• 제목/요약/키워드: unbalanced data distribution

검색결과 48건 처리시간 0.025초

초전도 전력케이블의 전류 불평형에 관한 연구 (A Study on the Unbalanced Current Distribution of HTS Power Cable)

  • 김재호;박충화
    • 한국안전학회지
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    • 제27권6호
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    • pp.43-47
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    • 2012
  • The unbalance currents flow the High Temperature Superconducting (HTS) power cable caused by asymmetrical fault, harmonic distortion and unbalanced load. That problem causes additional loss and leakage field in the HTS power cable, and deteriorates the electric power quality and stability. In addition, large amounts of unbalanced current can cause negative sequence and ground relays to operate. This paper presents an analysis unbalanced three-phase current distribution in HTS power cable caused by unbalanced load condition and grounding methods using PSCAD/EMTDC. The results obtained through the analysis would provide important data for the design of HTS power cables and valid information for their installation in power system.

지중송전계통에서 배전선 불평형전류 유입에 따른 영향 검토 (Analysis of induced voltage of CCPU with unbalanced current from Distribution Line on Underground Transmission Cable System)

  • 강지원;장태인;홍동석;정채균;윤동수;윤종건;김형호
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2005년도 제36회 하계학술대회 논문집 A
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    • pp.459-461
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    • 2005
  • This paper analyses the induced voltage characteristic of CCPU with unbalanced current from distribution line on underground transmission power cable systems. In switching surge strokes, in order to obtain the data of induced voltage/current on CCPU, the actual proof test carried out. This paper is expected to contribute the establishment of proper protection methods of CCPU against the unbalanced current from distribution line on underground transmission power cable systems.

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문서의 불균등 분포를 고려한 단어 불순도 기반 특징 선택 방법 (An Enhanced Feature Selection Method Based on the Impurity of Words Considering Unbalanced Distribution of Documents)

  • 강진범;양재영;최중민
    • 한국정보과학회논문지:소프트웨어및응용
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    • 제34권9호
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    • pp.804-816
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    • 2007
  • 기계 학습 과정에서 수집된 많은 정보들 중에는 학습하고자 하는 개념과 관련이 없거나 중복된 정보를 가진 경우가 많다. 또한 자료 자체에 오류가 있기도 하다. 이와 같이 학습 모델 생성을 위해 수집된 정보를 신뢰할 수 없다면, 학습 과정에서도 정확한 지식 습득이 어렵다. 그래서 기계 학습은 학습 과정에서 정확한 지식 습득을 위해 특징 선택 방법을 사용한다. 특징 선택은 학습할 클래스와 관련이 없거나 중복된 정보를 학습 모델 생성 이전에 제거함으로써 학습 알고리즘의 성능을 향상시킨다. 기존의 특징선택 방법들은 적절한 특징을 선택하기 위하여 문서가 균등하게 분포되어 있다고 가정한다. 하지만, 실제로는 그렇지 않으며, 문서의 수 또는 문서의 길이가 모두 동일한 학습 예제를 준비하는 것도 매우 어렵다. 본 논문에서는 보다 효율적으로 특징을 선택하기 위해 클래스 별 단어의 불순도와 문서의 불균등 분포를 고려한 특징 선택 방법을 제안한다. 클래스를 대표할 수 있는 특징 후보들을 단어의 불순도 측정을 통해 얻고, 문서의 불균등 분포를 고려하여 특징을 선택한다. 실험을 통해 보다 좋은 성능을 보임을 입증한다.

