• 제목/요약/키워드: Identification Means

검색결과 624건 처리시간 0.025초

Improvement of Digital Identify Proofing Service through Trend Analysis of Online Personal Identification

  • JongBae Kim
    • International Journal of Internet, Broadcasting and Communication
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    • 제15권4호
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    • pp.1-8
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    • 2023
  • This paper analyzes the trends of identification proofing services(PIPSs) to identify and authenticate users online and proposes a method to improve PIPS based on alternative means of resident registration numbers in Korea. Digital identity proofing services play an important role in modern society, but there are some problems. Since they handle sensitive personal information, there is a risk of information leakage, hacking, or inappropriate access. Additionally, online service providers may incur additional costs by applying different PIPSs, which results in online service users bearing the costs. In particular, in these days of globalization, different PIPSs are being used in various countries, which can cause difficulties in international activities due to lack of global consistency. Overseas online PIPSs include expansion of biometric authentication, increase in mobile identity proofing, and distributed identity proofing using blockchain. This paper analyzes the trend of PIPSs that prove themselves when identifying users of online services in non-face-to-face overseas situations, and proposes improvements by comparing them with alternative means of Korean resident registration numbers. Through the proposed method, it will be possible to strengthen the safety of Korea's PIPS and expand the provision of more reliable identification services.

GMM을 위한 점진적 ${\cal}k-means$ 알고리즘에 의해 초기값을 갖는 EM알고리즘과 화자식별에의 적용 (EM Algorithm with Initialization Based on Incremental ${\cal}k-means$ for GMM and Its Application to Speaker Identification)

  • 서창우;한헌수;이기용;이윤정
    • 한국음향학회지
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    • 제24권3호
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    • pp.141-149
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    • 2005
  • 개개인의 음성을 이용한 화자식별에서, 화자 모델을 추정하는데 가우시안 혼합모델이 주로 사용된다. 최대 우도 추정을 갖는 가우시안 혼합모델의 파라미터 추정은 Expectation-Maximisation (EM)을 사용하여 얻을 수 있다. 그러나, EM 알고리즘은 초기값에 상당히 민감하고, 혼합성분의 개수를 미리 알고 있어야 하는 단점이 있다. 본 논문에서는, EM 알고리즘의 문제점을 해결하기 위하여 가우시안 혼합모델을 위한 점진적 ${\cal}k-means$ 알고리즘에 의한 초기값을 갖는 EM 알고리즘을 제안한다. 제안된 방법은 혼합성분의 개수를 점진적 ${\cal}k-means$ 방법을 이용하여 한번에 하나씩 혼합성분을 추정하여 최적의 혼합성분이 얻어 질 때까지 이를 반복 수행한다. 하나의 혼합성분이 추가될 때마다, 새로 얻어진 혼합성분과 이전에 구한 혼합성분들간의 상호 관계를 각각 측정한다. 이로부터, 통계적으로 독립인 최적의 혼합성분 개수를 추정할 수 있다. 제안된 방법의 성능을 확인하기 위하여 임의의 생성 데이터와 실제 음성을 사용하였다. 실험 결과에서, 제안된 방법이 기존의 방법보다 화자 식별 성능이 우수하였으며, 또한 성능을 유지하면서도 계산량 감소의 효과까지 볼 수 있었다.

System Identification and Damage Estimation via Substructural Approach

  • Tee, K.-F.;Koh, C.-G.;Quek, S.-T.
    • Computational Structural Engineering : An International Journal
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    • 제3권1호
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    • pp.1-7
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    • 2003
  • For system identification of large structures, it is not practical to identify the entire structure due to the prohibitive computational time and difficulty in numerical convergence. This paper explores the possibility of performing system identification at substructure level, taking advantage of reduction in both the number of unknowns and the number of degrees of freedom involved. Another advantage is that different portions (substructures) of a structural system can be identified independently and even concurrently with parallel computing. Two substructural identification methods are formulated on the basis whether substructural approach is used to obtain first-order or second-order model. For substructural first-order model, identification at the substructure level will be performed by means of the Observer/Kalman filter Identification (OKID) and the Eigensystem Realization Algorithm (ERA) whereas identification at the global level will be performed to obtain second-order model in order to evaluate the system's stiffness and mass parameters. In the case of substructural second-order model, identification will be performed at the substructure level throughout the identification process. The efficiency of the proposed technique is shown by numerical examples for multi-storey shear buildings subjected to random forces, taking into consideration the effects of noisy measurement data. The results indicate that both the proposed methods are effective and efficient for damage identification of large structures.

