• Title/Summary/Keyword: 대중 감성

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A Study on Design Features of Unisex Young Casual Wear (유니섹스 영 캐주얼웨어의 디자인 특성에 관한 연구)

  • 김현순
    • Journal of the Korean Society of Costume
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    • v.51 no.6
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    • pp.85-99
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    • 2001
  • 본 연구에서는 유니섹스 영 캐주얼웨어의 국내브랜드를 중심으로 고찰한 후 그 디자인 특성에 대해 살펴보고 한 시대의 패션현상을 규명하고자 하는데 그 목적이 있다. 연구방법은 국내 패션시장의 유니섹스 영 캐주얼웨어에 대한 디자인 특성을 살펴보기 위해 신세대의 하위문화와 국내브랜드 시장조사를 통한 유니섹스 영 캐주얼웨어의 동향에 대한 일반적 고찰을 한 후 영 캐주얼웨어의 브랜드를 디자인의 차이에 따라 분류하고, 그 디자인 특성을 컬러, 소재, 스타일, 아이템별로 구분하여 분석하였다. '00 S/S, '00 F/W의 유니섹스 영 캐주얼웨어 브랜드를 중심으로 고찰해 보고자 패션 정보잡지와 인터넷의 패션사이트를 검색하였다. 유니섹스 영 캐주얼웨어의 브랜드별 시장조사를 통한 그 결과는 다음과 같다. 1. 영상매체, 대중음악. 스포츠, 스타문화로 나타난 신세대의 하위문화는 탈중심성, 탈국경화, 의미의 해체 등의 포스트모던적 문화현상이며. 유니섹스 영 캐주얼웨어는 자유와 개성을 추구하는 신세대의 라이프 스타일을 잘 반영한 하위문화의 복식양식으로서 현대 패션에 영향을 미치고 있다. 2. 기성복업체는 신세대가 가지고 있는 새로운 욕구와 감성을 겨냥한 브랜드를 개발하고 판매촉진을 위해 전력을 다하는 과정에서 신세대의 하위문화를 반영한 유니섹스 영 캐주얼웨어의 일반적인 복식양식을 형성하였다. 3. 국내시장의 유니섹스 영 캐주얼웨어는 디자인 특성에 따라 컴포터블 캐주얼웨어, 스포츠 캐주얼웨어, 힙합 캐주얼웨어로 구분된다.

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Analysis of Social Trends for Electric Scooters Using Dynamic Topic Modeling and Sentiment Analysis (동적 토픽 모델링과 감성 분석을 활용한 전동킥보드에 대한 사회적 동향 분석)

  • Kyoungok, Kim;Yerang, Shin
    • KIPS Transactions on Software and Data Engineering
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    • v.12 no.1
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    • pp.19-30
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    • 2023
  • An electric scooter(e-scooter), one popularized micro-mobility vehicle has shown rapidly increasing use in many cities. In South Korea, the use of e-scooters has greatly increased, as some companies have launched e-scooter sharing services in a few large cities, starting with Seoul in 2018. However, the use of e-scooters is still controversial because of issues such as parking and safety. Since the perception toward the means of transportation affects the mode choice, it is necessary to track the trends for electric scooters to make the use of e-scooters more active. Hence, this study aimed to analyze the trends related to e-scooters. For this purpose, we analyzed news articles related to e-scooters published from 2014 to 2020 using dynamic topic modeling to extract issues and sentiment analysis to investigate how the degree of positive and negative opinions in news articles had changed. As a result of topic modeling, it was possible to extract three different topics related to micro-mobility technologies, shared e-scooter services, and regulations for micro-mobility, and the proportion of the topic for regulations for micro-mobility increased as shared e-scooter services increased in recent years. In addition, the top positive words included quick, enjoyable, and easy, whereas the top negative words included threat, complaint, and ilegal, which implies that people satisfied with the convenience of e-scooter or e-scooter sharing services, but safety and parking issues should be addressed for micro-mobility services to become more active. In conclusion, this study was able to understand how issues and social trends related to e-scooters have changed, and to determine the issues that need to be addressed. Moreover, it is expected that the research framework using dynamic topic modeling and sentiment analysis will be helpful in determining social trends on various areas.

