• 제목/요약/키워드: national statistical system

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북한 산림황폐지 복구를 위한 REDD 메커니즘 사전 검토 (A Preliminary Review of REDD Mechanism for Rehabilitating Forest Degradation of North Korea)

  • 배재수
    • 한국산림과학회지
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    • 제102권4호
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    • pp.491-498
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    • 2013
  • 북한 산림황폐화를 방지하기 위한 남북한 협력 수단으로 REDD 메커니즘의 적용 가능성을 사전 검토하였다. 북한은 기후변화협약이 국가 단위의 REDD+ 메커니즘의 이행 조건으로 요구한 REDD+ 국가 전략 수립과 산림모니터링 시스템 등을 구비하지 못하였다. 또한 북한은 REDD 메커니즘을 적용하기 위한 토대인 산림자원 통계의 신뢰성 역시 부족하였다. 인공위성 영상자료를 활용하여 추정한 산림면적 자료를 제외한 대부분의 산림자원 통계는 신뢰할만한 산림조사 결과를 바탕으로 하지 않고 단순한 가정을 기초로 추정된 것이다. 이러한 검토 결과는 북한이 산림황폐지 복구 수단으로 REDD 메커니즘을 당장 적용할 수 없다는 것을 보여준다. 이를 바탕으로 향후 REDD 메커니즘을 북한에 적용하기 위한 연구 주제와 남북한 산림부문의 협력 의제를 제안하였다. (1) 최소한 2000년 이후 북한지역의 토지이용변화 탐지, 탄소축적변화 추정 및 산림전용 산림황폐화의 원인 구명 연구가 필요하다. (2) 남북한의 REDD+ 협력은 북한의 'REDD+ 국가 전략 수립' 및 '국가산림조사 체계 구축' 부문에 초점을 맞추어야 한다.

Evaluation of the classification method using ancestry SNP markers for ethnic group

  • Lee, Hyo Jung;Hong, Sun Pyo;Lee, Soong Deok;Rhee, Hwan seok;Lee, Ji Hyun;Jeong, Su Jin;Lee, Jae Won
    • Communications for Statistical Applications and Methods
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    • 제26권1호
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    • pp.1-9
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    • 2019
  • Various probabilistic methods have been proposed for using interpopulation allele frequency differences to infer the ethnic group of a DNA specimen. The selection of the statistical method is critical because the accuracy of the statistical classification results vary. For the ancestry classification, we proposed a new ancestry evaluation method that estimate the combined ethnicity index as well as compared its performance with various classical classification methods using two real data sets. We selected 13 SNPs that are useful for the inference of ethnic origin. These single nucleotide polymorphisms (SNPs) were analyzed by restriction fragment mass polymorphism assay and followed by classification among ethnic groups. We genotyped 400 individuals from four ethnic groups (100 African-American, 100 Caucasian, 100 Korean, and 100 Mexican-American) for 13 SNPs and allele frequencies that differed among the four ethnic groups. Additionally, we applied our new method to HapMap SNP genotypes for 1,011 samples from 4 populations (African, European, East Asian, and Central-South Asian). Our proposed method yielded the highest accuracy among statistical classification methods. Our ethnic group classification system based on the analysis of ancestry informative SNP markers can provide a useful statistical tool to identify ethnic groups.

Applications of NMR spectroscopy based metabolomics: a review

  • Yoon, Dahye;Lee, Minji;Kim, Siwon;Kim, Suhkmann
    • 한국자기공명학회논문지
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    • 제17권1호
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    • pp.1-10
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    • 2013
  • Metabolomics is the study which detects the changes of metabolites level. Metabolomics is a terminal view of the biological system. The end products of the metabolism, metabolites, reflect the responses to external environment. Therefore metabolomics gives the additional information about understanding the metabolic pathways. These metabolites can be used as biomarkers that indicate the disease or external stresses such as exposure to toxicant. Many kinds of biological samples are used in metabolomics, for example, cell, tissue, and bio fluids. NMR spectroscopy is one of the tools of metabolomics. NMR data are analyzed by multivariate statistical analysis and target profiling technique. Recently, NMR-based metabolomics is a growing field in various studies such as disease diagnosis, forensic science, and toxicity assessment.