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개선된 공간 탐색 알고리즘을 이용한 정보입자 기반 퍼지모델 설계 (Design of IG-based Fuzzy Models Using Improved Space Search Algorithm)

  • 오성권;김현기
    • 한국지능시스템학회논문지
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    • 제21권6호
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    • pp.686-691
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    • 2011
  • This study is concerned with the identification of fuzzy models. To address the optimization of fuzzy model, we proposed an improved space search evolutionary algorithm (ISSA) which is realized with the combination of space search algorithm and Gaussian mutation. The proposed ISSA is exploited here as the optimization vehicle for the design of fuzzy models. Considering the design of fuzzy models, we developed a hybrid identification method using information granulation and the ISSA. Information granules are treated as collections of objects (e.g. data) brought together by the criteria of proximity, similarity, or functionality. The overall hybrid identification comes in the form of two optimization mechanisms: structure identification and parameter identification. The structure identification is supported by the ISSA and C-Means while the parameter estimation is realized via the ISSA and weighted least square error method. A suite of comparative studies show that the proposed model leads to better performance in comparison with some existing models.

연속 동조 방법을 이용한 퍼지 집합 퍼지 모델의 유전자적 최적화 (Genetic Optimization of Fyzzy Set-Fuzzy Model Using Successive Tuning Method)

  • 박건준;오성권;김현기
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2007년도 심포지엄 논문집 정보 및 제어부문
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    • pp.207-209
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    • 2007
  • In this paper, we introduce a genetic optimization of fuzzy set-fuzzy model using successive tuning method to carry out the model identification of complex and nonlinear systems. To identity we use genetic alrogithrt1 (GA) sand C-Means clustering. GA is used for determination the number of input, the seleced input variables, the number of membership function, and the conclusion inference type. Information Granules (IG) with the aid of C-Means clustering algorithm help determine the initial paramters of fuzzy model such as the initial apexes of the, membership functions in the premise part and the initial values of polyminial functions in the consequence part of the fuzzy rules. The overall design arises as a hybrid structural and parametric optimization. Genetic algorithms and C-Means clustering are used to generate the structurally as well as parametrically optimized fuzzy model. To identify the structure and estimate parameters of the fuzzy model we introduce the successive tuning method with variant generation-based evolution by means of GA. Numerical example is included to evaluate the performance of the proposed model.

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냉동수산물 이력제 식별수단으로써의 RFID Gen 2 태그의 인식률 분석 (Read Rate Analysis of RFID Gen 2 Tag in Frozen Seafood Traceability Systems)

  • 김진백;이동호
    • 수산경영론집
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    • 제38권1호
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    • pp.115-132
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    • 2007
  • Implementing the automatic identification in supply chain management is essential for effective and efficient process control. Though the GTIN based bar code system is generally used as an automatic identification method in most industries, it can not identify individual item, and is not appropriated for products' reliability and safety management. So the RFID system with EPC is considered as a better solution for resolving those problems. This study reviewed automatic identification code systems and the attributes and characteristics of RFID Gen 2 which became a global standard recently for supply chain management. Particularly, this study analyzed RFID Gen 2 systems' read rates on various conditions including distances between tags and readers and between antennas, condensation, and several packing materials in practical supply chain environment. The results of this study showed that the RFID Gen 2 had high read ratio in practical application and would be adopted as a new automatic identification means for traceability systems.

