• 제목/요약/키워드: Complex Wavelet Transform

검색결과 93건 처리시간 0.021초

발전기의 고장 판별을 위한 웨이브릿 변환의 적용 (Application of Wavelet Transform for Fault Discriminant of Generator)

  • 박철원
    • 전기학회논문지P
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    • 제64권1호
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    • pp.35-40
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    • 2015
  • Generators are the most complex and expensive single element in a power system. The generator protection relays should to minimize damage during fault states and must be designed for maximum reliability. A conventional CDR(Current Differential Relaying) technique based on DFT(Discrete Fourier Transform) filter have the disadvantages that the time information can lead to loss in the process of converting the signal from the time domain to the frequency domain. A WT(Wavelet transform) and WT analysis is known that it is possible with the local analysis of the fault and transient signal. In this paper, to overcome the defects in the DFT process, an application of WT for fault detection of generator is presented. This paper describes an selection of mother Wavelet to detect faults of generator. Using collected data from the fault simulation with ATPdraw, we analyzed the several mother Wavelet through the course of MLD(multi-level decomposition) using MATLAB software. Finally, it can be seen that the proposed technique using detail coefficient of Daubechies level 2 which can be fault discriminant of generator.

공간 웨이블릿 변환의 복잡도를 줄인 스케일러블 비디오 부호화에 관한 연구 (Scalable Video Coding with Low Complex Wavelet Transform)

  • 박성호;정세윤;김원하
    • 전자공학회논문지CI
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    • 제42권3호
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    • pp.53-62
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    • 2005
  • 인터 프레임 웨이블릿 부호화 기법의 복호화 과정에서 많은 연산량을 차지하는 모듈 중의 하나는 웨이블릿 변환이다. 복호기는 PDA, PC, 휴대폰등과 같이 다양한 단말기 상에서 동작 할 수 있어야 하기 때문에 복호기의 복잡도는 각 프로세서의 계산 능력에 맞게 설계되어야 한다. 따라서 스케일러블 부호화를 위한 코덱 역시 낮은 복잡도로 설계되어야 한다. 본 논문에서는 부호화 성능을 열화시키지 않으면서 공간 웨이블릿 변환의 복잡도를 조절하면서 줄이는 기법을 제안한다. 또한 이 기법은 천천히 변화하는 영상 시퀀스에 대해서는 웨이블릿 변환 시 발생하는 잔상 현상도 줄일 수 있다.

객체추적을 위한 웨이블릿 기반 계층적 능동형태 모델 (Wavelet transform-based hierarchical active shape model for object tracking)

  • 기현종;신정호;이성원;백준기
    • 한국통신학회논문지
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    • 제29권11C호
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    • pp.1551-1563
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    • 2004
  • 여기는 본 논문에서는 움직이는 물체 추적을 위한 윤곽선 및 형태 파라미터 추출을 위해 웨이블릿 변환을 이용한 능동형태모델의 계층적인 접근방법에 대해 제안한다. 능동형태 모델의 여러 단계 중 지역구조 모델링은 비정형 객체의 형태를 추출하기 위해 가장 중요한 비중을 차지한다. 제안한 알고리듬은 웨이블릿을 이용하여 계층적인 접근은 물론 지역구조 모델링단계를 웨이블릿 대역 분할을 이용하여 복잡한 환경에서의 객체를 강건하게 추적할 수 있도록 하였다. 또한 비정형객체를 실시간 비디오 추적에 이용하기 위해 웨이블릿을 이용한 계층적 움직임 추정방법을 적용하여 객체의 움직임을 예측, 보정하는 효과적인 방법을 제시하였다. 제안하는 알고리듬은 객체 추적에 대한 성능을 평가하기 위해 다양한 실험영상을 통해 우수함을 확인하였다.

Texture Image Retrieval Using DTCWT-SVD and Local Binary Pattern Features

  • Jiang, Dayou;Kim, Jongweon
    • Journal of Information Processing Systems
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    • 제13권6호
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    • pp.1628-1639
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    • 2017
  • The combination texture feature extraction approach for texture image retrieval is proposed in this paper. Two kinds of low level texture features were combined in the approach. One of them was extracted from singular value decomposition (SVD) based dual-tree complex wavelet transform (DTCWT) coefficients, and the other one was extracted from multi-scale local binary patterns (LBPs). The fusion features of SVD based multi-directional wavelet features and multi-scale LBP features have short dimensions of feature vector. The comparing experiments are conducted on Brodatz and Vistex datasets. According to the experimental results, the proposed method has a relatively better performance in aspect of retrieval accuracy and time complexity upon the existing methods.

