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

机译:Singlish SenticNet:基于概念的新加坡英语情感资源

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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:由于新加坡其他语言的广泛影响,新加坡语(或新加坡口语英语)与标准英语明显不同。因此,需要构建特定于Singlish的资源和工具,以提高Singlish中在线文本的情感分析性能。本文利用情感计算技术来开发Singlish SenticNet,这是一种用于情感分析的概念级资源,可提供与10,000个单词和Singlish中的多单词表达相关的语义和情感。它是通过对从不同来源收集的情感常识应用图挖掘和多维缩放技术来半自动构造的。在三个级别(语义网络,矩阵和向量空间)上冗余地表示知识,每个级别都可用于某种推理。初步评估显示,Singlish SenticNet的准确性比SenticNet在Singlish推文的极性评估中要高。

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