• 제목/요약/키워드: Reference Data Set

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효율적인 레퍼런스 데이터 그룹의 활용에 의한 마커리스 증강현실의 구현 (An Implementation of Markerless Augmented Reality Using Efficient Reference Data Sets)

  • 구자명;조태훈
    • 한국정보통신학회논문지
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    • 제13권11호
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    • pp.2335-2340
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    • 2009
  • 본 논문은 레퍼런스(reference) 데이터 그룹을 효율적으로 생성하고 활용한 마커리스 증강현실(Markerless Augmented Reality)의 구현 방법을 제안한다. 카메라 설정과 레퍼런스 데이터 그룹 생성, 트래킹 (tracking) 부분으로 되어 있다. 효율적인 레퍼런스 데이터 그룹을 생성하기 위해서는 CAD모델과 같은 3D모델을 필요하며, 다양한 관점에서 본 레퍼런스 데이터 그룹을 생성해야 한다. 모델에 대한 영상에서 특징점들을 추출하고, 광선 추적법을 이용하여 그 특징점에 대응하는 3D좌표를 추출하여, 모델의 특징점들에 대한 2D/3D 대응접의 레퍼런스 데이터 그룹이 구성된다. 트래킹 할 때 현재 프레임영상에서 특징점 들이 가장 많이 매칭되는 레퍼런스 데이터와 그 주위의 모델 데이터만을 이용하기 때문에 빠르게 트래킹할 수 있다.

마커리스 증강현실의 구현과 효율적인 레퍼런스 데이터 그룹의 생성 및 활용 (An Implementation of Markerless Augmented Reality and Creation and Application of Efficient Reference Data Sets)

  • 구자명;조태훈
    • 한국정보통신학회:학술대회논문집
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    • 한국해양정보통신학회 2009년도 추계학술대회
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    • pp.204-207
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    • 2009
  • 본 논문은 마커리스 증강현실(Markerless Augmented Reality)의 구현과 레퍼런스(reference) 데이터 그룹을 효율적으로 생성하고 활용하는 방법을 제안한다. 구현은 카메라 설정과 레퍼런스 데이터 그룹 생성, 트래킹(tracking) 부분으로 되어 있다. 효율적인 레퍼런스 데이터 그룹을 생성하기 위해서는 CAD모델과 같은 3D모델을 필요하며, 다양한 관점에서 본 레퍼런스 데이터 그룹을 생성해야 한다. 모델에 대한 영상에서 특징점들을 추출하고, 광선 추적법을 이용하여 그 특징점에 대응하는 3D좌표를 추출하여, 모델의 특징점 들에 대한 2D/3D 대응점의 레퍼런스 데이터 그룹이 구성된다. 트래킹 할 때 현재 프레임영상에서 특징점 들이 가장 많이 매칭되는 레퍼런스 데이터와 그 주위의 모델 데이터만을 이용하기 때문에 빠르게 트래킹 할 수 있다.

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ISO 15926 기반의 참조 데이터 라이브러리 편집기의 개발 (Development of an Editor for Reference Data Library Based on ISO 15926)

  • 전영준;변수진;문두환
    • 한국CDE학회논문집
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    • 제19권4호
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    • pp.390-401
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    • 2014
  • ISO 15926 is an international standard for integration of lifecycle data for process plants including oil and gas facilities. From the viewpoint of information modeling, ISO 15926 Parts 2 provides the general data model that is designed to be used in conjunction with reference data. Reference data are standard instances that represent classes, objects, properties, and templates common to a number of users, process plants, or both. ISO 15926 Parts 4 and 7 provide the initial set of classes, objects, properties and the initial set of templates, respectively. User-defined reference data specific to companies or organizations are defined by inheriting from the initial reference data and the initial set of templates. In order to support the extension of reference data and templates, an editor that provides creation, deletion and modification functions of user-defined reference data is needed. In this study, an editor for reference data based on ISO 15926 was developed. Sample reference data were encoded in OWL (web ontology language) according to the specification of ISO 15926 Part 8. iRINGTools and dot15926Editor were benchmarked for the design of GUI (graphical user interface). Reference data search, creation, modification, and deletion functions were implemented with XML (extensible markup language) DOM (document object model), and SPARQL (SPARQL protocol and RDF query language).

