• Title/Summary/Keyword: 오픈각

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웹 서비스 보안기술 표준화 동향

  • 홍기융;홍기완;박종운;이규호
    • Review of KIISC
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    • v.14 no.4
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    • pp.19-26
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    • 2004
  • 웹 서비스는 인터넷 기술을 이용한 표준화된 오픈 네트워크를 통해 조직 내 및 조직간 모든 컴퓨터 시스템을 결합시키는 새로운 컴퓨팅 패러다임으로 자리 잡으면서, 기술과 서비스의 융합(Convergence), 표준화(Standardization)가 급속도로 진행되고 있다. 이러한 현상은 정보 및 서비스의 공유를 필수적으로 수반하므로, 프라이버시, 기밀성, 무결성, 인증, 및 접근제어 등과 같은 보안과 신뢰성에 대한 중요성을 부각시킨다. 현재 웹 서비스 보안기술은 W3C, OASIS, WS-I의 세 표준화 단체를 중심으로 표준화가 진행되고 있다. 본 논문에서는 각 표준화 단체에서 추진하고 있는 웹서비스 보안기술의 최근 동향을 분석한다.

Indoor Space Recognition from Spherical Camera Stream based on OpenVSLAM (OpenVSLAM에 기반한 구면 카메라 스트림에서의 실내 공간 인식)

  • Hong, Cheol-gi;Park, Jong-Seung
    • Proceedings of the Korea Information Processing Society Conference
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    • 2020.11a
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    • pp.1022-1024
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    • 2020
  • 본 논문에서는 구면 영상을 사용한 vSLAM에 의해 생성된 환경 지도에서 실내 공간을 인식하는 방법을 제안한다. 환경 지도는 오픈 소스 라이브러리 OpenVSLAM을 사용하여 생성했다. 카메라 방향과 위치를 기준으로 랜드 마크를 분류하고 허프 변환을 사용해서 실내 공간의 각 벽의 위치를 찾아냈다. 실험 결과 추정된 평면들이 실제 벽면과 유사한 위치에 나타남을 알 수 있었다. 제시하는 알고리즘은 현재의 AR 콘텐츠보다 진보된 AR 콘텐츠를 제작하는 데 사용할 수 있다.

The Comparative Research On 2D Web Mapping Open API for Designing Geo-Spatial Open Platform (공간정보 오픈플랫폼 설계를 위한 2D Web Mapping Open API 비교 연구)

  • Choi, Won Geun;Kim, Min Soo;Jang, In Sung;Chang, Yoon-Seop
    • Spatial Information Research
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    • v.22 no.5
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    • pp.87-98
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    • 2014
  • Google Maps have changed the response time of Web-GIS using AJAX technologies. In addition, Google released the Open API named Google Maps API(Application Programming Interface) and it lead to the big paradigm on the Open API, where the SDK(Software Development Kit) and ASP(Application Service Provider) had ruled at the related map market. In short, the Open API has been paradigm-shifting for the web mapping. After this, government, many companies and open source foundations have guided Web-GIS market's growth through releasing the relevant Open APIs. So many comparative analysis on web-mapping API carried out by many researches. However there were no researches that can be applied to our current domestic environments. This paper investigates components of web-mapping API. Then we compare how many components supported and enumerate features for each of those APIs. Finally this paper presents direction of future development of Web Mapping API.

A Study on Converting bibliographic data of public libraries expressed in KORMARC into BIBFARME

  • Kim, Joo-Yong;Shin, Pan-Seop
    • Journal of the Korea Society of Computer and Information
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    • v.26 no.11
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    • pp.139-147
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    • 2021
  • BIBFRAME, which is attracting attention as an alternative to the machine-readable catalog format (MARC) in the library world, presents a new bibliographic data model in the open web environment while maintaining compatibility with existing data. To convert KORMARC(Korean data model of MARC) records into BIBFRAME, we extract 25 key fields by analyzing the latest 5,000 bibliographic data from Nowon-gu Library in Seoul. The extracted core fields are classified into three types according to the compatibility of MARC 21, and define conversion rules for each type. In addition, implement an open source-based converter to perform KORMARC to BIBFRAME conversion. As a basic study on KORMARC to BIBFRAME conversion, this study is meaningful in that it analyzes the latest KORMARC information actually used, defines conversion rules, and attempts BIBFRAME conversion.