계층구조적 분류모델을 이용한 심전도에서의 비정상 비트 검출 (Detection of Abnormal Heartbeat using Hierarchical Qassification in ECG)

  • 이도훈;조백환;박관수;송수화;이종실;지영준;김인영;김선일
    • 대한의용생체공학회:의공학회지
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    • 제29권6호
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    • pp.466-476
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    • 2008
  • The more people use ambulatory electrocardiogram(ECG) for arrhythmia detection, the more researchers report the automatic classification algorithms. Most of the previous studies don't consider the un-balanced data distribution. Even in patients, there are much more normal beats than abnormal beats among the data from 24 hours. To solve this problem, the hierarchical classification using 21 features was adopted for arrhythmia abnormal beat detection. The features include R-R intervals and data to describe the morphology of the wave. To validate the algorithm, 44 non-pacemaker recordings from physionet were used. The hierarchical classification model with 2 stages on domain knowledge was constructed. Using our suggested method, we could improve the performance in abnormal beat classification from the conventional multi-class classification method. In conclusion, the domain knowledge based hierarchical classification is useful to the ECG beat classification with unbalanced data distribution.

배전자동화 시스템의 단말장치(FRTU)로부터 취득되는 데이터를 이용한 방사상 배전계통 조류계산 방법에 관한 연구 (A Study on Power Flow Method of Radial Distribution System using a measured data from FRTU in Distribution Automation System)

  • 김형승;최면송;이승재
    • 대한전기학회:학술대회논문집
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    • 대한전기학회 2015년도 제46회 하계학술대회
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    • pp.286-287
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    • 2015
  • Currently, Studies on improving the reliability of power supply is becoming an important issue because of the increase in demand of the electric power system. Therefore necessity of automation in distribution system is increasing day by day. However, a measured voltage data from FRTU of distribution automation system is incorrect because of installation space limits. Therefore there is a need of system analysis method by considering the characteristics of the distribution system. For a distribution system, applying the power flow method of transmission system has some problems, as distribution is radial system and it has unbalanced load. Therefore power flow by considering the characteristics of the distribution system have been studied. Existing power flow analysis of the distribution system has different methods like direct analysis method, backward/forward sweep method, modified method of newton raphson etc. In this paper, an improved power flow analysis method based on backward/forward sweep method is proposed in order to efficiently operate the distribution automation system. The proposed method of power flow has been verified through the result of case study.

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SMOTE와 Light GBM 기반의 불균형 데이터 개선 기법 (Imbalanced Data Improvement Techniques Based on SMOTE and Light GBM)

  • 한영진;조인휘
    • 정보처리학회논문지:컴퓨터 및 통신 시스템
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    • 제11권12호
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    • pp.445-452
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    • 2022
  • 디지털 세상에서 불균형 데이터에 대한 클래스 분포는 중요한 부분이며 사이버 보안에 큰 의미를 차지한다. 불균형 데이터의 비정상적인 활동을 찾고 문제를 해결해야 한다. 모든 트랜잭션의 패턴을 추적할 수 있는 시스템이 필요하지만, 일반적으로 패턴이 비정상인 불균형 데이터로 기계학습을 하면 소수 계층에 대한 성능은 무시되고 저하되며 예측 모델은 부정확하게 편향될 수 있다. 본 논문에서는 불균형 데이터 세트를 해결하기 위한 접근 방식으로 Synthetic Minority Oversampling Technique(SMOTE)와 Light GBM 알고리즘을 이용하여 추정치를 결합하여 대상 변수를 예측하고 정확도를 향상시켰다. 실험 결과는 Logistic Regression, Decision Tree, KNN, Random Forest, XGBoost 알고리즘과 비교하였다. 정확도, 재현율에서는 성능이 모두 비슷했으나 정밀도에서는 2개의 알고리즘 Random Forest 80.76%, Light GBM 97.16% 성능이 나왔고, F1-score에서는 Random Forest 84.67%, Light GBM 91.96% 성능이 나왔다. 이 실험 결과로 Light GBM은 성능이 5개의 알고리즘과 비교하여 편차없이 비슷하거나 최대 16% 향상됨을 접근 방식으로 확인할 수 있었다.