고해상도 동해 연안 파랑예측모델 구축을 위한 통계적 규모축소화 방법 적용 (An Application of Statistical Downscaling Method for Construction of High-Resolution Coastal Wave Prediction System in East Sea)

  • 지준범;조일성;이규태;이원학
    • 한국지구과학회지
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    • 제40권3호
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    • pp.259-271
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    • 2019
  • 동해 연안지역의 고해상도 파랑예측을 위하여 통계적 규모축소화 방안을 적용하여 고해상도 동해 연안 파랑예측시스템을 구축하였다. 예측시스템을 구축하기 위하여 기상청 현업에서 예측된 동해 및 남해 연안파랑예측모델과 전구파랑예측모델의 예측결과를 이용하였다. 3일까지는 연안파랑예측모델들의 결과를 그대로 활용하였고 3일 이후 7일까지는 전구파랑예측모델의 예측결과를 통계적 규모축소화 방안(역거리 가중 내삽방법과 조건부합성방법)을 적용하여 예측하였다. 예측된 고해상도 연안예측시스템을 이용하여 예측된 파고의 2차원 공간분포는 연안예측모델의 초기장(분석장)과 자기상관관계를 이용하여 검증하였고 부이 등 해양관측소 자료를 이용하여 파고 및 풍속 예측을 검증되었다. 수치모델의 예측성능과 유사하게 초기시간에는 예측성능이 높게 나타났으나 시간이 지남에 따라 예측성능이 점진적으로 감소되었다. 전체 기간의 파고 예측결과를 파고 관측자료를 이용하여 검증하였을 때 역거리 가중 내삽과 조건부합성방법 적용에 따른 상관계수와 평균 제곱근 오차는 0.46과 0.34 m에서 0.6과 0.28 m로 개선되었다.

Dynamics Analysis of a Small Training Boat ant Its Optimal Control

  • Nakatani, Toshihiko;End, Makoto;Yamamoto, Keiichiro;Kanda, Taishi
    • 제어로봇시스템학회:학술대회논문집
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    • 제어로봇시스템학회 2005년도 ICCAS
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    • pp.342-345
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    • 2005
  • This paper describes dynamics analysis of a small training boat and a new type of ship's autopilot not only to keep her course but also to reduce her roll motion. Firstly, statistical analysis through multi-variate auto regressive model is carried out using the real data collected from the sea trial on an actual small training boat Sazanami after the navigational system of the boat was upgraded. It is shown that the roll motion is strongly influenced by the rudder motion and it is suggested that there is a possibility of reducing the roll motion by controlling the rudder order properly. Based on this observation, a new type of ship's autopilot that takes the roll motion into account is designed using the muti-variate modern control theory. Lastly, digital simulations by white noise are carried out in order to evaluate the proposed system and a typical result is demonstrated. As results of simulations, the proposed autopilot had good performance compared with the original data.

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A Robust Wavelet-Based Digital Watermarking Using Statistical Characteristic of Image and Human Visual System

  • Kim, Bong-Seok;Kwon, Kee-Koo;Kwon, Seong-Geun;Park, Kyung-Nam
    • 대한전자공학회:학술대회논문집
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    • 대한전자공학회 2002년도 ITC-CSCC -2
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    • pp.1019-1022
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    • 2002
  • The current paper proposes a wavelet-based digital watermarking algorithm using statistical characteristic of image and human visual system (HVS). The original image is decomposed into 4-level using a discrete wavelet transform (DWT), then the watermark is embedded into the perceptually significant coefficients (PSCs) of the image. In general, the baseband of a wavelet-decomposed image includes most of the energy of the original image, thereby having a crucial effect on the image quality. As such, to retain invisibility, the proposed algorithm does not utilize the baseband. Plus, the wavelet coefficients on the lowest level are also excluded in the watermark-embedding step, because these coefficients call be easily eliminated and modified by lossy compression and common signal processing. As such, the PSCs are selected from all subbands, except for the baseband and subbands on the lowest level. Finally, using the selected PSCs, the watermark is then embedded based on spatial masking of the wavelet coefficients so as to provide invisibility and robustness. Computer simulation results confirmed that the proposed watermarking algorithm was more invisible and robust than conventional algorithms.

