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Nouns Speak: A Novel Approach for Noun Sentiment Scoring

机译:名词说话:名词情感评分的新方法

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Measuring human perception can be introduced as one of the most vital mechanisms in today's world. This is very important in the fields of social media, business decision making, education, military, biological appliances, making political decisions and more. Sentiment scoring is the key technical factor for measuring human perception under natural language processing. The parts of speech are the main factors behind sentiment scoring. Even though there are valid approaches to determine the sentiment score based on adjectives, verbs or adverbs, still there is a demand for a valid noun scoring methodology. Nouns can be introduced as the most neglected part of speech in sentiment scoring. Almost all the existing noun scoring approaches are based on adjective centric or adjective-adverb centric computational methodologies. This paper brings a novel and valid approach to determine the scoring value for nouns. New noun scoring axioms have been introduced based on the degrees of noun; subjective, objective, implicit and explicit. Then using these axioms, novel set of noun sentiment scoring modules have been implemented. These modules have been evaluated using movie corpus as the data domain and the experimental results show promising results.
机译:衡量人类感知度可以作为当今世界上最重要的机制之一。这在社交媒体,商业决策,教育,军事,生物设备,政治决策等领域中非常重要。情感评分是在自然语言处理下衡量人类感知的关键技术因素。言语部分是情感评分背后的主要因素。即使存在基于形容词,动词或副词确定情感分数的有效方法,仍然需要有效的名词评分方法。名词可以作为情感评分中语音中最被忽略的部分。几乎所有现有的名词评分方法都基于形容词中心或形容词副词中心计算方法。本文提出了一种新颖有效的方法来确定名词的计分值。根据名词的程度,引入了新的名词评分公理。主观的,客观的,内隐的和外在的。然后,使用这些公理,实现了一套新颖的名词情感评分模块。这些模块已使用电影语料库作为数据域进行了评估,实验结果显示了令人鼓舞的结果。

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