• 제목/요약/키워드: Opinion analysis

검색결과 1,249건 처리시간 0.023초

A Review of the Opinion Target Extraction using Sequence Labeling Algorithms based on Features Combinations

  • Aziz, Noor Azeera Abdul;MohdAizainiMaarof, MohdAizainiMaarof;Zainal, Anazida;HazimAlkawaz, Mohammed
    • 인터넷정보학회논문지
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    • 제17권5호
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    • pp.111-119
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    • 2016
  • In recent years, the opinion analysis is one of the key research fronts of any domain. Opinion target extraction is an essential process of opinion analysis. Target is usually referred to noun or noun phrase in an entity which is deliberated by the opinion holder. Extraction of opinion target facilitates the opinion analysis more precisely and in addition helps to identify the opinion polarity i.e. users can perceive opinion in detail of a target including all its features. One of the most commonly employed algorithms is a sequence labeling algorithm also called Conditional Random Fields. In present article, recent opinion target extraction approaches are reviewed based on sequence labeling algorithm and it features combinations by analyzing and comparing these approaches. The good selection of features combinations will in some way give a good or better accuracy result. Features combinations are an essential process that can be used to identify and remove unneeded, irrelevant and redundant attributes from data that do not contribute to the accuracy of a predictive model or may in fact decrease the accuracy of the model. Hence, in general this review eventually leads to the contribution for the opinion analysis approach and assist researcher for the opinion target extraction in particular.

오피니언 마이닝 기반 SNS 감성 정보 분석 전략 설계 (A Design of SNS Emotional Information Analysis Strategy based on Opinion Mining)

  • 정은희;이병관
    • 한국정보전자통신기술학회논문지
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    • 제8권6호
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    • pp.544-550
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    • 2015
  • 현재, SNS으로 소통되는 의견들이 증가하고 있기 때문에 SNS 메시지로부터 의미 있는 정보를 유추해내는 오피니언 마이닝(Opinion mining) 기술이 중요해지고 있다. 본 논문은 반의어와 부사의 위치에 따라 가중치를 다르게 설정하여 SNS의 감성 정보를 정확하게 추출하는 오피니언 마이닝 기반 SNS 감성 정보 분석 전략(SEIAS, SNS Emotional Information Analysis Strategy)을 제안한다. 제안하는 SEIAS(SNS Emotional Information Analysis Strategy)는 첫째, 오피니언 마이닝 분석에 필요한 감성사전을 구축하고, 둘째, SNS 데이터를 실시간으로 수집하고, 수집된 SNS 데이터와 감성사전를 비교하여 SNS 데이터의 의견값을 산출한다. 특히, 데이터의 의견값을 산출할 때, 반의어, 부사의 위치에 따라 가중값을 다르게 설정함으로써 기존의 SO-PMI와 비교하였을 때 오피니언 분석결과의 정확도를 향상시켰다.

의미 사전과 반전 의견 처리를 이용한 한국어 의견 분석 시스템 개발 (Development of Korean Opinion Analysis System using Semantic Dictionary and Inverse Opinion Processing)

  • 장재건;박진수;류승택
    • 한국산학기술학회논문지
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    • 제11권8호
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    • pp.3070-3075
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    • 2010
  • 웹 2.0 시대를 맞아 인터넷 상의 블로그 및 커뮤니티 공간에 일반 사용자들이 자신의 의견 및 생각을 표현하게 되었다. 상품 구매 시 다수의 사람들이 이러한 의견을 참조하는데, 사용자들은 소수의 의견만을 참조하고 전체적인 의견은 참조하지 못하고 있다. 의견 분석 시스템은 상품 및 서비스에 대한 인터넷 상의 글들을 분석하여 상품의 긍정, 부정을 평가하는 시스템으로 자연어 검색에서 발전한 검색이라 할 수 있다. 본 논문에서는 의견 분석 서비스에서 핵심이 되는 문장의 긍정, 부정을 파악하기 위하여 '긍정', '부정', '중립'의 극성 정보 외에 '반전'의 정보를 추가로 학습하고, 처리하는 구문 분석 및 반전 처리를 제안한다.

