• 제목/요약/키워드: User Reviews

검색결과 331건 처리시간 0.021초

User Review Prioritization Analysis using Metadata

  • Neung-Hoe Kim
    • International journal of advanced smart convergence
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    • 제13권2호
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    • pp.44-47
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    • 2024
  • With the advancement of Internet technology, online sales and purchases of products have become active. Along with this, the importance of user reviews is also being highlighted. Although user reviews are actively utilized for product sales and purchases, it is difficult to quickly and easily obtain useful information due to the abundance of user reviews. Therefore, prioritizing user reviews is a necessary service for customers that requires careful consideration. Metadata, which contains important information, can be effectively used to prioritize user reviews. However, it is crucial to select and use metadata appropriately according to the purpose. Lean Startup proposes a strategy of repeatedly correcting the problems of ideas or making early transitions to continue trying different approaches. In this paper, we propose a three-step method applying the Lean Startup process to analyze ways to prioritize user reviews using metadata: Build Priority, Measure Priority, Learn Priority.

Cost-Benefit based User Review Selection Method

  • Neung-Hoe Kim;Man-Soo Hwang
    • International journal of advanced smart convergence
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    • 제12권4호
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    • pp.177-181
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    • 2023
  • User reviews posted in the application market show high relevance with the satisfaction of application users and its significance has been proven from numerous studies. User reviews are also crucial data as they are essential for improving applications after its release. However, as infinite amounts of user reviews are posted per day, application developers are unable to examine every user review and address them. Simply addressing the reviews in a chronological order will not be enough for an adequate user satisfaction given the limited resources of the developers. As such, the following research suggests a systematical method of analyzing user reviews with a cost-benefit analysis, in which the benefit of each user review is quantified based on the number of positive/negative words and the cost of each user review is quantified by using function point, a technique that measures software size.

차세대 도서관 목록의 이용자 서평에 관한 고찰 (A Study on the User-contributed Reviews for the Next Generation Library Catalogs)

  • 윤정옥
    • 한국문헌정보학회지
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    • 제46권2호
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    • pp.115-132
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    • 2012
  • 이 연구의 목적은 차세대 도서관 목록에서 이용자 서평 기능의 이용 현황 및 서지레코드에서 연결될 수 있는 외부 정보원의 이용자 서평의 영향 가능성을 살펴보는 것이다. 2012년 2월 16일부터 4월 4일 사이에 2010년에 출간된 열권의 책을 대상으로 WorldCat에서 소장도서관, 이용자 서평, 태그 및 독서 리스트의 현황 및 변동 추이, 그리고 서지레코드에 연결된 Amazon.com과 GoodReads.com의 이용자 서평 현황을 살펴보았다. WorldCat에서 아직 이용자 참여 기능의 활용도는 매우 낮았으며, 이용자 서평보다는 태그나 독서 리스트를 통한 참여가 더 많았다. 같은 책들에 대한 아마존과 굿리즈의 이용자 서평 참여도는 매우 높았고, 아마존에서 한 권의 책과 관련된 이용자 서평 사례 분석은 이용자 참여 기능이 왜곡될 수 있는 가능성을 암시하였다. 아직은 초기 단계인 도서관 목록에 대한 이용자 참여 기능의 확산 및 안정화 추이의 지속적 관찰, 그리고 이 기능이 이용자의 자료 선택에 미치는 영향의 심층적, 체계적 분석이 필요하다.

Modeling Topic Extraction-based Sentiment Analysis Based on User Reviews

  • Kim, Tae-Yeun
    • 통합자연과학논문집
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    • 제14권2호
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    • pp.35-40
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    • 2021
  • In this paper, we proposed a multi-subject-level sentiment analysis model for user reviews using the Latent Dirichlet Allocation (LDA) method targeting user-generated content (UGC). Data were collected from users' online reviews of hotels in major tourist cities in the world, and 30 hotel-related topics were extracted using the entire user reviews through the LDA technique. Six major hotel-related themes (Cleanliness, Location, Rooms, Service, Sleep Quality, and Value) were selected from the extracted themes, and emotions were evaluated for sentences corresponding to six themes in each user review in the proposed sentiment analysis model. Sentiment was analyzed using a dictionary. In addition, the performance of the proposed sentiment analysis model was evaluated by comparing the emotional values for each subject in the user reviews and the detailed scores evaluated by the user directly for each hotel attribute. As a result of analyzing the values of accuracy and recall of the proposed sentiment analysis model, it was analyzed that the efficiency was high.