Sentiment Analysis of Korean Reviews Using CNN: Focusing on Morpheme Embedding (CNN을 적용한 한국어 상품평 감성분석: 형태소 임베딩을 중심으로)

  • Park, Hyun-jung;Song, Min-chae;Shin, Kyung-shik
    • Journal of Intelligence and Information Systems
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    • v.24 no.2
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    • pp.59-83
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    • 2018
  • With the increasing importance of sentiment analysis to grasp the needs of customers and the public, various types of deep learning models have been actively applied to English texts. In the sentiment analysis of English texts by deep learning, natural language sentences included in training and test datasets are usually converted into sequences of word vectors before being entered into the deep learning models. In this case, word vectors generally refer to vector representations of words obtained through splitting a sentence by space characters. There are several ways to derive word vectors, one of which is Word2Vec used for producing the 300 dimensional Google word vectors from about 100 billion words of Google News data. They have been widely used in the studies of sentiment analysis of reviews from various fields such as restaurants, movies, laptops, cameras, etc. Unlike English, morpheme plays an essential role in sentiment analysis and sentence structure analysis in Korean, which is a typical agglutinative language with developed postpositions and endings. A morpheme can be defined as the smallest meaningful unit of a language, and a word consists of one or more morphemes. For example, for a word '예쁘고', the morphemes are '예쁘(= adjective)' and '고(=connective ending)'. Reflecting the significance of Korean morphemes, it seems reasonable to adopt the morphemes as a basic unit in Korean sentiment analysis. Therefore, in this study, we use 'morpheme vector' as an input to a deep learning model rather than 'word vector' which is mainly used in English text. The morpheme vector refers to a vector representation for the morpheme and can be derived by applying an existent word vector derivation mechanism to the sentences divided into constituent morphemes. By the way, here come some questions as follows. What is the desirable range of POS(Part-Of-Speech) tags when deriving morpheme vectors for improving the classification accuracy of a deep learning model? Is it proper to apply a typical word vector model which primarily relies on the form of words to Korean with a high homonym ratio? Will the text preprocessing such as correcting spelling or spacing errors affect the classification accuracy, especially when drawing morpheme vectors from Korean product reviews with a lot of grammatical mistakes and variations? We seek to find empirical answers to these fundamental issues, which may be encountered first when applying various deep learning models to Korean texts. As a starting point, we summarized these issues as three central research questions as follows. First, which is better effective, to use morpheme vectors from grammatically correct texts of other domain than the analysis target, or to use morpheme vectors from considerably ungrammatical texts of the same domain, as the initial input of a deep learning model? Second, what is an appropriate morpheme vector derivation method for Korean regarding the range of POS tags, homonym, text preprocessing, minimum frequency? Third, can we get a satisfactory level of classification accuracy when applying deep learning to Korean sentiment analysis? As an approach to these research questions, we generate various types of morpheme vectors reflecting the research questions and then compare the classification accuracy through a non-static CNN(Convolutional Neural Network) model taking in the morpheme vectors. As for training and test datasets, Naver Shopping's 17,260 cosmetics product reviews are used. To derive morpheme vectors, we use data from the same domain as the target one and data from other domain; Naver shopping's about 2 million cosmetics product reviews and 520,000 Naver News data arguably corresponding to Google's News data. The six primary sets of morpheme vectors constructed in this study differ in terms of the following three criteria. First, they come from two types of data source; Naver news of high grammatical correctness and Naver shopping's cosmetics product reviews of low grammatical correctness. Second, they are distinguished in the degree of data preprocessing, namely, only splitting sentences or up to additional spelling and spacing corrections after sentence separation. Third, they vary concerning the form of input fed into a word vector model; whether the morphemes themselves are entered into a word vector model or with their POS tags attached. The morpheme vectors further vary depending on the consideration range of POS tags, the minimum frequency of morphemes included, and the random initialization range. All morpheme vectors are derived through CBOW(Continuous Bag-Of-Words) model with the context window 5 and the vector dimension 300. It seems that utilizing the same domain text even with a lower degree of grammatical correctness, performing spelling and spacing corrections as well as sentence splitting, and incorporating morphemes of any POS tags including incomprehensible category lead to the better classification accuracy. The POS tag attachment, which is devised for the high proportion of homonyms in Korean, and the minimum frequency standard for the morpheme to be included seem not to have any definite influence on the classification accuracy.

