2020
DOI: 10.1109/access.2020.3025823
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Aspect Based Sentiment Analysis of Ridesharing Platform Reviews for Kansei Engineering

Abstract: At present online reviews are becoming an important source for Kansei engineering of the services provided by ridesharing platforms. Kansei engineering deals with incorporating customer feedback and demands into product and service design. Thus, it is used as a tool for organizations to uplift their businesses by considering customer reviews and feedback. Customer reviews available on social media are in unstructured form; therefore, sentiment analysis is employed to extract customer's opinions in a systematic… Show more

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Cited by 31 publications
(8 citation statements)
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“…Research related to artificial intelligence in cognitive psychology is trending in recent years. In the mid-1980s, the term “Kansei Engineeirng” was introduced in the Japanese science and technology community ( Ali et al, 2020 ). They interpret sensibility as human psychological characteristics, study people’s perceptual needs with engineering methods, and then conduct in-depth research on people’s perceptual information, and the scope of their research is the human psychological perceptual activities.…”
Section: Research Statusmentioning
confidence: 99%
“…Research related to artificial intelligence in cognitive psychology is trending in recent years. In the mid-1980s, the term “Kansei Engineeirng” was introduced in the Japanese science and technology community ( Ali et al, 2020 ). They interpret sensibility as human psychological characteristics, study people’s perceptual needs with engineering methods, and then conduct in-depth research on people’s perceptual information, and the scope of their research is the human psychological perceptual activities.…”
Section: Research Statusmentioning
confidence: 99%
“…Previous studies proposed ways to use sentiment analysis to augment user-centric models and design techniques [16][17][18][19]. The extraction of customer opinions to support product design has also gained considerable attention from researchers [10,20,21].…”
Section: Problem Statementmentioning
confidence: 99%
“…(2) Machine learning approaches Machine learning models consist of traditional models and deep learning models. According to the collected articles that extract opinions for aspect-level SA, the most commonly used traditional machine learning models are PLSA (Ali et al, 2020), LDA (Zheng et al, 2014), HMM (Wang et al, 2017a), and CRF (Miao et al, 2021). LSTM (Yu et al, 2019), GRU (Wang et al, 2017b), and RecNN (Aydin and Gungor, 2020) 6, perhaps because of their simplicity and convenience.…”
Section: Opinion Extractionmentioning
confidence: 99%