Use Case Elicitation Method Using "When" Sentences from User Reviews

  • Kim, Neung-Hoe;Hong, Chan-Ki
    • International journal of advanced smart convergence
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    • 제9권4호
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    • pp.198-202
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    • 2020
  • User review sites are spaces where users can freely post and share their opinions, which are trusted by many people and directly influence sales. In addition, they overcome the limitations arising from existing requirements collection and are able to gather the needs of large numbers of different people at a low cost. Therefore, such sites are attracting attention as new spaces for understanding user needs. In a previous study, a user review analysis was attempted using 5W and 1H, and we inferred that a sentence containing "when" has special information based on the user experience. In addition, the requirements of the derivative activities in a user review can identify more user needs than the general requirements of derivative activities. In this paper, we propose a systematic method of deriving "when" sentences contain meaningful information from user reviews and converting them into use cases, which is one of the requirements of a specification method. This method converts unstructured data into structured data such that it can be included as the user requirements during software development from user comments expressed in natural language. This method will reduce project failures and increase the likelihood of success by enabling an efficient collection and analysis of user needs from valuable user reviews.

신뢰성있는 온라인 고객 리뷰 텍스트 마이닝 기반 식당 개별 음식 아이템 평가 (Rating Individual Food Items of Restaurant Menu based on Online Customer Reviews using Text Mining Technique)

  • 무자밀 후세인 사이드;정선태
    • 한국정보처리학회:학술대회논문집
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    • 한국정보처리학회 2020년도 춘계학술발표대회
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    • pp.389-392
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    • 2020
  • The growth in social media, blogs and restaurant listing directories have led to increasing customer reviews about restaurants, their quality of food items and services available on the internet. These user reviews offer a massive amount of valuable information that can be used for various decision-making purposes. Currently, most food recommendation sites provide recommendation scores about restaurants rather than food items of the restaurant and the provided recommendation scores may be biased since they are calculated only from user reviews listed only in their sites. Usually, people wants a reliable recommendation about foods, not restaurant. In this paper, we present a reliable Korean food items rating method; we first extract food items by applying NER technique to restaurant reviews collected from many Korean restaurant recommendation web sites, blogs and web data. Then, we apply lexicon-based sentiment analysis on collected user reviews and predict people's opinions as sentiment polarity scores (+1 for positive; -1 for negative; 0 for neutral). Finally, by taking average of all calculated polarity scores about a food item, we obtain a rating to individual menu items of the restaurant. The proposed food item rating is more reliable since it does not depend on reviews of only one site.

어플리케이션 마켓에서 카노 모델을 이용한 사용자 리뷰 선별 방법 (User Review Selection Method using Kano Model in Application Market)

  • 김능회
    • 산업융합연구
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    • 제18권2호
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    • pp.95-100
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    • 2020
  • 소비자를 파악하기 위해 활용되고 있는 사용자 중심 데이터 중 사용자 리뷰 데이터는 다량으로 상세하게 소비자의 의견을 파악할 수 있다는 장점으로 인해 주목받고 있으며 많은 소비자들이 사용자 리뷰에 의존하고 신뢰하고 있다. 많은 어플리케이션 개발사들은 중요성을 인지하고 사용자 리뷰를 관찰 및 대응하고 있지만 체계적인 방법의 부재로 고객의 만족과 관계없이 시간과 비용을 투자하고 있다. 따라서, 본 논문에서는 주어진 시간과 비용에서 고객의 만족을 최대화 시킬 수 있도록 고객 만족과 서비스 품질을 다루는 카노 모델을 이용하여 어플리케이션 마켓에서 사용자 리뷰들을 선별하는 체계적인 방법을 제안하였다. 본 방법은 어플리케이션 마켓에서 사용자 리뷰들을 수집하고 요구사항을 도출하는 사용자 리뷰 수집 및 요구사항 도출 단계, 도출된 요구사항에 카노 모델을 적용하고 품질 유형으로 선별하는 카노 모델 적용 및 선별 단계, 그리고 관련자들이 모여 내부적인 측면에서 요구사항 검토 및 재정의하는 이해관계자들과 검토 및 재정의 단계로 구성되었다.

Analyzing User Feedback on a Fan Community Platform 'Weverse': A Text Mining Approach

  • Thi Thao Van Ho;Mi Jin Noh;Yu Na Lee;Yang Sok Kim
    • 스마트미디어저널
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    • 제13권6호
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    • pp.62-71
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    • 2024
  • This study applies topic modeling to uncover user experience and app issues expressed in users' online reviews of a fan community platform, Weverse on Google Play Store. It allows us to identify the features which need to be improved to enhance user experience or need to be maintained and leveraged to attract more users. Therefore, we collect 88,068 first-level English online reviews of Weverse on Google Play Store with Google-Play-Scraper tool. After the initial preprocessing step, a dataset of 31,861 online reviews is analyzed using Latent Dirichlet Allocation (LDA) topic modeling with Gensim library in Python. There are 5 topics explored in this study which highlight significant issues such as network connection error, delayed notification, and incorrect translation. Besides, the result revealed the app's effectiveness in fostering not only interaction between fans and artists but also fans' mutual relationships. Consequently, the business can strengthen user engagement and loyalty by addressing the identified drawbacks and leveraging the platform for user communication.