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모바일시대의 기초통계학 교육용 디지털 신경시스템: SmartNote (A Digital Nervous System for Elementary Statistics Education in the Mobile Age: SmartNote)

  • 한경수
    • Communications for Statistical Applications and Methods
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    • 제18권3호
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    • pp.333-342
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    • 2011
  • 전통적인 강의실의 기초통계학 수업에서 많은 학생들이 수업에 집중하지 못하고 있다. 수업 시간에 졸거나, 잡담하거나, 휴대폰을 만지작거리면서 다른 생각에 잠겨 있다. 인터넷이 가능한 컴퓨터실에서의 강의와 실습은 인터넷이 제공하는 콘텐츠와 부단히 경쟁을 해야 한다. 이러한 문제를 조금이나마 해결해 보려고 시도한 방안이 교수와 학생을 하나의 유무선 네트워크로 묶는 교육용 디지털 신경시스템 하에서 기초통계학을 가르치고 학생들이 공부하게 하자는 것이다.

정서 인지를 위한 뇌파 전극 위치 및 주파수 특징 분석 (Analysis of Electroencephalogram Electrode Position and Spectral Feature for Emotion Recognition)

  • 정성엽;윤현중
    • 산업경영시스템학회지
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    • 제35권2호
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    • pp.64-70
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    • 2012
  • This paper presents a statistical analysis method for the selection of electroencephalogram (EEG) electrode positions and spectral features to recognize emotion, where emotional valence and arousal are classified into three and two levels, respectively. Ten experiments for a subject were performed under three categorized IAPS (International Affective Picture System) pictures, i.e., high valence and high arousal, medium valence and low arousal, and low valence and high arousal. The electroencephalogram was recorded from 12 sites according to the international 10~20 system referenced to Cz. The statistical analysis approach using ANOVA with Tukey's HSD is employed to identify statistically significant EEG electrode positions and spectral features in the emotion recognition.

Dynamic and reliability analysis of stochastic structure system using probabilistic finite element method

  • Moon, Byung-Young;Kang, Gyung-Ju;Kang, Beom-Soo;Cho, Dae-Seung
    • Structural Engineering and Mechanics
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    • 제18권1호
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    • pp.125-135
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    • 2004
  • Industrial structure systems may have nonlinearity, and are also sometimes exposed to the danger of random excitation. This paper proposes a method to analyze response and reliability design of a complex nonlinear structure system under random excitation. The nonlinear structure system which is subjected to random process is modeled by finite element method. The nonlinear equations are expanded sequentially using the perturbation theory. Then, the perturbed equations are solved in probabilistic methods. Several statistical properties of random process that are of interest in random vibration applications are reviewed in accordance with the nonlinear stochastic problem.

Comparison between the Application Results of NNM and a GIS-based Decision Support System for Prediction of Ground Level SO2 Concentration in a Coastal Area

  • Park, Ok-Hyun;Seok, Min-Gwang;Sin, Ji-Young
    • Environmental Engineering Research
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    • 제14권2호
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    • pp.111-119
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    • 2009
  • A prototype GIS-based decision support system (DSS) was developed by using a database management system (DBMS), a model management system (MMS), a knowledge-based system (KBS), a graphical user interface (GUI), and a geographical information system (GIS). The method of selecting a dispersion model or a modeling scheme, originally devised by Park and Seok, was developed using our GIS-based DSS. The performances of candidate models or modeling schemes were evaluated by using a single index(statistical score) derived by applying fuzzy inference to statistical measures between the measured and predicted concentrations. The fumigation dispersion model performed better than the models such as industrial source complex short term model(ISCST) and atmospheric dispersion model system(ADMS) for the prediction of the ground level $SO_2$ (1 hr) concentration in a coastal area. However, its coincidence level between actual and calculated values was poor. The neural network models were found to improve the accuracy of predicted ground level $SO_2$ concentration significantly, compared to the fumigation models. The GIS-based DSS may serve as a useful tool for selecting the best prediction model, even for complex terrains.