Comparison of responses to issues in SNS and Traditional Media using Text Mining -Focusing on the Termination of Korea-Japan General Security of Military Information Agreement(GSOMIA)- (텍스트 마이닝을 이용한 SNS와 언론의 이슈에 대한 반응 비교 -"한일군사정보보호협정(GSOMIA) 종료"를 중심으로-)

  • Lee, Su Ryeon;Choi, Eun Jung
    • Journal of Digital Convergence
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    • v.18 no.2
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    • pp.277-284
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    • 2020
  • Text mining is a representative method of big data analysis that extracts meaningful information from unstructured and large amounts of text data. Social media such as Twitter generates hundreds of thousands of data per second and acts as a one-person media that instantly and directly expresses public opinions and ideas. The traditional media are delivering informations, criticizing society, and forming public opinions. For this, we compare the responses of SNS with the responses of media on the issue of the termination of the Korea-Japan GSOMIA (General Security of Military Information Agreement), one of the domestic issues in the second half of 2019. Data collected from 201,728 tweets and 20,698 newspaper articles were analyzed by sentiment analysis, association keyword analysis, and cluster analysis. As a result, SNS tends to respond positively to this issue, and the media tends to react negatively. In association keyword analysis, SNS shows positive views on domestic issues such as "destruction, decision, we," while the media shows negative views on external issues such as "disappointment, regret, concern". SNS is faster and more powerful than media when studying or creating social trends and opinions, rather than the function of information delivery. This can complement the role of the media that reflects public perception.

A Study on Music Video based on Logic of Sensation of Gilles Deleuze - Analysis of the work of Chris Cunningham - (질 들뢰즈의 감각론을 기반으로 한 뮤직비디오의 영상디자인 연구 - 크리스 커닝햄 작품을 중심으로 -)

  • Koh Eun-Young
    • Archives of design research
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    • v.19 no.4 s.66
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    • pp.121-132
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    • 2006
  • In the Western Philosophy that was centered on reason, sense has been belittled as a low level of conception under reason. However, the 21st century modern visual environment pushes away the epistemology centered on reason and puts 'sensuality' and 'sense' on its place. Especially, public films are one of the fields that rapidly reflect such changes and lead the changes. However, unfortunately, it is difficult to find such efforts that reflect the artistic and aesthetic significance of sense from the public films. It is because that sense is considered superficial and somewhat not real, while recognizing sense as the low level of conception under reason over the long history. Given the fact, this study reviews the by Gilles Deleuze, a modern philosopher who gives a new value on sense, and it would be meaningful to analyze the works of Chris Cunningham who makes films with the concept of Gilles Deleuze. After we analyzed three music videos of Aphex Twin directed by Chris Cunningham, we can ascertain that the films are based on body without Oranges, hysteric, and diagram that are suggested from by Gilles Deleuze. Analyzing recently released films centered on 'sense' in a superficial manner that includes production method or picture composition, including the films of Chris Cunningham, falls into the error of overlooking the director's aesthetics. Understanding the modern logic of sense that is newly developing, studying its substance, and analyzing the films will make a sacrifice of suggesting a new alternative.