What Drives Consumers' Purchase Decisions? : User- and Marketer-generated Content

  • Kim, Yu-Jin
    • 감성과학
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    • 제24권4호
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    • pp.79-90
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    • 2021
  • Consumers have an increasingly active role in the marketing cycle, using social media channels to create, distribute, and consume digital content. In this context, this paper investigates the impact of user- and marketer-generated content on consumer purchase intentions and the approach to designing an effective social media marketing platform. Referencing a literature review of social media marketing and consumer purchase intentions, a case study of the social media-marketing platform, 0.8L, was undertaken using both qualitative and quantitative results through content analysis and a participatory survey. First, about 450 consumer reviews for ten sunscreen products posted on the 0.8L platform were compared with products' marketer-generated content. Next, 55 subjects participated in a survey regarding purchase intentions toward moisturizing creams on the 0.8L platform. The results indicated that user-generated content (i.e., texts and photos) provided more personal experiences of the product usage process, whereas marketers focused on distinctive product photos and features. Moreover, customer reviews (particularly high volume and narrative format) had more impact on purchase decisions than marketer information in the online cosmetics market. Real users' honest reviews (both positive and negative) were found to aid companies' prompt and straightforward assessment of newly released products. In addition to the importance of customer-driven marketing practices, distinctive user experience design features of a competitive social media-marketing platform are identified to facilitate the creation and sharing of sincere customer reviews that resonate with potential buyers.

사용자 리뷰를 통한 소셜커머스와 오픈마켓의 이용경험 비교분석 (A Comparative Analysis of Social Commerce and Open Market Using User Reviews in Korean Mobile Commerce)

  • 채승훈;임재익;강주영
    • 지능정보연구
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    • 제21권4호
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    • pp.53-77
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    • 2015
  • 국내 모바일 커머스 시장은 현재 소셜커머스가 이용자 수 측면에서 오픈마켓을 압도하고 있는 상황이다. 산업계에서는 모바일 시장에서 소셜커머스의 성장에 대해 빠른 모바일 시장진입, 큐레이션 모델 등을 주요 성공요인으로 제시하고 있지만, 이에 대한 학계의 실증적인 연구 및 분석은 아직 미미한 상황이다. 본 연구에서는 사용자 리뷰를 바탕으로 모바일 소셜커머스와 오픈마켓의 사용자 이용경험을 비교 분석하는 탐험적인 연구를 수행하였다. 먼저 본 연구는 구글 플레이에 등록된 국내 소셜커머스 주요 3개 업체와 오픈마켓 주요 3개 업체의 모바일 앱 리뷰를 수집하였다. 본 연구는 LDA 토픽모델링을 통해 1만여건에 달하는 모바일 소셜커머스와 오픈마켓 사용자 리뷰를 지각된 유용성과 지각된 편리성 토픽으로 분류한 뒤 감정분석과 동시출현단어분석을 수행하였다. 이를 통해 본 연구는 국내 모바일 커머스 상에서 오픈마켓 이용자들에 비해 소셜커머스 이용자들이 서비스와 이용편리성 측면에서 더 긍정적인 경험을 하고 있음을 증명하였다. 소셜커머스는 '배송', '쿠폰', '할인'을 중심으로 서비스 측면에서 이용자들에게 긍정적인 이용경험을 이끌어내고 있는 반면, 오픈마켓의 경우 '로그인 안됨', '상세보기 불편', '멈춤'과 같은 기술적 문제 및 불편으로 인한 이용자 불만이 높았다. 이와 같이 본 연구는 사용자 리뷰를 통해 서비스 이용경험을 효과적으로 비교 분석할 수 있는 탐험적인 실증연구법을 제시하였다. 구체적으로 본 연구는 LDA 토픽모델링과 기술수용모형을 통해 사용자 리뷰를 서비스와 기술 토픽으로 분류하여 효과적으로 분석할 수 있는 새로운 방법을 제시하였다는 점에서 의의가 있다. 또한 본 연구의 결과는 향후 소셜커머스와 오픈마켓의 경쟁 및 벤치마킹 전략에 중요하게 활용될 수 있을 것으로 기대된다.