Ranking Candidate Genes for the Biomarker Development in a Cancer Diagnostics

  • Kim, In-Young;Lee, Sun-Ho;Rha, Sun-Young;Kim, Byung-Soo
    • 한국생물정보학회:학술대회논문집
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    • 한국생물정보시스템생물학회 2004년도 The 3rd Annual Conference for The Korean Society for Bioinformatics Association of Asian Societies for Bioinformatics 2004 Symposium
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    • pp.272-278
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    • 2004
  • Recently, Pepe et al. (2003) employed the receiver operating characteristic (ROC) approach to rank candidate genes from a microarray experiment that can be used for the biomarker development with the ultimate purpose of the population screening of a cancer, In the cancer microarray experiment based on n patients the researcher often wants to compare the tumor tissue with the normal tissue within the same individual using a common reference RNA. This design is referred to as a reference design or an indirect design. Ideally, this experiment produces n pairs of microarray data, where each pair consists of two sets of microarray data resulting from reference versus normal tissue and reference versus tumor tissue hybridizations. However, for certain individuals either normal tissue or tumor tissue is not large enough for the experimenter to extract enough RNA for conducting the microarray experiment, hence there are missing values either in the normal or tumor tissue data. Practically, we have $n_1$ pairs of complete observations, $n_2$ 'normal only' and $n_3$ 'tumor only' data for the microarray experiment with n patients, where n=$n_1$+$n_2$+$n_3$. We refer to this data set as a mixed data set, as it contains a mix of fully observed and partially observed pair data. This mixed data set was actually observed in the microarray experiment based on human tissues, where human tissues were obtained during the surgical operations of cancer patients. Pepe et al. (2003) provide the rationale of using ROC approach based on two independent samples for ranking candidate gene instead of using t or Mann -Whitney statistics. We first modify ROC approach of ranking genes to a paired data set and further extend it to a mixed data set by taking a weighted average of two ROC values obtained by the paired data set and two independent data sets.

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Choline intake and its dietary reference values in Korea and other countries: a review

  • Shim, Eugene;Park, Eunju
    • Nutrition Research and Practice
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    • 제16권sup1호
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    • pp.126-133
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    • 2022
  • Choline is a water-soluble organic compound that is important for the normal functioning of the body. It is an essential dietary component as de novo synthesis by the human body is insufficient. Since the United States set the Adequate Intakes (AIs) for total choline as dietary reference values in 1998, Australia, China, and the European Union have also established the choline AIs. Although choline is clearly essential to life, the 2020 Dietary Reference Intakes for Koreans (KDRIs) has not established the values because very few studies have been done on choline intake in Koreans. Since choline intake levels differ by race and country, human studies on Koreans are essential to set KDRIs. Therefore, the present study was undertaken to provide basic data for developing choline KDRIs in the future by analyzing data on choline intake in Koreans to date and reference values of choline intake and dietary choline intake status by country and race.

PARAMETER IDENTIFICATION FOR NONLINEAR VISCOELASTIC ROD USING MINIMAL DATA

  • Kim, Shi-Nuk
    • Journal of applied mathematics & informatics
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    • 제23권1_2호
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    • pp.461-470
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    • 2007
  • Parameter identification is studied in viscoelastic rods by solving an inverse problem numerically. The material properties of the rod, which appear in the constitutive relations, are recovered by optimizing an objective function constructed from reference strain data. The resulting inverse algorithm consists of an optimization algorithm coupled with a corresponding direct algorithm that computes the strain fields given a set of material properties. Numerical results are presented for two model inverse problems; (i)the effect of noise in the reference strain fields (ii) the effect of minimal reference data in space and/or time data.

퍼지 엔트로피 함수를 이용한 데이터추출 (Selection of data set with fuzzy entropy function)

  • Lee, Sang-Hyuk;Cheon, Seong-Pyo;Kim, Sung-Shin
    • 한국지능시스템학회:학술대회논문집
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    • 한국퍼지및지능시스템학회 2004년도 춘계학술대회 학술발표 논문집 제14권 제1호
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    • pp.349-352
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    • 2004
  • In this literature, the selection of data set among the universe set is carried out with the fuzzy entropy function. By the definition of fuzzy entropy, we have proposed the fuzzy entropy function and the proposed fuzzy entropy function is proved through the definition. The proposed fuzzy entropy function calculate the certainty or uncertainty value of data set, hence we can choose the data set that satisfying certain bound or reference. Therefore the reliable data set can be obtained by the proposed fuzzy entropy function. With the simple example we verify that the proposed fuzzy entropy function select reliable data set.

