• Title/Summary/Keyword: 텍스트 연구

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The Effects of Inferential Reading Strategy Program on Text Comprehension and Korean Language Academic Achievements of Vocational High School Students (추론적 읽기전략 프로그램이 전문계 고등학생의 텍스트 이해와 국어과 학업성취에 미치는 효과)

  • Kim, Seon-Kyung;Yune, So-Jung;Kim, Jung-Sub
    • Journal of Fisheries and Marine Sciences Education
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    • v.23 no.1
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    • pp.1-12
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    • 2011
  • The purpose of this study was to examine the effects of inferential reading strategy program on text comprehension and Korean language academic achievements of vocational high school students. We developed the program of inferential reading strategy, applied it to an educational spot, and examined the effects of it on text comprehension ability and Korean language academic achievements of learners. ANCOVA was used for data analysis with SPSS ver.12.0 statistic program. The main findings of this study were as follows. First, the experimental group which had been conducted with the inferential reading strategy program showed statistically significant difference in their text comprehension ability from controlled group. Second, the experimental group showed statistically significant difference in their Korean language academic achievements ability from controlled group. The study shows that the inferential reading strategy program had effect on the text comprehension and Korean language academic achievements of vocational high school students.

Perceptions and Trends of Digital Fashion Technology - A Big Data Analysis - (빅데이터 분석을 이용한 디지털 패션 테크에 대한 인식 연구)

  • Song, Eun-young;Lim, Ho-sun
    • Fashion & Textile Research Journal
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    • v.23 no.3
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    • pp.380-389
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    • 2021
  • This study aimed to reveal the perceptions and trends of digital fashion technology through an informational approach. A big data analysis was conducted after collecting the text shown in a web environment from April 2019 to April 2021. Key words were derived through text mining analysis and network analysis, and the structure of perception of digital fashion technology was identified. Using textoms, we collected 8144 texts after data refinement, conducted a frequency of emergence and central component analysis, and visualized the results with word cloud and N-gram. The frequency of appearance also generated matrices with the top 70 words, and a structural equivalent analysis was performed. The results were presented with network visualizations and dendrograms. Fashion, digital, and technology were the most frequently mentioned topics, and the frequencies of platform, digital transformation, and start-ups were also high. Through clustering, four clusters of marketing were formed using fashion, digital technology, startups, and augmented reality/virtual reality technology. Future research on startups and smart factories with technologies based on stable platforms is needed. The results of this study contribute to increasing the fashion industry's knowledge on digital fashion technology and can be used as a foundational study for the development of research on related topics.

Falling Accidents Analysis in Construction Sites by Using Topic Modeling (토픽 모델링을 이용한 건설현장 추락재해 분석)

  • Ryu, Hanguk
    • Journal of the Korea Convergence Society
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    • v.10 no.7
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    • pp.175-182
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    • 2019
  • We classify topics on fall incidents occurring in construction sites using topic modeling among machine learning techniques and analyze the causes of the accidents according to each topic. In order to apply topic modeling based on latent dirichlet allocation, text data was preprocessed and evaluated with Perplexity score to improve the reliability of the model. The most common falling accidents happened to the daily workers belonging to small construction site. Most of the causes were not operated properly due to lack of safety equipment, inadequacy of arrangement and wearing, and low performance of safety equipment. In order to prevent and reduce the falling accidents, it is important to educate the daily workers of small construction site, arrange the workplace, and check the wearing of personal safety equipment and device.

Building a Hierarchy of Product Categories through Text Analysis of Product Description (텍스트 분석을 통한 제품 분류 체계 수립방안: 관광분야 App을 중심으로)

  • Lim, Hyuna;Choi, Jaewon;Lee, Hong Joo
    • Knowledge Management Research
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    • v.20 no.3
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    • pp.139-154
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    • 2019
  • With the increasing use of smartphone apps, many apps are coming out in various fields. In order to analyze the current status and trends of apps in a specific field, it is necessary to establish a classification scheme. Various schemes considering users' behavior and characteristics of apps have been proposed, but there is a problem in that many apps are released and a fixed classification scheme must be updated according to the passage of time. Although it is necessary to consider many aspects in establishing classification scheme, it is possible to grasp the trend of the app through the proposal of a classification scheme according to the characteristic of the app. This research proposes a method of establishing an app classification scheme through the description of the app written by the app developers. For this purpose, we collected explanations about apps in the tourism field and identified major categories through topic modeling. Using only the apps corresponding to the topic, we construct a network of words contained in the explanatory text and identify subcategories based on the networks of words. Six topics were selected, and Clauset Newman Moore algorithm was applied to each topic to identify subcategories. Four or five subcategories were identified for each topic.