Opinion Shopping, Prior Opinion, Audit Quality, Financial Condition, and Going Concern Opinion

  • HARDI, Hardi;WIGUNA, Meilda;HARIYANI, Eka;PUTRA, Adhitya Agri
    • The Journal of Asian Finance, Economics and Business
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    • 제7권11호
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    • pp.169-176
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    • 2020
  • Business going concern is an important issue to be addressed since it determines how companies will survive. One indicator of the going concern problem is going concern opinion. The going concern opinion is a result of evaluation of auditors on going concern assumption of financial reporting. This research aims to examine the effect of opinion shopping, prior opinion, audit quality, and financial condition on going concern opinion. Research sample consists of 80 listed manufacturing companies on the Indonesian Stock Exchange surveyed between 2013 and 2017. Analysis data uses logistic regression. Based on the result, prior opinion affects going concern opinion, while opinion shopping, audit quality, and financial condition have no effect on going concern opinion. The significant effect of prior opinion on going concern opinion indicates that auditors consider the evaluation of the previous condition of companies' concern problematic since going concern is hard to be solved in a short-term period. This research provides recommendations for companies to increase their business ability so going concern problem can be avoided. This research also suggests to auditors to consider prior opinion to issue current opinion since previous companies' condition can be used as a general picture to initiate the auditing process.

온라인리뷰의 랭킹모델링을 위한 양과 질의 인과모형 분석 (Causal model analysis between quantity and quality for deriving ranking model of Online reviews)

  • 이창용;김근형
    • 한국정보시스템학회지:정보시스템연구
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    • 제28권1호
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    • pp.1-16
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    • 2019
  • Purpose The purpose of this study is to analyze causal relationship between quantity and quality for deriving ranking model of Online reviews. Thus, we propose implications for deriving the ranking model for retrieving Online reviews more effectively. Design/methodology/approach We collected Online review from Tripadvisor web sites which might be a kind of world-famous tourism web sites. We transformed the natural text reviews to quantified data which consists of quantified positive opinions, quantified negative opinions, quantified modification opinions, reviews lengths and grade scores by using opinion mining technologies in R package. We executed corelation and regression analysis about the data. Findings According to the empirical analysis result, this study confirmed that the review length influenced positive opinion, negative opinion and modification opinion. We also confirmed that negative opinion and modification opinion influenced the grade score.

로짓모형을 이용한 통신 서비스품질 평가방법 (Evaluation Method of Quality of Service in Telecommunications Using Logit Model)

  • 조재균;안혜숙
    • 산업공학
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    • 제15권2호
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    • pp.209-217
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    • 2002
  • Quality of Service(QoS) in the telecommunications can be evaluated by analyzing the opinion data which result from the surveyed opinions of respondents and quantify subjective satisfaction on the QoS from the customers' viewpoints. For analyzing the opinion data, MOS(mean opinion score) method and Cumulative Probability Curve method are often used. The methods are based on the scoring method, and therefore, have the intrinsic deficiency due to the assignment of arbitrary scores. In this paper, we propose an analysis method of the opinion data using logit models which can be used to analyze the ordinal categorical data without assigning arbitrary scores to customers' opinion, and develop an analysis procedure considering the usage of procedures provided by SAS(Statistical Analysis System) statistical package. By the proposed method, we can estimate the relationship between customer satisfaction and network performance parameters, and provide guidelines for network planning. In addition, the proposed method is compared with Cumulative Probability Curve method with respect to prediction errors.

오피니언 분류의 감성사전 활용효과에 대한 연구 (A Study on the Effect of Using Sentiment Lexicon in Opinion Classification)

  • 김승우;김남규
    • 지능정보연구
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    • 제20권1호
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    • pp.133-148
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    • 2014
  • 최근 다양한 정보채널들의 등장으로 인해 빅데이터에 대한 관심이 높아지고 있다. 이와 같은 현상의 가장 큰 원인은, 스마트기기의 사용이 활성화 됨에 따라 사용자가 생성하는 텍스트, 사진, 동영상과 같은 비정형 데이터의 양이 크게 증가하고 있는 것에서 찾을 수 있다. 특히 비정형 데이터 중에서도 텍스트 데이터의 경우, 사용자들의 의견 및 다양한 정보를 명확하게 표현하고 있다는 특징이 있다. 따라서 이러한 텍스트에 대한 분석을 통해 새로운 가치를 창출하고자 하는 시도가 활발히 이루어지고 있다. 텍스트 분석을 위해 필요한 기술은 대표적으로 텍스트 마이닝과 오피니언 마이닝이 있다. 텍스트 마이닝과 오피니언 마이닝은 모두 텍스트 데이터를 입력 데이터로 사용할 뿐 아니라 파싱, 필터링 등 자연어 처리기술을 사용한다는 측면에서 많은 공통점을 갖고 있다. 특히 문서의 분류 및 예측에 있어서 목적 변수가 긍정 또는 부정의 감성을 나타내는 경우에는, 전통적 텍스트 마이닝, 또는 감성사전 기반의 오피니언 마이닝의 두 가지 방법론에 의해 오피니언 분류를 수행할 수 있다. 따라서 텍스트 마이닝과 오피니언 마이닝의 특징을 구분하는 가장 명확한 기준은 입력 데이터의 형태, 분석의 목적, 분석의 결과물이 아닌 감성사전의 사용 여부라고 할 수 있다. 따라서 본 연구에서는 오피니언 분류라는 동일한 목적에 대해 텍스트 마이닝과 오피니언 마이닝을 각각 사용하여 예측 모델을 수립하는 과정을 비교하고, 결과로 도출된 모델의 예측 정확도를 비교하였다. 오피니언 분류 실험을 위해 영화 리뷰 2,000건에 대한 실험을 수행하였으며, 실험 결과 오피니언 마이닝을 통해 수립된 모델이 텍스트 마이닝 모델에 비해 전체 구간의 예측 정확도 평균이 높게 나타나고, 예측의 확실성이 강한 문서일수록 예측 정확성이 높게 나타나는 일관적인 성향을 나타내는 등 더욱 바람직한 특성을 보였다.