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Selection of data set with fuzzy entropy function

  • Lee, Sang-Hyuk;Cheon, Seong-Pyo;Kim, Sung shin
    • 한국지능시스템학회논문지
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    • 제14권5호
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    • pp.655-659
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    • 2004
  • In this literature, the selection of data set among the universe set is carried out with the fuzzy entropy function. By the definition of fuzzy entropy, the fuzzy entropy function is proposed and the proposed fuzzy entropy function is proved through the definition. The proposed fuzzy entropy function calculate the certainty or uncertainty value of data set, hence we can choose the data set that satisfying certain bound or reference. Therefore the reliable data set can be obtained by the proposed fuzzy entropy function. With the simple example we verify that the proposed fuzzy entropy function select reliable data set.

데이터 이산화와 러프 근사화 기술에 기반한 중요 임상검사항목의 추출방법: 담낭 및 담석증 질환의 감별진단에의 응용 (Extraction Method of Significant Clinical Tests Based on Data Discretization and Rough Set Approximation Techniques: Application to Differential Diagnosis of Cholecystitis and Cholelithiasis Diseases)

  • 손창식;김민수;서석태;조윤경;김윤년
    • 대한의용생체공학회:의공학회지
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    • 제32권2호
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    • pp.134-143
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    • 2011
  • The selection of meaningful clinical tests and its reference values from a high-dimensional clinical data with imbalanced class distribution, one class is represented by a large number of examples while the other is represented by only a few, is an important issue for differential diagnosis between similar diseases, but difficult. For this purpose, this study introduces methods based on the concepts of both discernibility matrix and function in rough set theory (RST) with two discretization approaches, equal width and frequency discretization. Here these discretization approaches are used to define the reference values for clinical tests, and the discernibility matrix and function are used to extract a subset of significant clinical tests from the translated nominal attribute values. To show its applicability in the differential diagnosis problem, we have applied it to extract the significant clinical tests and its reference values between normal (N = 351) and abnormal group (N = 101) with either cholecystitis or cholelithiasis disease. In addition, we investigated not only the selected significant clinical tests and the variations of its reference values, but also the average predictive accuracies on four evaluation criteria, i.e., accuracy, sensitivity, specificity, and geometric mean, during l0-fold cross validation. From the experimental results, we confirmed that two discretization approaches based rough set approximation methods with relative frequency give better results than those with absolute frequency, in the evaluation criteria (i.e., average geometric mean). Thus it shows that the prediction model using relative frequency can be used effectively in classification and prediction problems of the clinical data with imbalanced class distribution.

기계학습 활용을 위한 학습 데이터세트 구축 표준화 방안에 관한 연구 (A study on the standardization strategy for building of learning data set for machine learning applications)

  • 최정열
    • 디지털융복합연구
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    • 제16권10호
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    • pp.205-212
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    • 2018
  • 고성능 CPU/GPU의 개발과 심층신경망 등의 인공지능 알고리즘, 그리고 다량의 데이터 확보를 통해 기계학습이 다양한 응용 분야로 확대 적용되고 있다. 특히, 사물인터넷, 사회관계망서비스, 웹페이지, 공공데이터로부터 수집된 다량의 데이터들이 기계학습의 활용에 가속화를 가하고 있다. 기계학습을 위한 학습 데이터세트는 응용 분야와 데이터 종류에 따라 다양한 형식으로 존재하고 있어 효과적으로 데이터를 처리하고 기계학습에 적용하기에 어려움이 따른다. 이에 본 논문은 표준화된 절차에 따라 기계학습을 위한 학습 데이터세트를 구축하기 위한 방안을 연구하였다. 먼저 학습 데이터세트가 갖추어야할 요구사항을 문제 유형과 데이터 유형별로 분석하였다. 이를 토대로 기계학습 활용을 위한 학습 데이터세트 구축에 관한 참조모델을 제안하였다. 또한 학습 데이터세트 구축 참조모델을 국제 표준으로 개발하기 위해 대상 표준화 기구의 선정 및 표준화 전략을 제시하였다.