• 제목/요약/키워드: Multidimensional data generation

검색결과 14건 처리시간 0.02초

VNURBS기반의 다차원 불균질 볼륨 객체의 표현: 모델링 및 응용 (Volumetric NURBS Representation of Multidimensional and Heterogeneous Objects: Modeling and Applications)

  • 박상근
    • 한국CDE학회논문집
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    • 제10권5호
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    • pp.314-327
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    • 2005
  • This paper describes the volumetric data modeling and analysis methods that employ volumetric NURBS or VNURBS that represents heterogeneous objects or fields in multidimensional space. For volumetric data modeling, we formulate the construction algorithms involving the scattered data approximation and the curvilinear grid data interpolation. And then the computational algorithms are presented for the geometric and mathematical analysis of the volume data set with the VNURBS model. Finally, we apply the modeling and analysis methods to various field applications including grid generation, flow visualization, implicit surface modeling, and image morphing. Those application examples verify the usefulness and extensibility of our VNUBRS representation in the context of volume modeling and analysis.

효율적인 ROLAP 큐브 생성 방법 (An Efficient ROLAP Cube Generation Scheme)

  • 김명;송지숙
    • 한국정보과학회논문지:데이타베이스
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    • 제29권2호
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    • pp.99-109
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    • 2002
  • ROLAP(Relational Online Analytical Processing)은 다차원적 데이타 분석을 위한 제반 기술로써, 전사적 데이타 웨어하우스로부터 고부가가치를 창출하는데 필수적인 기술이다. 질의처리 성능을 높이기 위해서 대부분의 ROLAP 시스템들은 집계 테이블들을 미리 계산해 둔다. 이를 큐브 생성이라고 하며, 이 과정에서 기존의 방법들은 데이타를 여러 차례 정렬해야 하고 이는 큐브 생성의 성능을 저하시키는 큰 요인이다. (1)은 MOLAP 큐브 생성 알고리즘을 통해 간접적으로 ROLAP 큐브를 생성하는 것이 훨씬 빠르다는 것을 보였다. 본 연구에서도 MOLAP 큐브 생성 알고리즘을 사용한 신속하고 확장적인 ROLAP 큐브 생성 알고리즘을 제시하였다. 분석할 입력 사실 테이블을 적절하게 조각내어 메모리 효율을 높였고, 집계 테이블들을 최소 부모 집계 테이블로부터 생성하도록 하여 큐브 생성 시간을 단축하였다. 제안한 방법의 효율성은 실험을 통해 검증하였다.

청크 기반 MOLAP 큐브를 위한 비트맵 인덱스 (A Bitmap Index for Chunk-Based MOLAP Cubes)

  • 임윤선;김명
    • 한국정보과학회논문지:데이타베이스
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    • 제30권3호
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    • pp.225-236
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    • 2003
  • 다차원 온라인 분석처리 (MOLAP, Multidimensional On-line Analytical Processing) 시스템은 데이타를 큐브라고 불리는 다차원 배열에 저장하고 배열 인덱스를 이용하여 데이타를 엑세스한다. 큐브를 디스크에 저장할 때 각 변의 길이가 같은 작은 청크들로 조각내어 저장하게 되면 데이타 클러스터링 효과를 통해 모든 차원에 공평한 질의 처리 성능이 보장되며, 이러한 큐브 저장 방법을 ‘청크기반 MOLAP 큐브’ 저장 방법이라고 부른다. 공간 효율성을 높이기 위해 밀도가 낮은 청크들은 또한 압축되어 저장되는데 이 과정에서 데이타의 상대 위치 정보가 상실되며 원하는 청크들을 신속하게 엑세스하기 위해 인덱스가 필요하게 된다. 본 연구에서는 비트맵을 사용하여 청크기반 MOLAP 큐브를 인덱싱하는 방법을 제시한다. 인덱스는 큐브가 생성될 때 동시에 생성될 수 있으며, 인덱스 수준에서 청크들의 상대 위치 정보를 보존하여 청크들을 상수 시간에 검색할 수 있도록 하였고, 인덱스 블록마다 가능한 많은 청크들의 위치 정보가 포함되도록 하여 범위 질의를 비롯한 OLAP 주요 연산 처리 시에 인덱스 엑세스 회수를 크게 감소시켰다. 인덱스의 시간 공간적 효율성은 다차원 인덱싱 기법인 UB-트리, 그리드 파일과의 비교를 통해 검증하였다.