Design and Implementation of Parallel MPEG-2 Encoder with MPI on Cluster System (클러스터환경에서 MPI를 이용한 병렬 MPEG-2 인코더의 설계 및 구현)

  • Lee, Joa Hyoung;Choi, MyunUk;Bang, Cheolseok;Kim, Byounggil;Jung, Inbum
    • Annual Conference of KIPS
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    • 2004.05a
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    • pp.1413-1416
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    • 2004
  • 최근 컴퓨터와 네트워크 기술이 빠르게 발전하고 널리 보급되면서 텍스트 위주로 작업을 하던 어플리케이션들의 비중이 낮아지고 멀티미디어 데이터를 처리하는 어플리케이션들의 비중이 점차 증가하고 있는 추세이다. 다양한 멀티미디어들 중에서 영화같은 동영상 멀티미디어를 다루는 프로그램들은 멀티미디어 응용 어플리케이션들 중에서 큰 비중을 차지하고 있으며 실생활에서 널리 사용되고 있다. 대표적인 동영상 압축 표준인 MPEG의 경우 매우 높은 압축률을 제공하여 일반 사용자들도 손쉽게 동영상 데이터를 접하고 사용할 수 있는 기회를 제공한다. 하지만 MPEG 인코딩은 매우 많은 컴퓨팅 자원과 시간을 요하는 작업이다. 본 연구에서는 동영상 데이터를 인코딩 하는데 소요되는 시간과 자원을 감소시키기 위해 클러스터환경에서 MPI를 이용하여 동영상 압축 표준인 MPEG-2 기반의 Parallel Encoder를 설계 및 구현하였다.

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A Study on City Brand Evaluation Method Using Text Mining : Focused on News Media (텍스트 마이닝 기법을 활용한 도시 브랜드 평가방법론 연구 : 뉴스미디어를 중심으로)

  • Yoon, Seungsik;Shin, Minchul;Kang, Juyoung
    • Journal of Information Technology Services
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    • v.18 no.1
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    • pp.153-171
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    • 2019
  • Competition among cities has become fierce with decentralization and globalization, and each city tries to establish a brand image of the city to build its competitiveness and implement its policies based on it. At this time, surveys, expert interviews, etc. are commonly used to establish city brands. These methods are difficult to establish as sampling methods an empirical component, the biggest component of a city brand. In this paper, therefore, based on the precedent research's urban brand measurement and components, the words representing each city image property were extracted and relocated to five indicators to form the evaluation index. The constructed indicators have been validated through the review of three experts. Through the index, we analyzed the brands of four cities, Ulsan, Incheon, Yeosu, and Gyeongju, and identified the factors by using Topic Modeling and Word Cloud. This methodology is expected to reduce costs and monitor timely in identifying and analyzing urban brand images in the future.

Research of Patent Technology Trends in Textile Materials: Text Mining Methodology Using DETM & STM (섬유소재 분야 특허 기술 동향 분석: DETM & STM 텍스트마이닝 방법론 활용)

  • Lee, Hyun Sang;Jo, Bo Geun;Oh, Se Hwan;Ha, Sung Ho
    • The Journal of Information Systems
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    • v.30 no.3
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    • pp.201-216
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    • 2021
  • Purpose The purpose of this study is to analyze the trend of patent technology in textile materials using text mining methodology based on Dynamic Embedded Topic Model and Structural Topic Model. It is expected that this study will have positive impact on revitalizing and developing textile materials industry as finding out technology trends. Design/methodology/approach The data used in this study is 866 domestic patent text data in textile material from 1974 to 2020. In order to analyze technology trends from various aspect, Dynamic Embedded Topic Model and Structural Topic Model mechanism were used. The word embedding technique used in DETM is the GloVe technique. For Stable learning of topic modeling, amortized variational inference was performed based on the Recurrent Neural Network. Findings As a result of this analysis, it was found that 'manufacture' topics had the largest share among the six topics. Keyword trend analysis found the fact that natural and nanotechnology have recently been attracting attention. The metadata analysis results showed that manufacture technologies could have a high probability of patent registration in entire time series, but the analysis results in recent years showed that the trend of elasticity and safety technology is increasing.

