• 제목/요약/키워드: Data Interval

검색결과 3,370건 처리시간 0.038초

구간데이터분석을 위한 형식개념분석기반의 분류 (A FCA-based Classification Approach for Analysis of Interval Data)

  • 황석형;김응희
    • 한국컴퓨터정보학회논문지
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    • 제17권1호
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    • pp.19-30
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    • 2012
  • 다양한 정보기기와 소셜네트워크시스템, 그리고, 클라우드컴퓨팅환경 등과 같은 인터넷기반의 인프라를 토대로 분산화되고 공유가능한 데이터가 폭발적으로 증가하고 있다. 최근에는 데이터에 내재되어 있는 유용한 정보와 지식을 추출하고 분석 및 분류하기 위한 데이터분석 및 마이닝기법으로서, 이진데이터 또는 다치데이터에 관한 형식개념분석기법에 관한 연구가 활발하게 진행되어 다양한 분야에서 성공적으로 활용되고 있다. 그러나, 각 속성들이 구간값을 갖는 형태로 이루어진 구간데이터의 분석에 대한 형식개념분석에 관한 연구는 많이 수행되지 못하였다. 본 논문에서는, 구간데이터를 분석하기 위하여 형식개념분석기법을 기반으로 하는 새로운 분류기법을 제안한다. 또한, 구간데이터의 이진화, 개념추출 및 개념계층구조 구축 등, 본 논문에서 제안한 새로운 분류기법을 지원하기 위한 도구(iFCA)의 구축에 관하여 소개하고, 마지막으로, 몇가지 실세계의 데이터를 대상으로 한 실험결과를 토대로, 본 논문에서 제안하는 분류기법의 유용성에 대해서 설명한다.

전력전송구간을 분할하여 데이터 신호를 전송하는 전력선 통신방법 (Power Line Communication Method with Splitting of Power Transmission Interval)

  • 조재승;황일규
    • 전력전자학회논문지
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    • 제17권3호
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    • pp.252-258
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    • 2012
  • This paper studies the power line communication method with splitting of power transmission interval in the small DC power system using pulse width modulation. The method divides the entire interval for transmitting power and data into a power transmission interval where power is supplied to a load and a data transmission interval where power from the power supply to the load is disconnected. The circuit is designed for the implementation to separate the power line from the power supply and load. The results of tests show the feasibility of the proposed power line communication method.

Effect of Input Data Video Interval and Input Data Image Similarity on Learning Accuracy in 3D-CNN

  • Kim, Heeil;Chung, Yeongjee
    • International Journal of Internet, Broadcasting and Communication
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    • 제13권2호
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    • pp.208-217
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    • 2021
  • 3D-CNN is one of the deep learning techniques for learning time series data. However, these three-dimensional learning can generate many parameters, requiring high performance or having a significant impact on learning speed. We will use these 3D-CNNs to learn hand gesture and find the parameters that showed the highest accuracy, and then analyze how the accuracy of 3D-CNN varies through input data changes without any structural changes in 3D-CNN. First, choose the interval of the input data. This adjusts the ratio of the stop interval to the gesture interval. Secondly, the corresponding interframe mean value is obtained by measuring and normalizing the similarity of images through interclass 2D cross correlation analysis. This experiment demonstrates that changes in input data affect learning accuracy without structural changes in 3D-CNN. In this paper, we proposed two methods for changing input data. Experimental results show that input data can affect the accuracy of the model.

Interval Type-2 TSK 퍼지논리시스템 기반 다중 퍼지 예측시스템 설계 (Design of Multiple Fuzzy Prediction System based on Interval Type-2 TSK Fuzzy Logic System)

  • 방영근;이철희
    • 한국지능시스템학회논문지
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    • 제20권3호
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    • pp.447-454
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    • 2010
  • 본 논문은 예측 시스템의 성능을 개선하기 위해 비선형데이터의 내재된 특성이나 불확실성을 보다 효과적으로 반영할 수 있는 Interval Type-2 TSK 퍼지논리 시스템 기반 다중 퍼지 예측시스템의 설계를 다룬다. 본 논문에 제시된 다중 예측시스템들은 데이터의 비선형적 특성들을 효과적으로 고려하기 위해 설계되며, 각각의 시스템은 Type-1 TSK 퍼지논리나 다른 방법들에 비해 데이터의 불확실성을 충분히 반영할 수 있는 Interval Type-2 TSK 퍼지논리를 기반으로 구현된다. 또한, 1차 차분변환 과정을 통해, 데이터의 원형으로부터 최적의 차분데이터를 생성하고, 이들을 각 시스템의 입력으로 사용함으로써 시스템 설계 시 보다 안정된 통계적 정보를 제공할 수 있도록 한다. 마지막으로, 두 개의 전형적인 시계열 데이터의 예측 시뮬레이션을 통해 제안된 방법의 효용성을 검증한다.

The Method to Setup the Path Loss Model by the Partial Interval Analysis in the Cellular Band

  • Park, Kyung-Tae;Bae, Sung-Hyuk
    • 융합신호처리학회논문지
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    • 제14권2호
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    • pp.105-109
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    • 2013
  • There are the free space model, the direct-path and ground reflected model, Egli model, Okumura-Hata model in the representative propagational models. The measured results at the area of PNG area were used as the experimental data in this paper. The new proposed partial interval analysis method is applied on the measured propagation data in the cellular band. The interval for the analysis is divided from the entire 30 Km distance to 5 Km, and next to 1 Km. The best-fit propagation models are chosen on all partial intervals. The means and standard deviations are calculated for the differences between the measured data and all partial interval models. By using the 5 Km- or 1 Km- partial interval analysis, the standard deviation between the measured data and the partial propagation models was improved more than 1.7 dB.