연속형 중심-주변 네트워크 모형을 통한 세대 간 세대 내 디지털 격차 해소를 위한 전략 도출 (Deriving a Strategy for Resolving the Inter-and Intra-generational Digital Divide based on the Continuous Core-periphery Network Model)

  • 유인진;하상집;박도형
    • 한국정보시스템학회지:정보시스템연구
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    • 제31권1호
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    • pp.115-146
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    • 2022
  • Purpose The purpose of this study is to find meaningful insights using regression analysis to resolve the digital divide between generations. In the analysis process of this study, social network analysis was applied to approach it with a perspective differentiated from the existing statistical techniques. Design/methodology/approach This study used a social network analysis methodology that transforms and analyzes government-led survey data into relational data. First, the cross-sectional data were converted into relational data, and a continuous core-periphery model and multidimensional scaling method were applied. Afterwards, the relationship between various factors affecting the digital divide and the difference in influence were analyzed by generation. Findings According to the network analysis results, it can be seen that all generations commonly use 'information and news search' and 'living information service'. However, it can be seen that the centrally used services of each generation are clearly different from each other, and the degree of linkage between the services is also clearly different. In addition, it can be seen that the relationship between factors influencing the digital divide by generation is also different.

적대적 학습 기반 오토인코더(ATAE)를 이용한 다차원 상수도관망 데이터 생성 (Multidimensional data generation of water distribution systems using adversarially trained autoencoder)

  • 김세형;전상훈;정동휘
    • 한국수자원학회논문집
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    • 제56권7호
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    • pp.439-449
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    • 2023
  • 최근 계측 기술의 발전으로 압력계와 유량계 등 다양한 센서를 설치하여 상수도관망의 상태를 효과적으로 파악할 수 있게 되었으나, 도시가 광범위하게 개발됨에 따라 계측 신뢰도에 영향을 미치는 변수는 다양해지고 있다. 특히 상수도관망 분석에 중요한 영향력을 가지는 수요 데이터의 경우 직접 계측의 난이도가 높고 결측이 발생하기 쉬운 것으로 알려져 데이터 생성의 중요도가 증가하고 있다. 본 논문에서는 상수도관망에서 누락된 데이터를 정확하게 생성하기 위해 생성적 딥러닝 모델에 기반한 적대적 학습 기반 오토인코더(ATAE) 모델을 제안한다. 제안된 모델은 판별 신경망과 생성 신경망의 두 가지 신경망의 적대적 학습을 사용하여 압력 데이터로부터 수요 데이터를 생성한다. 학습이 완료된 ATAE 모델의 생성 신경망은 관망의 계측되는 압력 데이터가 존재하는 경우, 그로부터 추정된 관망 수요 데이터를 제공할 수 있다. ATAE 모델은 미국 텍사스주 오스틴의 실제 상수도망에 적용되어 성능이 검증되었다. 수요 및 압력 시계열 데이터의 불확실성 정도에 따른 ATAE 예측 결과의 정확도를 비교하여 데이터 불확실성의 영향을 분석하였으며, 또한 수요 수준에 따른 데이터 수집 기간별 생성 결과를 비교하여 이에 따른 데이터 생성 성능을 검토하였다.

Development of the Unified Database Design Methodology for Big Data Applications - based on MongoDB -

  • Lee, Junho;Joo, Kyungsoo
    • 한국컴퓨터정보학회논문지
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    • 제23권3호
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    • pp.41-48
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    • 2018
  • The recent sudden increase of big data has characteristics such as continuous generation of data, large amount, and unstructured format. The existing relational database technologies are inadequate to handle such big data due to the limited processing speed and the significant storage expansion cost. Current implemented solutions are mainly based on relational database that are no longer adapted to these data volume. NoSQL solutions allow us to consider new approaches for data warehousing, especially from the multidimensional data management point of view. In this paper, we develop and propose the integrated design methodology based on MongoDB for big data applications. The proposed methodology is more scalable than the existing methodology, so it is easy to handle big data.

신경망이론을 이용한 강우예측모형의 개발 (Development of Rainfall Forecastion Model Using a Neural Network)

  • 오남선
    • 한국지능시스템학회:학술대회논문집
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    • 한국퍼지및지능시스템학회 1996년도 추계학술대회 학술발표 논문집
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    • pp.253-256
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    • 1996
  • Rainfall is one of the major and complicated elements of hydrologic system. Accurate prediction of rainfall is very important to mitigate storm damage. The neural network is a good model to be applied for the classification problem, large combinatorial optimization and nonlinear mapping. In this dissertation, rainfall predictions by the neural network theory were presented. A multi-layer neural network was constructed. The network learned continuous-valued input and output data. The network was used to predict rainfall. The online, multivariate, short term rainfall prediction is possible by means of the developed model. A multidimensional rainfall generation model is applied to Seoul metropolitan area in order to generate the 10-minute rainfall. Application of neural network to the generated rainfall shows good prediction. Also application of neural network to 1-hour real data in Seoul metropolitan area shows slightly good predictions.