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UCI를 위한 식별 메타데이터 설계 (Design of Identification Metadata for UCI)

  • 박승범;이상원
    • 한국컴퓨터정보학회:학술대회논문집
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    • 한국컴퓨터정보학회 2013년도 제48차 하계학술발표논문집 21권2호
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    • pp.97-99
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    • 2013
  • Although UCI Identification metadata is not represented in the UCI syntax, it means a set of elements that enable users to easily and quickly identify. Against this backdrop, we research on how to design identification metadata for UCI. First of all, we check ISO/IEC 11179 and compare this with UCI properties. And then we defines nine components (such as UCI, Identifier, Title, Type, Mode, Format, Contributor, ContributorEntitiy, and ContributorRole) as elements of the identification metadata and establish encoding scheme with several parts (such as List of Encoding Scheme, Encoding Scheme of Identifier, Encoding Scheme of Type, Encoding Scheme of Mode, Encoding Scheme of Format, and Encoding Scheme of ContributorRole).

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무선식별(Radio Frequency IDentification)시스템 기술기준 연구 (A Study on Technical Regulation for Radio Frequency Identification Systems)

  • 장동원
    • 한국정보통신학회:학술대회논문집
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    • 한국해양정보통신학회 2003년도 추계종합학술대회
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    • pp.61-65
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    • 2003
  • 본 고에서는 무선식별시스템의 기술 표준화에 대해서 기술하였다. 무선식별시스템은 최근 모든 산업에 폭발적으로 사용되고 있다. 무선식별시스템은 적당한 트랜스폰더 즉 태그에 데이터를 보내서 그 응용에 만족하는 응답을 즉시 받는 것이다. 본 고에서는 국제적인 표준화 동향 및 기술에 대해서 분석하고, 국내에서 RFID 기술을 응용하기 위한 기술기준에 대해서 기술하였다.

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A Study on Optimal Fuzzy Identification by means of Hybrid Identification Algorithm

  • Park, Byoung-Jun;Park, Chun-Seong;Oh, Sung-Kwun
    • 제어로봇시스템학회:학술대회논문집
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    • 제어로봇시스템학회 1998년도 제13차 학술회의논문집
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    • pp.215-220
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    • 1998
  • In order to optimize fuzzy model, we use the optimal algorithm with a hybrid type in the identification of premise parameters and standard least square method in the identification of consequence parameters of a fuzzy model. The hybrid optimal identification algorithm is carried out using a genetic algorithm and improved complex method. Also, the performance index with weighting factor is proposed to achieve a balance between the insults of performance for the training and testing data. Several numerical examples are used to evaluate the performance of the proposed model.

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비선형 공정에서의 입력 공간 분할에 의한 퍼지 추론 시스템의 특성 분석 (Characteristics of Fuzzy Inference Systems by Means of Partition of Input Spaces in Nonlinear Process)

  • 박건준;이동윤
    • 한국콘텐츠학회논문지
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    • 제11권3호
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    • pp.48-55
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    • 2011
  • 본 논문은 비선형 공정의 퍼지 모델을 동정하기 위해 전체 입력의 공간 분할 및 퍼지 추론 방법에 따른 퍼지 추론 시스템의 입출력 특성을 분석하며, 퍼지 모델의 입력 변수와 퍼지 입력 공간 분할 및 후반부 다항식 함수에 의한 구조 동정과 파라미터 동정을 통해 비선형 공정을 표현한다. 퍼지 규칙에서 전반부 파라미터의 동정에는 입출력 데이터의 최소 값과 최대 값을 이용하는 최소-최대 방법 및 입출력 데이터를 군집으로 형성하는 C-Means 클러스터링 알고리즘을 사용하여 입력 공간을 분할한다. 또한 전반부 멤버쉽 함수는 삼각형 멤버쉽 함수를 사용하여 입력 공간을 형성한다. 후반부 동정에서 퍼지 추론 방법은 간략 추론 및 선형 추론에 의해 시스템을 표현한다. 또한, 각 규칙의 후반부 파라미터들, 즉 후반부 다항식의 계수를 동정하기 위해 표준 최소자승법을 사용한다. 마지막으로, 비선형 공정으로는 널리 이용되는 가스로 데이터를 사용하며 이 공정에 대해 성능을 평가한다.