A Reporting Interval Adaptive, Sensor Control Platform for Energy-saving Data Gathering in Wireless Sensor Networks

  • Choi, Wook;Lee, Yong;Kim, Sang-Chul
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제5권2호
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    • pp.247-268
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    • 2011
  • Due to the application-specific nature of wireless sensor networks, the sensitivity to such a requirement as data reporting interval varies according to the type of application. Such considerations require an application-specific, parameter tuning paradigm allowing us to maximize energy conservation prolonging the operational network lifetime. In this paper, we propose a reporting interval adaptive, sensor control platform for energy-saving data gathering in wireless sensor networks. The ultimate goal is to extend the network lifetime by providing sensors with high adaptability to application-dependent or time-varying, reporting interval requirements. The proposed sensor control platform is based upon a two phase clustering (TPC) scheme which constructs two types of links within each cluster - namely, direct link and relay link. The direct links are used for control and time-critical, sensed data forwarding while the relay links are used only for multi-hop data reporting. Sensors opportunistically use the energy-saving relay link depending on the user reporting, interval constraint. We present factors that should be considered in deciding the total number of relay links and how sensors are scheduled for sensed data forwarding within a cluster for a given reporting interval and link quality. Simulation and implementation studies demonstrate that the proposed sensor control platform can help individual sensors save a significant amount of energy in reporting data, particularly in dense sensor networks. Such saving can be realized by the adaptability of the sensor to the reporting interval requirements.

A Measure of Agreement for Multivariate Interval Observations by Different Sets of Raters

  • Um, Yong-Hwan
    • Journal of the Korean Data and Information Science Society
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    • 제15권4호
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    • pp.957-963
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    • 2004
  • A new agreement measure for multivariate interval data by different sets of raters is proposed. The proposed approach builds on Um's multivariate extension of Cohen's kappa. The proposed measure is compared with corresponding earlier measures based on Berry and Mielke's approach and Janson and Olsson approach, respectively. Application of the proposed measure is exemplified using hypothetical data set.

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Quadratic Loss Support Vector Interval Regression Machine for Crisp Input-Output Data

  • Hwang, Chang-Ha
    • Journal of the Korean Data and Information Science Society
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    • 제15권2호
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    • pp.449-455
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    • 2004
  • Support vector machine (SVM) has been very successful in pattern recognition and function estimation problems for crisp data. This paper proposes a new method to evaluate interval regression models for crisp input-output data. The proposed method is based on quadratic loss SVM, which implements quadratic programming approach giving more diverse spread coefficients than a linear programming one. The proposed algorithm here is model-free method in the sense that we do not have to assume the underlying model function. Experimental result is then presented which indicate the performance of this algorithm.

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인공신경망과 대기부식환경 모니터링 데이터를 이용한 항공기 세척주기 결정 알고리즘 (Algorithm for Determining Aircraft Washing Intervals Using Atmospheric Corrosion Monitoring of Airbase Data and an Artificial Neural Network)

  • 권혁준;이두열
    • Corrosion Science and Technology
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    • 제22권5호
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    • pp.377-386
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    • 2023
  • Aircraft washing is performed periodically for corrosion control. Currently, the aircraft washing interval is qualitatively set according to the geographical conditions of each base. We developed a washing interval determination algorithm based on atmospheric corrosion environment monitoring data at the Republic of Korea Air Force (ROKAF) bases and United States Air Force (USAF) bases to determine the optimal interval. The main factors of the washing interval decision algorithm were identified through hierarchical clustering, sensitivity analysis, and analysis of variance, and criteria were derived. To improve the classification accuracy, we developed a washing interval decision model based on an artificial neural network (ANN). The ANN model was calibrated and validated using the atmospheric corrosion environment monitoring data and washing intervals of the USAF bases. The new algorithm returned a three-level washing interval, depending on the corrosion rate of steel and the results of the ANN model. A new base-specific aircraft washing interval was proposed by inputting the atmospheric corrosion environment monitoring results of the ROKAF bases into the algorithm.

SWAT-CUP을 이용한 8일간격 유량측정자료의 일유량 확장 가능성 평가 (Evaluation of the Possibility of Daily Flow Data Generation from 8-Day Interval Measured Flow Data using SWAT-CUP)

  • 정재운;조소현;임병진;오태윤;함상인;김갑순
    • 한국물환경학회지
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    • 제28권4호
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    • pp.595-600
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    • 2012
  • This study is to assess the application of SWAT-CUP(Soil and Water Assessment Tool-Calibration Uncertainty Programs) and to extend daily flow data from 8-day interval flow data which has been measured by Korean Ministry of Environment(MOE). Model sensitivity analysis and calibration were performed with sequential uncertainty fitting(SUIF-2), which is one of the programs interfaced with SWAT, in the package SWAT-CUP. The most sensitive parameters were SOL_K.sol, CH_N2.rte, CN2.mgt, SOL_BD.sol, ALPHA_BF.gw, ALPHA_BNK.rte, SOL_AWC.sol, CH_K2.rte, SFTMP.bsn, GW_DELAY.gw. Following the sensitivity analysis, SWAT-CUP calibration was carried out using 8-day interval flow data from January 2008 to December 2010. The results were then assessed based on the visual agreement and simulated flow plots and the performance statistics generated $R^2$ and NSE which are 0.71 and 0.61 respectively. Results of these statistics indicated that there was a good agreement between the observed and simulated flow. To extend daily flow data from 8-day interval flow data, parameters, which were estimated by SWAT-CUP, re-entered for SWAT model. As a result, the observed flow data were found to reflect the trend of simulated flow data. From these results, it is thought that this method could be used to provide daily flow data using 8-day interval flow data.