• Title/Summary/Keyword: SNS 뉴스

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A Method for Evaluating News Value based on Supply and Demand of Information Using Text Analysis (텍스트 분석을 활용한 정보의 수요 공급 기반 뉴스 가치 평가 방안)

  • Lee, Donghoon;Choi, Hochang;Kim, Namgyu
    • Journal of Intelligence and Information Systems
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    • v.22 no.4
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    • pp.45-67
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    • 2016
  • Given the recent development of smart devices, users are producing, sharing, and acquiring a variety of information via the Internet and social network services (SNSs). Because users tend to use multiple media simultaneously according to their goals and preferences, domestic SNS users use around 2.09 media concurrently on average. Since the information provided by such media is usually textually represented, recent studies have been actively conducting textual analysis in order to understand users more deeply. Earlier studies using textual analysis focused on analyzing a document's contents without substantive consideration of the diverse characteristics of the source medium. However, current studies argue that analytical and interpretive approaches should be applied differently according to the characteristics of a document's source. Documents can be classified into the following types: informative documents for delivering information, expressive documents for expressing emotions and aesthetics, operational documents for inducing the recipient's behavior, and audiovisual media documents for supplementing the above three functions through images and music. Further, documents can be classified according to their contents, which comprise facts, concepts, procedures, principles, rules, stories, opinions, and descriptions. Documents have unique characteristics according to the source media by which they are distributed. In terms of newspapers, only highly trained people tend to write articles for public dissemination. In contrast, with SNSs, various types of users can freely write any message and such messages are distributed in an unpredictable way. Again, in the case of newspapers, each article exists independently and does not tend to have any relation to other articles. However, messages (original tweets) on Twitter, for example, are highly organized and regularly duplicated and repeated through replies and retweets. There have been many studies focusing on the different characteristics between newspapers and SNSs. However, it is difficult to find a study that focuses on the difference between the two media from the perspective of supply and demand. We can regard the articles of newspapers as a kind of information supply, whereas messages on various SNSs represent a demand for information. By investigating traditional newspapers and SNSs from the perspective of supply and demand of information, we can explore and explain the information dilemma more clearly. For example, there may be superfluous issues that are heavily reported in newspaper articles despite the fact that users seldom have much interest in these issues. Such overproduced information is not only a waste of media resources but also makes it difficult to find valuable, in-demand information. Further, some issues that are covered by only a few newspapers may be of high interest to SNS users. To alleviate the deleterious effects of information asymmetries, it is necessary to analyze the supply and demand of each information source and, accordingly, provide information flexibly. Such an approach would allow the value of information to be explored and approximated on the basis of the supply-demand balance. Conceptually, this is very similar to the price of goods or services being determined by the supply-demand relationship. Adopting this concept, media companies could focus on the production of highly in-demand issues that are in short supply. In this study, we selected Internet news sites and Twitter as representative media for investigating information supply and demand, respectively. We present the notion of News Value Index (NVI), which evaluates the value of news information in terms of the magnitude of Twitter messages associated with it. In addition, we visualize the change of information value over time using the NVI. We conducted an analysis using 387,014 news articles and 31,674,795 Twitter messages. The analysis results revealed interesting patterns: most issues show lower NVI than average of the whole issue, whereas a few issues show steadily higher NVI than the average.

SNS Mall: A Study on the Analysis of SNS(Social Networking Service) Functions Applicable to Electronic Commerce for Building Regular Relationship with Customers (SNS 몰: 전자상거래에서 적용할 수 있는 SNS의 기능 분석 및 활용에 관한 연구)

  • Gim, Mi-Su;Ra, Young-Gook
    • The Journal of the Institute of Internet, Broadcasting and Communication
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    • v.20 no.5
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    • pp.1-7
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    • 2020
  • We can build regular customer relationships combining SNS (social networking service) with shopping mall like offline trade. A customer who once purchased is registered as reaular and the relationship continues afterward. The registered regular customer get sthe information about objective product shipment and besides it, he contacts with a story of frams, growth of vegetables, sows to harvests. Consumer can purchase with one click necessary foods as he looks at timeline. Sellers give information about news. discounts to customers. Besides it, food storages, recipes can be given to consumers. The good point here is that selling and promoting can be performed within one account. This is better than link is provided for selling an promoting separately. Like this, besides personal connections using SNS, categorization function gives consumers on line shopping mall service. Once the consumer purchase, he is registered as regular. Besides, the consumers who do not know each other, can share information, suggest products, spread the news.