FEROM: Feature Extraction and Refinement for Opinion Mining

  • Jeong, Ha-Na;Shin, Dong-Wook;Choi, Joong-Min
    • ETRI Journal
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    • 제33권5호
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    • pp.720-730
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    • 2011
  • Opinion mining involves the analysis of customer opinions using product reviews and provides meaningful information including the polarity of the opinions. In opinion mining, feature extraction is important since the customers do not normally express their product opinions holistically but separately according to its individual features. However, previous research on feature-based opinion mining has not had good results due to drawbacks, such as selecting a feature considering only syntactical grammar information or treating features with similar meanings as different. To solve these problems, this paper proposes an enhanced feature extraction and refinement method called FEROM that effectively extracts correct features from review data by exploiting both grammatical properties and semantic characteristics of feature words and refines the features by recognizing and merging similar ones. A series of experiments performed on actual online review data demonstrated that FEROM is highly effective at extracting and refining features for analyzing customer review data and eventually contributes to accurate and functional opinion mining.

Analyzing Public Opinion with Social Media Data during Election Periods: A Selective Literature Review

  • Kwak, Jin-ah;Cho, Sung Kyum
    • Asian Journal for Public Opinion Research
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    • 제5권4호
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    • pp.285-301
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    • 2018
  • There have been many studies that applied a data-driven analysis method to social media data, and some have even argued that this method can replace traditional polls. However, some other studies show contradictory results. There seems to be no consensus as to the methodology of data collection and analysis. But as social media-based election research continues and the data collection and analysis methodology keep developing, we need to review the key points of the controversy and to identify ways to go forward. Although some previous studies have reviewed the strengths and weaknesses of the social media-based election studies, they focused on predictive performance and did not adequately address other studies that utilized social media to address other issues related with public opinion during elections, such as public agenda or information diffusion. This paper tries to find out what information we can get by utilizing social media data and what limitations social media data has. Also, we review the various attempts to overcome these limitations. Finally, we suggest how we can best utilize social media data in understanding public opinion during elections.

패션 의견선도자(意見先導者)의 특성(特性)에 관한 연구(硏究) - 인구통계적(人口統計的).심리적(心理的).패션 커뮤니케이션 경로(經路) 변인(變因)을 중심으로 - (A Study on Characteristics of Fashion Opinion Leaders)

  • 정혜영
    • 복식
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    • 제14권
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    • pp.185-198
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    • 1990
  • The purpose of this study is to identify and profile Korean women's fashion opinion leaders on demographic, psychological and communication channels dimensions. The questionnaire was administered to 1204 students from a purposively selected. women's universities in Seoul. The data was analyzed using $X^2$-test, t-test, multiple regression analysis and discriminant analysis, The significance level was set at. 05. The major findings derived from analysis are as follows: 1. Fashion opinion leaders are generally come from families with higher income, more education and higher occupational status than followers. 2. Fashion opinion leaders are more likely to be exhibitionistic, self-confident, individualistic, risk taking and gregarious than followers. 3. Fashion opinion leaders are more exposed to impersonal communication media, especially to fashion magazines than followers. These findings imply an obvious usefulness for both manufacturers in the apparel industry as well as retailers to help them in the identification of their target market for the introduction and acceptance of fashion items.

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