的概念级资源,提供了与单词的10,000个单词和多字的表达式相关联的语义和遗嘱。通过对不同来源收集的情感致辞知识应用图形挖掘和多维缩放技术,是半自动构建的。知识在三个级别(语义网络,矩阵和矢量空间)中冗余地表示,每个都可以用于某个推理。初步评估揭示了Singlish SendIcnet的更高准确性,而不是Senticnet对Singlish Tweets的极性评估。

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