A Study on the Intellectual Structure Analysis by Keyword Type Based on Profiling: Focusing on Overseas Open Access Field (프로파일링에 기초한 키워드 유형별 지적구조 분석에 관한 연구 - 국외 오픈액세스 분야를 중심으로 -)

  • Kim, Pan Jun
    • Journal of the Korean Society for Library and Information Science
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    • v.55 no.4
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    • pp.115-140
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    • 2021
  • This study divided the keyword sets searched from LISTA database focusing on the overseas open access fields into two types (controlled keywords and uncontrolled keywords), and examined the results of performing an intellectual structure analysis based on profiling for the each keyword type. In addition, these results were compared with those of an intellectual structural analysis based on co-word analysis. Through this, I tried to investigate whether similar results were derived from profiling, another method of intellectual structure analysis, and to examine the differences between co-word analysis and profiling results. As a result, there was a similar difference to the co-word analysis in the results of intellectual structure analysis based on profiling for each of the two keyword types. Also, there were also noticeable differences between the results of intellectual structural analysis based on profiling and co-word analysis. Therefore, intellectual structure analysis using keywords should consider the characteristics of each keyword type according to the research purpose, and better results can be expected to be used based on profiling than co-word analysis to more clearly understand research trends in a specific field.

The Effects of Perceived Justice According to Type of Consumer Complaints in the Internet Open Market (인터넷 오픈마켓에서의 소비자 불만유형에 따른 공정성지각 효과의 비교)

  • Im, Jung-Eun;Lee, Jin-Hwa
    • Journal of the Korean Society of Clothing and Textiles
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    • v.34 no.4
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    • pp.563-574
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    • 2010
  • This study focused on the consumer post-complaint behavior in the Internet open market due to the rapid growth of Internet fashion markets and increased consumer dissatisfaction that has increased post complaint behavior. This study identifies the effect of perceived justice on consumer trust and repurchase intention, it then compares the effects of perceived justice on consumer trust and repurchase intention among the different types of dissatisfied groups. The respondents were 369 consumers who experienced dissatisfaction in the Internet open market. The data were analyzed by factor analysis, path analysis, ANOVA, cluster analysis using SPSS win 12.0 and Amos 7.0. In the research model, three components of perceived justice: distributive justice, procedural justice, and interactional justice have significant effects on trust. Trust has a positive effect on repurchase intention. Dissatisfied consumers were clustered into three types of those dissatisfied with 1) shopping mall/shipping, 2) service, and 3) products. The consumer groups classified by the types of dissatisfaction showed different effects of perceived justice on trust and repurchase intention in the Internet open market.

A Push Agent System for Personalizing e-Mails using Extraction of User Preference Mail Formatn (사용자 선호 메일 형식을 통한 개인화 이메일 푸쉬 에이전트 시스템)

  • 이광형;박재표;이종희;전문석
    • The Journal of Society for e-Business Studies
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    • v.9 no.2
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    • pp.109-121
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    • 2004
  • In this paper, we propose a system that generates a new customizing information for customer with classification and analysis in detail and provides customized information to individual customers automatically. A proposed system generate preference information and preference e-mail format as analysis and calculate that e-mail open rate and mouse event information. Using generated interesting information and preference e-mail format, individual customer's interest information according to e-mail standard and format that customer prefers through agent automatically recompose and push to customer. From experiment, the designed and implemented system showed high e-mail open ratio and user's satisfaction in performance assessment.

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Characteristics of Internet Shopping-Malls in Korea and Their Improvement (우리나라 인터넷 쇼핑몰의 특징과 문제점 개선)

  • Han, Kwang-Hee
    • The Journal of the Korea Contents Association
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    • v.7 no.3
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    • pp.187-196
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    • 2007
  • In Korea, the market of internet shopping mall rapidly increases. The purpose of this study is how to progressed to internet shopping mall system in Korea and a improvement and characteristics of that through progress and case studies of internet shopping mall. As to the future direction of the market of internet shopping mall in Korea, many of commodity parts will be traded among established participants on internet websites owned by internet shopping mall groups. Finally, for improvement of internet shopping mall industry in Korea I suggested that there are "mutual cooperation of internet shopping mall companies", "maintain the customer's confidence", "attain the profits through a niche market strategy".