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Development of HDF Browser for the Utilization of EOC Imagery

  • Seo, Hee-Kyung;Ahn, Seok-Beom;Park, Eun-Chul;Hahn, Kwang-Soo;Choi, Joon-Soo;Kim, Choen
    • 대한원격탐사학회지
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    • 제18권1호
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    • pp.61-69
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    • 2002
  • The purpose of Electro-Optical Camera (EOC), the primary payload of KOMPSAT-1, is to collect high resolution visible imagery of the Earth including Korean Peninsula. EOC images will be distributed to the public or many user groups including government, public corporations, academic or research institutes. KARI will offer the online service to the users through internet. Some application, e.g., generation of Digital Elevation Model (DEM), needs a secondary data such as satellite ephemeris data, attitude data to process the EOC imagery. EOC imagery with these ancillary information will be distributed in a file of Hierarchical Data Format (HDF) file formal. HDF is a physical file format that allows storage of many different types of scientific data including images, multidimensional data arrays, record oriented data, and point data. By the lack of public domain softwares supporting HDF file format, many public users may not access EOC data without difficulty. The purpose of this research is to develop a browsing system of EOC data for the general users not only for scientists who are the main users of HDF. The system is PC-based and huts user-friendly interface.

베트남 MZ세대의 다차원적 소비가치에 대한 연구 -소비가치 요인과 인구통계학적 특성 및 글로벌 소비성향의 관련성을 중심으로- (A Study on the Multidimensional Consumption Value of Vietnamese MZ Generation -Focusing on the Relationship between Consumption Value Factors, Demographic Characteristics, and Global Consumption Propensity-)

  • 추호정;장주연;백은수;이하경;김하빈
    • 한국의류학회지
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    • 제46권5호
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    • pp.848-867
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    • 2022
  • As an emerging market with rapid economic growth, while being a key region of the K-culture expansion, Vietnam draws increasing scientific attention. This study focuses on the MZ generation, Vietnam's leading consumer group, revealing their consumption value structure. An online survey was used for data collection purposes, investigating 368 Vietnamese consumers between 18-37 years of age. Six value dimensions were derived as results of the present analysis: functional, emotional, social, ethical, self-expression, and autonomy-oriented value. Among them, functional value includes two sub-dimensions of utility and price, while emotional value entails three sub-dimensions, namely hedonism, novelty, and aesthetics. 'Self-expression value' and 'autonomy-oriented value', reflecting the characteristics of the MZ generation, who actively express themselves and respect proactive decision-making, are becoming important standards of the consumption attitude of young Vietnamese. Moreover, the pursuit of 'novelty' was derived as a factor reflecting emotional values, revealing an association between hedonic consumption, and seeking for newness and difference. Furthermore, the relationships between each consumption value dimension, respective demographic characteristics, and global consumption propensity were investigated. The present findings aim to provide insights into young Vietnamese consumers' attitudes and intend to serve as a foundation for future research.

한국 암 특이형 삶의 질 측정도구(C-QOL) 개발 및 평가 (Development and Psychometric Evaluation of a Quality of Life Scale for Korean Patients with Cancer(C-QOL))

  • 이은현
    • 대한간호학회지
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    • 제37권3호
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    • pp.324-333
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    • 2007
  • Purpose: The purpose of this study was to develop and evaluate a quality of life scale for Korean patients with cancer (C-QOL). Methods: The C-QOL was developed and validated as follows, item generation, pilot study, and psychometric tests. A total of 337 patients diagnosed with stomach, liver, lung, colon, breast, or cervix cancer were recruited. The patients were asked to complete the preliminary questionnaire comprising the content-validated items, the SF-36, and the ECOG performance status. The obtained data was analyzed using descriptive statistics, factor analysis, multidimensional scaling (MDS), multitrait/multi-item matrix, ANOVA, t-test, and Cronbach's alpha. Results: Preliminarily twenty-six items were generated through content validity and a pilot study. Factor analysis and MDS extracted a total of 21 items with a 5-point Likert-type scale (C-QOL). The C-QOL included five subscales: physical status (6 items), emotional status (6 items), social function (3 items), concern status (2 items), and coping function (4 items). The C-QOL established content validity, construct validity, item convergent and discriminant validity, known-groups validity, reliability, and sensitivity. Conclusion: The Newly developed C-QOL is an easily applicable instrument which established psychometric properties and reflected Korean culture. It is recommended for further study to examine the responsiveness of the C-QOL using a longitudinal research design.