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A Study on the Deepening Through Cultural Contents Development : Focused on (Imwon-kyungje) of Suwoo-gu (문화콘텐츠 개발을 통한 심화 연구 : 서유구의 임원경제지(林園經濟志)』 중심으로)

  • Min, Byeong-Hyun
    • Industry Promotion Research
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    • v.3 no.1
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    • pp.49-60
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    • 2018
  • Cultural content is also the result of 'creation', but it is also the 'process' of understanding creation, practice, and difference. Therefore, content should be selected as high-quality content that fills the contents of fusion and knowledge, while it is popular. Confucius, the founder of East Asian humanism, influenced the philosophy of food and shelter, and the dietary life in the late Joseon period. Confucius influenced not only Confucian scholars but also the food hall of the Joseon Dynasty. "mwon-kyungje" Jeongjo-ji is an encyclopedia of food and cuisine, which consists of four volumes of seven chapters and deals with ingredients, recipes and benefits of foods and the relevant taboos. Here the author compiled more than a thousand recipes not just for meat and vegetable dishes but for various kinds of beverage such as soft and boiled drink, for confectionery sweets such as honey cookies and sugar candies, and even for wine and liquor "mwon-kyungje" As he lived to the age of 72, he looked back at his life and said that he should be careful about what to do and how to do well. The food culture of Confucius has been recorded in the daily life of the Josin period and is influenced by Suwon Seo-gu, "mwon-kyungje".

Study on Mobile Interactive Media Art based on The Interaction of Experiential Communications (체험적 커뮤니케이션의 상호작용을 기반으로 한 모바일 인터랙티브 미디어아트에 관한 고찰)

  • Jung, Yoon-Sung
    • Cartoon and Animation Studies
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    • s.39
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    • pp.297-320
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    • 2015
  • Modern technology in the development and convergence of art brought the rapid development of the media arts actively accommodating 'media art' digital media. It has to go to expand the area and limitations as a basis of communication in the 21st century, a new artistic creativity, through the gathering of the existing chain of modern digital mobile technologies and new genre public art that is based on interactive communication break down the boundaries between sectors It has evolved into. This fusion of high technology and the art of mobile interactive media art is to overcome the limitations of time and physical space, as an active subject of interaction and participation, and expanding the range of experiential communications, such as art and science, cultural industries giving provides a flexible platform for a variety of applications. This study presents an expanded paradigm of the new communication and interactive media that define the reporting year review through the literature on art, experiential mobile communications through a case study of mobile interactive media art that is used as a medium of artistic expression the interactive effect was analyzed as a possible new public art. Convergence and interactivity, mobile interactive media art as a buzzword experience has proposed a new approach to high-tech and art and meet the new sensibility of our life and communication, unlimited possibilities worthy of the contemporary trend of convergence and consilience with a new art genre is expected to continued to evolve and develop.

'Hongdae Sound' as a Historic Musical Trend Based on Regional Classification: through Comparative Analysis with 'US 8th Army Sound' and 'London Punk' (지역기반 음악사조로서의 '홍대 사운드' : 미8군 사운드와 런던 펑크와의 비교를 중심으로)