Dynamic Load-Balancing Algorithm Incorporating Flow Distributions and Service Levels for an AOPS Node

  • Zhang, Fuding;Zhou, Xu;Sun, Xiaohan
    • Journal of the Optical Society of Korea
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    • 제18권5호
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    • pp.466-471
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    • 2014
  • An asynchronous optical packet-switching (AOPS) node with load-balancing capability can achieve better performance in reducing the high packet-loss ratio (PLR) and time delay caused by unbalanced traffic. This paper proposes a novel dynamic load-balancing algorithm for an AOPS node with limited buffer and without wavelength converters, and considering the data flow distribution and service levels. By calculating the occupancy state of the output ports, load state of the input ports, and priorities for data flow, the traffic is balanced accordingly. Simulations demonstrate that asynchronous variant data packets and output traffic can be automatically balanced according to service levels and the data flow distribution. A PLR of less than 0.01% can be achieved, as well as an average time delay of less than 0.46 ns.

배전 SCADA 기능을 이용한 고장타입.고장위치 진단 전문가 시스템 (An Expery System for the Diagnosis of the Fault Type and Fault Loaction In the Distribution SCADA System)

  • 고윤석;신덕호;신현용;이기서
    • 대한전기학회논문지:전력기술부문A
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    • 제48권11호
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    • pp.1417-1423
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    • 1999
  • Distribution system can experience the diverse events instantly and permanently. Also, it can experience high impedance fault or line drop under unbalanced situation, Accordingly, it is difficulty to identify the fault location because that data collected from distribution SCADA system may include uncertainty. This paper proposes an expert system, which can infer the faulted location the quickly and exactly for the diverse events in the distribution system. The expert system utilizes distribution SCADA function and collected data, especially, the monitoring mechanism for the normal open position switches is adopted newly in order to recognize the fault type exactly. Also, automated fault location diagnosis strategy is developed in order to minimize the spreading effect of fault obtained from the error of the system operator. The proposed strategy is implemented in C language. Especially, in order to prove the effectiveness of proposed expert system, the several scenario is simulated for the given model system. The real feeders are selected as model system for the simulation.

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가정내의 식품분배에서 남.여의 차이에 대한 연구 (A Study on the Sex Bias in Intrahousehold Food Distribution)

  • 조미숙;강남이
    • 한국식품영양학회지
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    • 제2권2호
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    • pp.31-39
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    • 1989
  • The objective of this study is to collect basic data about sex bias in intrahousehold food distribution, by investigating 124 housekeepers living in Seoul . This Survey was performed using questionnaire about the experience of male-female dietary disparity and the attitudes about sex-differential nutrition Results were summarized as follows ; 1. 38% of housekeepers had been experienced in male-female disparity of food distribution at meal time in her childhood. Protein foods(meats & fishes) and special foods were not distributed evenly to both sexes. 2. The major causes of these unbalanced, sex-differential food distribution was rather masculine priority than food shortage. 3. Compared with the past, male-female dietary disparity was disappeared. However, 47.7% of housekeepers took more care for son's meals than daughter's, consciously or unconsciously.

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Evaluation of the Population Distribution Using GIS-Based Geostatistical Analysis in Mosul City

  • Ali, Sabah Hussein;Mustafa, Faten Azeez
    • 대한원격탐사학회지
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    • 제36권1호
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    • pp.83-92
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    • 2020
  • The purpose of this work was to apply geographical information system (GIS) for geostatistical analyzing by selecting a semi-variogram model to quantify the spatial correlation of the population distribution with residential neighborhoods in the both sides of Mosul city. Two hundred and sixty-eight sample sites in 240 ㎢ are adopted. After determining the population distribution with respect to neighborhoods, data were inserted to ArcGIS10.3 software. Afterward, the datasets was subjected to the semi-variogram model using ordinary kriging interpolation. The results obtained from interpolation method showed that among the various models, Spherical model gives best fit of the data by cross-validation. The kriging prediction map obtained by this study, shows a particular spatial dependence of the population distribution with the neighborhoods. The results obtained from interpolation method also indicates an unbalanced population distribution, as there is no balance between the size of the population neighborhoods and their share of the size of the population, where the results showed that the right side is more densely populated because of the small area of residential homes which occupied by more than one family, as well as the right side is concentrated in economic and social activities.