A Decision Tree Analysis-based Exploratory Study on the Effects of Using Smart Devices on the Expansion of Social Relationship (의사결정나무 분석을 활용한 스마트 기기의 사용이 사회관계 확대에 미치는 영향에 관한 탐색적 연구)

  • Son, Woong-Bee;Jang, Jae-Min
    • Informatization Policy
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    • v.26 no.1
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    • pp.62-82
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    • 2019
  • This study attempts to make an empirical analysis on how mobile devices affect users in building their social relationship and if their influences are negative or positive. The purpose of this research is to explain the results by considering all the possibilities and exploring everyday lives of using mobile devices. We used the survey data from the "Research on Mobile Environment Awareness" conducted by Gyeonggi Research Institute(GRI). The main question was about the use of mobile devices and social network services (SNS) and users' opinions on using the devices. All of the 31 municipalities in Gyeonggi Province were included as a spatial range, and the final validity sample was 1,004 residents. The extent of the relationship with people is selected as a dependent variable through the multinomial logistic model and the decision tree model. As a result of the multinomial logistic analysis on the questionnaire, the characteristics of the respondents with some changes in the scope of the human relationship were found to have a significant (+) effect on conversation with family, SNS usage, residence in the rural area but not urban area, and device usage for obtaining news. The largest variable affecting the extent of relationship was the SNS usage. As the amount of SNS usage increases, the extent of the relationship also changes a lot.

The Analysis of the Recent News on Domestic Drought Situation by National Drought Information-Analysis System (국가가뭄정보분석시스템을 활용한 최근 가뭄관련 언론현황 분석 및 고찰)

  • Lee, Ho Sun;Chun, Gun Il;Park, Jae Young
    • Proceedings of the Korea Water Resources Association Conference
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    • 2017.05a
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    • pp.340-340
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    • 2017
  • 최근 전 세계적으로 기후변화로 인한 가뭄이 빈번히 발생하고 있으며 우리나라도 '14~'15년 장기화된 가뭄으로 인해 많은 어려움을 겪었다. 이러한 가뭄은 비교적 느린 속도로 진행되고 그 영향이 복잡하게 나타나기 때문에 적절한 사전대응이 이루어지지 않으면 상당한 피해를 겪게 된다. 최근 기존 수자원 정보의 수집과 분석을 탈피해서 다른 사회 시스템과의 연계 추진하는 빅데이터 개념의 적용시도가 이루어지고 있다. K-water 국가가뭄정보분석센터에서는 가뭄의 사전인지와 영향평가의 보조적인 수단으로서 뉴스를 활용하는 방법론을 도출하고 이를 시스템에 구현하여 적용하여 활용성을 분석하였다. 언론(뉴스)정보는 가뭄의 발생, 영향, 대응 등을 포괄적으로 검색할 수 있도록 가뭄진행 순서에 따라 가뭄징조 및 예측, 가뭄발생, 가뭄영향, 가뭄대응, 가뭄대비 및 해소 관련 5개 카테고리와 이와 관련된 69개 세부 키워드로 구분하고 이를 시스템에 반영하였다. 빅데이터 기능을 적용하여 인터넷 뉴스를 해당키워드를 적용해 자동으로 수집할 수 있도록 하였으며 중복되거나 관련 없는 뉴스를 제외하고 이를 다시 발생지역으로 공간 구분하여 GIG 맵에 표출될 수 있도록 구축하였다. 구축된 시스템을 활용하여 '16년을 대상으로 수집된 총 448건의 뉴스자료를 분석한 결과 시스템에 구축되어 있는 '16년 용수공급체계를 반영한 가뭄평가결과와 발생위치, 발생시기, 피해내용 등이 '16년 물수급 현황을 잘 나타내는 것으로 나타났다. 향후 센터에서는 뉴스이외에 소셜미디어와 SNS등에서 다양한 가뭄관련정보를 빅데이터 수집방식에 의해 확보하고 이를 가뭄인자와 영향평가에 대한 참고자료로서 활용하기 위한 방안과 시스템 적용을 통한 검증을 지속적으로 진행할 예정이다.