Service Discovery Technology for Large-scale Distributed Environment (대규모 분산 환경을 위한 서비스 디스커버리 기술)

  • Kim, Eujin;Youn, Hee Yong
    • Proceedings of the Korean Society of Computer Information Conference
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    • 2015.01a
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    • pp.159-161
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    • 2015
  • 서비스 디스커버리는 대부분의 분산시스템 및 서비스 지향 아키텍처의 핵심 구성요소다. 실시간 시스템 기반에서 서비스 위치는 자주 변경될 수 있는데, 이 때 서비스 중단 문제가 발생할 수 있다. 이를 방지하기 위해서 동적인 서비스 등록과 서비스 디스커버리 기법이 매우 중요하다. 본 논문은 서비스 중단 문제를 해결할 수 있는 몇 가지 오픈 소스 솔루션들을 소개한다. 각 솔루션들은 레지스트리 타입에 따라 크게 범용 레지스트리와 단일 목적용 레지스트리로 나눌 수 있다. 각 솔루션들의 기능을 서로 비교함으로써 사용자로 하여금 자신의 요구사항에 적합한 솔루션을 선택하는데 도움이 되고자 한다.

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Deriving adoption strategies of deep learning open source framework through case studies (딥러닝 오픈소스 프레임워크의 사례연구를 통한 도입 전략 도출)

  • Choi, Eunjoo;Lee, Junyeong;Han, Ingoo
    • Journal of Intelligence and Information Systems
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    • v.26 no.4
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    • pp.27-65
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    • 2020
  • Many companies on information and communication technology make public their own developed AI technology, for example, Google's TensorFlow, Facebook's PyTorch, Microsoft's CNTK. By releasing deep learning open source software to the public, the relationship with the developer community and the artificial intelligence (AI) ecosystem can be strengthened, and users can perform experiment, implementation and improvement of it. Accordingly, the field of machine learning is growing rapidly, and developers are using and reproducing various learning algorithms in each field. Although various analysis of open source software has been made, there is a lack of studies to help develop or use deep learning open source software in the industry. This study thus attempts to derive a strategy for adopting the framework through case studies of a deep learning open source framework. Based on the technology-organization-environment (TOE) framework and literature review related to the adoption of open source software, we employed the case study framework that includes technological factors as perceived relative advantage, perceived compatibility, perceived complexity, and perceived trialability, organizational factors as management support and knowledge & expertise, and environmental factors as availability of technology skills and services, and platform long term viability. We conducted a case study analysis of three companies' adoption cases (two cases of success and one case of failure) and revealed that seven out of eight TOE factors and several factors regarding company, team and resource are significant for the adoption of deep learning open source framework. By organizing the case study analysis results, we provided five important success factors for adopting deep learning framework: the knowledge and expertise of developers in the team, hardware (GPU) environment, data enterprise cooperation system, deep learning framework platform, deep learning framework work tool service. In order for an organization to successfully adopt a deep learning open source framework, at the stage of using the framework, first, the hardware (GPU) environment for AI R&D group must support the knowledge and expertise of the developers in the team. Second, it is necessary to support the use of deep learning frameworks by research developers through collecting and managing data inside and outside the company with a data enterprise cooperation system. Third, deep learning research expertise must be supplemented through cooperation with researchers from academic institutions such as universities and research institutes. Satisfying three procedures in the stage of using the deep learning framework, companies will increase the number of deep learning research developers, the ability to use the deep learning framework, and the support of GPU resource. In the proliferation stage of the deep learning framework, fourth, a company makes the deep learning framework platform that improves the research efficiency and effectiveness of the developers, for example, the optimization of the hardware (GPU) environment automatically. Fifth, the deep learning framework tool service team complements the developers' expertise through sharing the information of the external deep learning open source framework community to the in-house community and activating developer retraining and seminars. To implement the identified five success factors, a step-by-step enterprise procedure for adoption of the deep learning framework was proposed: defining the project problem, confirming whether the deep learning methodology is the right method, confirming whether the deep learning framework is the right tool, using the deep learning framework by the enterprise, spreading the framework of the enterprise. The first three steps (i.e. defining the project problem, confirming whether the deep learning methodology is the right method, and confirming whether the deep learning framework is the right tool) are pre-considerations to adopt a deep learning open source framework. After the three pre-considerations steps are clear, next two steps (i.e. using the deep learning framework by the enterprise and spreading the framework of the enterprise) can be processed. In the fourth step, the knowledge and expertise of developers in the team are important in addition to hardware (GPU) environment and data enterprise cooperation system. In final step, five important factors are realized for a successful adoption of the deep learning open source framework. This study provides strategic implications for companies adopting or using deep learning framework according to the needs of each industry and business.