  • Kim, Minoh
    • Trans-
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    • v.8
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    • pp.1-28
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    • 2020
  • This study examines musical characteristics of so-called 'Hongdae Sound' as a historic musical trend by comparing with 'US 8th Army Sound' and British 'London Punk'. Hongdae Sound refers to the musical trend that was formed with independent bands and musicians who mostly performed live in the club called 'Drug' in Hongdae area, and voluntarily adopted minor musical sensitivity and indie spirit of 'post-punk rock' genre. But as an industrial standpoint the superficial identity of 'indie' interferes with academic approach when analysing musical aspects of Hongdae Sound. Therefore it is necessary to rearrange its characteristics as the musical trend based on regional classification in order to fully appreciate its status in history of Korean popular music. US 8th Army Sound refers to the musical trend that was played within the live stages in US military bases in Korea. Many hired Korean musicians for those shows were able to learn the current popular musical trend in the States, and to spread those to the general public outside the bases. The industrial system of the Army Sound was very similar to that of K-Pop, but when it comes to leading the newest musical trend of 'rock-n-roll', it had more resemblance to that of Hongdae Sound. London punk was the back-to-basic form of pure rock that was armed with social angst and rebel, indie spirit. Its primal motto was 'do-it-yourself', and Hongdae Sound mostly followed its industrial, musical and spiritual paths. London punk was short-lived because it abandoned its indie spirits and became absorbed to the mainstream. But Hongdae sound maintain its longevity by maintaining the spirit and truthfulness of indie, while endlessly experimenting with new trends.

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Children Wear's Shopping Orientation of Parents According to Watching Childcare-entertainment Reality TV Programs (육아 예능 TV 프로그램 시청에 따른 유아동복 쇼핑 성향)

  • Kim, Yuna;Kim, Yeri;Kim, Jisu;Na, Youngjoo
    • Science of Emotion and Sensibility
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    • v.19 no.3
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    • pp.59-70
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    • 2016
  • Qualitative consumption is a trend in the children clothing market and watching TV of childcare-entertainment reality programs are becoming popular. This study examines the watching degree of childcare-entertainment reality TV programs of parent buyer (30s) and potential buyer (20s) and we investigate their shopping orientation of children wear. We did the survey research of 200 consumers with SPSS statistical analysis including the review of internet news, paper, and books on children wear shopping orientation. The results are following: first, the longer the watching time of childcare-entertainment reality TV programs, the higher shopping orientation, such as following the fashion of child stars, and the higher the watching preferences on childcare-entertainment reality programs, the greater shopping orientation in following childcare-entertainment reality programs star when they are purchasing children's clothing. Second, potential consumers as well as parent consumers were affected by watching the childcare-entertainment reality programs. Watching childcare-entertainment reality TV programs could give the impact when they were shopping children's clothing because they wanted to follow the fashion of childcare-entertainment reality programs TV star. Accordingly, the exposure of the childcare-entertainment reality programs for children clothing is found to be positive to the both current and future consumers.

User Behavior Classification for Contents Configuration of Life-logging Application (라이프로깅 애플리케이션 콘텐츠 구성을 위한 사용자 행태 분류)

  • Kwon, Jieun;Kwak, Sojung;Lim, Yoon Ah;Whang, Min Cheol
    • Science of Emotion and Sensibility
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    • v.19 no.4
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    • pp.13-20
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    • 2016
  • Recently, life-logging service which has expanded to measure and record the daily life of the users and to share with others are increasing. In particular, as life-logging services based on the application has become popular with the development of wearable-devices and smart-phones, the contents of this service are produced by user behavior and are provided in infographic menu form. The purpose of this paper is to extract user behavior and classify for making contents items of life-logging service. For this paper, the first of all, we discuss the definition and characteristics of life-logging and research the contents based on user behavior related to life-logging by the publications including thesis, articles, and books. Secondly, we extract and classify the user behavior to build the contents for life-logging service. We gather users' action words from publication materials, researches, and contents of existing life-logging service. And then collected words are analyzed by FGI (Focus Group Interview) and survey. As the result, 39 words which suit for contents of life-logging service are extracted by verify suitability. Finally, the extracted 39 words are classified for 19 categories -'Eat', 'Keep house', 'Diet', 'Travel', 'Work out', 'Transit', 'Shoot', 'Meet', 'Feel', 'Talk', 'Care for', 'Drive', 'Listen', 'Go online', 'Sleep', 'Go', 'Work', 'Learn', 'Watch' - which are suggested by the surveys, statistical analysis, and FGI. We will discuss the role and limitations of this results to build contents configuration based on life-logging application in this study.