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A Study on the Development Direction of Viral Video (바이럴 영상의 발전방향에 대한 고찰)

  • Lee, Yong-Whan
    • Proceedings of the Korean Society of Computer Information Conference
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    • 2017.07a
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    • pp.316-317
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    • 2017
  • 본 논문에서는 영화산업에서 사용되고 있는 바이럴 영상의 발전 방향을 알아보고자 한다. 영화에서 사용되는 바이럴 영상은 네티즌의 입소문에 근거하여 영화를 미리 알리고자 하는 목적으로 제작되며 그 유형은 크게 인터뷰, 거짓뉴스 등으로 구분된다. 바이럴 마케팅과 연관되어 결국 적은 투자로 많은 효과를 거두는 것이 필요하다고 보면 영화산업에서 사용되는 바이럴 영상에 대해서도 체계적인 분석과 연구가 필요하다. 본 연구에서는 바이럴 영상의 기존 영화 적용에 대해서 알아보고 최근의 스토리기반 바이럴 영상에 대해 알아본다. 스토리기반 바이럴 영상은 제작에 많은 분석이 필요하다. SNS점유율에 따른 특성도 고려되어야 한다. 기존의 인터뷰나 뉴스보다는 새로우면서도 영화에 대한 직접적인 관심을 이끌어 낼 수 있다는 새로운 방식에 대해서도 발전방향을 알아보아야 한다.

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The User Inclination Analysis Using Facebook Newsfeed (Facebook 뉴스피드를 이용한 사용자 성향 분석)

  • Jeong, Yoon-Sang;Kim, Kyung-rog;Moon, Nammee
    • Proceedings of the Korea Information Processing Society Conference
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    • 2013.11a
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    • pp.1476-1478
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    • 2013
  • 최근 페이스북(Facebook), 트위터(Twitter) 등의 SNS(Social Network Service)의 사용자가 급격하게 증가하고 있다. SNS가 발달하면서 언제 어디서나 쉽게 자신의 위치, 현재의 감정들을 온라인상에서 공유한다. 이에 따라 사람의 감정을 표현하는 단어 100여개를 7가지 감정(기쁨, 흥미, 슬픔, 분노, 놀람, 지루함, 통증)으로 분류하였으며[1]. 이를 분석하기 위한 감정 표현 분석기 모듈을 설계하였다. 설계한 모듈을 사용하여 페이스북의 사용자 뉴스피드(News-Feed)를 분석하여 사용자의 성향을 분석하였다.

Design and Implementation of Social Network Service with Community and Retrieval based on Smart phone (스마트폰기반 커뮤니티 및 검색기능을 갖는 소셜 네트워크 서비스의 설계 및 구현)

  • Lee, Won Chang;Moon, Hyung Man;Kang, Hee Seong;Kang, Hyun-Kyu
    • Proceedings of the Korea Information Processing Society Conference
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    • 2010.11a
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    • pp.395-398
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    • 2010
  • 최근들어 소셜네트워크서비스(SNS) 시스템들이 많이 등장하고 있다. 아울러 스마트폰 기기에서 사용할 수 있는 다양한 서비스들도 나오고 있다. 본 논문에서는 커뮤니티 및 검색을 바탕으로 스마트폰 기기에서 이동 중에 사용자의 이용성과 편의성을 제공하는 다양한 서비스를 제공하는 SNS에 대하여 논하고자 한다. 커뮤니티 서비스, RSS 뉴스 서비스, 블로그 서비스, 위치 및 약속 서비스, 친구관리 및 채팅 서비스, 검색 서비스 등 다양한 내용을 서비스 할 수 있는 웹기반 시스템으로 구성되어 있다. 본 서비스는 모바일을 통한 커뮤니티 및 친구간의 약속 및 메신저 기능 등의 SNS을 제공한다. 아울러 기본적으로 날씨, 뉴스, 사전 및 정보검색 등의 편리한 기능을 제공한다.