A Study on Research Trend for Nurses' Workplace Bullying in Korea: Focusing on Semantic Network Analysis and Topic Modeling (간호사의 직장 내 괴롭힘에 대한 국내 연구 동향 분석: 의미연결망분석과 토픽모델링 중심)

  • Choi, Jeong Sil;Kim, Youngji
    • Korean Journal of Occupational Health Nursing
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    • v.28 no.4
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    • pp.221-229
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    • 2019
  • Purpose: The aim of this study was to identify core keywords and topic groups of workplace bullying researches in the past 10 years for better understanding research trend. Methods: The study was conducted in four steps: 1) collecting abstracts, 2) extracting and cleaning semantic morphemes, 3) building co-occurrence matrix and 4) analyzing network features and clustering topic groups. Results: 437 articles between 2010 and 2019 were retrieved from 5 databases (RISS, NDSL, Google scholar, DBPIA and Kyobo Scholar). Forty-one abstracts from these articles were extracted, and network analysis was conducted using semantic network module. The most important core keywords were 'turnover', 'intention', 'factor', 'program' and 'nursing'. Four topic groups were identified from Korean databases. Major topics were 'turnover' and 'organization culture'. Conclusion: After reviewing previous research, it has been found that turnover intention has been emphasized. Further research focused on various intervention is needed to relieve workplace bullying in nursing field.

An Analysis of Key Elements for FinTech Companies Based on Text Mining: From the User's Review (텍스트 마이닝 기반의 자산관리 핀테크 기업 핵심 요소 분석: 사용자 리뷰를 바탕으로)

  • Son, Aelin;Shin, Wangsoo;Lee, Zoonky
    • The Journal of Information Systems
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    • v.29 no.4
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    • pp.137-151
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    • 2020
  • Purpose Domestic asset management fintech companies are expected to grow by leaps and bounds along with the implementation of the "Data bills." Contrary to the market fever, however, academic research is insufficient. Therefore, we want to analyze user reviews of asset management fintech companies that are expected to grow significantly in the future to derive strengths and complementary points of services that have been provided, and analyze key elements of asset management fintech companies. Design/methodology/approach To analyze large amounts of review text data, this study applied text mining techniques. Bank Salad and Toss, domestic asset management application services, were selected for the study. To get the data, app reviews were crawled in the online app store and preprocessed using natural language processing techniques. Topic Modeling and Aspect-Sentiment Analysis were used as analysis methods. Findings According to the analysis results, this study was able to derive the elements that asset management fintech companies should have. As a result of Topic Modeling, 7 topics were derived from Bank Salad and Toss respectively. As a result, topics related to function and usage and topics on stability and marketing were extracted. Sentiment Analysis showed that users responded positively to function-related topics, but negatively to usage-related topics and stability topics. Through this, we were able to extract the key elements needed for asset management fintech companies.

Magnum Korea and Korean Cultur- Focusing on 'Seoul, Jogyesa' of Bruno Barbey (와 한국의 문화 : 부뤼노 바르베(Bruno Barbey)의 사진, <서울, 조계사>를 중심으로)

  • KWON, Yong-Joon;KIM, Gi Gook
    • Cross-Cultural Studies
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    • v.25
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    • pp.35-54
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    • 2011
  • Magnum Korea, a 2008 exhibit at the Hangaram Art Museum in the Seoul Arts Center, introduced representative images of Korea to commemorate the 60th year of the founding of the nation. Twenty photographers of various backgrounds participated in Magnum Korea. This study focuses on one of the exhibited photographers, the French photographer Bruno Barbey. Born in Morocco, Barbey occupies a special position in today's modern photography not to mention in the Magnum group of traditional medium of photography. His photographic world is affiliated with the humanism of Robert Diosneau, particularly as his photographic medium is based on communication and code. Among the photographs in the Magnum Korea collection, Barbey's photographs can be organized into six different subjects: industrial structures in nature, industrial buildings, traditional relics of culture, terminals, markets and restaurants, and daily life. This paper takes special interest in Barbey's unique perspective on Korea's traditional cultural assets focusing on 'Seoul, Jogyesa'. What is the uniqueness of our culture as contained in Barbey's works? In other words, how did he capture the special characteristics of our culture that are often overlooked or ignored because they are so familiar to us? A semiotic approach is used to discover what common but special situations and realities of Korea attracted this photographer and how he managed to capture them in his photographs.