Sentimental Analysis Research Trends (감성분석 연구 동향)

  • Lee, Jung-Hoon
    • Proceedings of the Korea Information Processing Society Conference
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    • 2018.05a
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    • pp.358-361
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    • 2018
  • 비정형 데이터 증가로 텍스트 마이닝을 사용해 데이터를 분석하는 연구가 주목받고 있다. 감성분석은 단어와 문맥을 분석하여 텍스트의 감정을 파악하는 기술이다. 본 논문에서는 감성분석 연구 동향, 적용분야, 방법론에 관해 분석하고 기술하려 한다. 감성분석은 2001년 채팅의 감정을 분석하면서 시작되었고, 2008년부터 본격적으로 연구가 진행되었다. 감성분석은 SNS, 상품 후기, 영화평, 뉴스 기사 등 다양한 데이터에 적용되고 있으며, 사회이슈 찬반 분석과 장소 선호도 분석 등 다양한 연구에서 사용되었다. 감성분석 방법은 감성사전을 이용하는 방식과 기계학습을 사용하는 방식으로 나누어지며 분석 방법을 발전시키기 위한 연구가 진행되고 있다.

Emergence of Social Networked Journalism Model: A Case Study of Social News Site, "wikitree" (소셜 네트워크 저널리즘 모델의 출현: 소셜 뉴스사이트, "위키트리" 사례연구)

  • Seol, Jinah
    • Journal of Internet Computing and Services
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    • v.16 no.1
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    • pp.83-90
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    • 2015
  • This paper examines the rising value of social networked journalism and analyzes the case of a social news site based on the theory of networked journalism. Social networked journalism allows the public to be involved in every aspect of journalism production through crowd-sourcing and interactivity. The networking effect with the public is driving journalism to transform into a more open, more networked and more responsive venue. "wikitree" is a social networking news service on which anybody can write news and disseminate it via Facebook and Twitter. It is operated as an open sourced program which incorporates "Google Translate" to automatically convert all its content, enabling any global citizen with an Internet access to contribute news production and share either their own creative contents or generated contents from other sources. Since its inception, "wikitree global" site has been expanding its coverage rapidly with access points arising from 160 countries. Analyzing its international coverage by country and by news category as well as by the unique visit numbers via SNS, the results of the case study imply that networking with the global public can enhance news traffic to the social news site as well as to specific news items. The results also suggest that the utilization of Twitter and Facebook in social networked journalism can break the boundary between local and global public by extending news-gathering ability while growing audience's interest in the site, and engender a feasible business model for a local online journalism.

A Comparative Study between Stock Price Prediction Models Using Sentiment Analysis and Machine Learning Based on SNS and News Articles (SNS와 뉴스기사의 감성분석과 기계학습을 이용한 주가예측 모형 비교 연구)

  • Kim, Dongyoung;Park, Jeawon;Choi, Jaehyun
    • Journal of Information Technology Services
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    • v.13 no.3
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    • pp.221-233
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    • 2014
  • Because people's interest of the stock market has been increased with the development of economy, a lot of studies have been going to predict fluctuation of stock prices. Latterly many studies have been made using scientific and technological method among the various forecasting method, and also data using for study are becoming diverse. So, in this paper we propose stock prices prediction models using sentiment analysis and machine learning based on news articles and SNS data to improve the accuracy of prediction of stock prices. Stock prices prediction models that we propose are generated through the four-step process that contain data collection, sentiment dictionary construction, sentiment analysis, and machine learning. The data have been collected to target newspapers related to economy in the case of news article and to target twitter in the case of SNS data. Sentiment dictionary was built using news articles among the collected data, and we utilize it to process sentiment analysis. In machine learning phase, we generate prediction models using various techniques of classification and the data that was made through sentiment analysis. After generating prediction models, we conducted 10-fold cross-validation to measure the performance of they. The experimental result showed that accuracy is over 80% in a number of ways and F1 score is closer to 0.8. The result can be seen as significantly enhanced result compared with conventional researches utilizing opinion mining or data mining techniques.