다항식 근사를 이용한 심전도 분석 및 원격 모니터링 (Polynomial Approximation Approach to ECG Analysis and Tele-monitoring)

  • 유기호;정구영;정성남;노태수
    • 대한기계학회:학술대회논문집
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    • 대한기계학회 2001년도 춘계학술대회논문집B
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    • pp.42-47
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    • 2001
  • Analyzing the ECG signal, we can find heart disease, for example, arrhythmia and myocardial infarction, etc. Particularly, detecting arrhythmia is more important, because serious arrhythmia can take away the life from patients within ten minutes. In this paper, we would like to introduce the signal processing for ECG analysis and the device made for wireless communication of ECG data. In the signal processing, the wavelet transform decomposes the ECG signal into high and low frequency components using wavelet function. Recomposing the high frequency bands including QRS complex, we can detect QRS complex and eliminate the noise from the original ECG signal. To recognize the ECG signal pattern, we adopted the polynomial approximation partially and statistical method. The ECG signal is divided into small parts based on QRS complex, and then, each part is approximated to the polynomials. Comparing the approximated ECG pattern with the database, we can detect and classify the heart disease. The ECG detection device consists of amplifier, filters, A/D converter and RF module. After amplification and filtering, the ECG signal is fed through the A/D converter to be digitalized. The digital ECG data is transmitted to the personal computer through the RF transceiver module and serial port.

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웨이브렛 변환을 이용한 스트레스 심전도 분석 알고리즘의 개발 (Development of a Stress ECG Analysis Algorithm Using Wavelet Transform)

  • 이경중;박광리
    • 대한의용생체공학회:의공학회지
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    • 제19권3호
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    • pp.269-278
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    • 1998
  • 본 논문에서는 스트레스 심전도를 분석함에 있어서 가장 중요한 파라미터인 ST 세그먼트를 측정하기 위해서 웨이브렛 변환을 이용하여 Wavelet Adaptive Filter(WAF)와 QRS콤플렉스 검출 알고리즘을 설계하였다. WAF는 웨이브렛 변환부와 적응필터부로 구성되어 있으며, 웨이브렛 변환부에서는 웨이브렛 함수를 이용하여 입력되는 심전도 신호를 저주파 대역과 고주파 대역으로 각각 j=-7레벨까지 분할하고, 적응필터부에서는 웨이브렛 변환에 의해 분할된 신호중 j=-7레벨의 저주파 대역 신호를 주입력으로 사용하여 필터링 한다. QRS 콤플레스는 합산신호를 구성한 후 문턱치를 RR간격에 변화에 따라 변화시키면서 검출하였으며, 합산신호는 웨이브렛 변환에 의해 QRS 콤플렉스의 주파수 성분이 포함되어 있는 고주파 대역의 신호를 더하여 구성하였다. WAF는 표준 필터와 일반적인 적응필터와 성능을 비교하였으며, 잡음제거 특성과 신호왜곡도 측면에서 비교필터에 비해 우수한 성능을 보였다. QRS 콤플렉스 검출성능을 평가하기 위해서 MIT/BIH데이터베이스를 이용하여 기존의 QRS 검출 알고리즘들의 검출 방법과 비교하였으며, 웨이브렛에 의한 합산신호를 이용할 경우에 99..67%로써 더 좋은 검출성능을 보였다. 또한 측정된 ST세그먼트의 정확도를 비교.평가를 위하여 European ST-T 데이터베이스와 실제 임상데이터를 이용하였으며 심박수의 변화에 따라 적응적으로 ST세그먼트를 측정할 수 있었다.

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UDWT을 이용한 경계법에 기초한 노이즈 제거에 관한 연구 (A Study on Threshold-based Denoising by UDWT)

  • 배상범;김남호;류지구
    • 융합신호처리학회 학술대회논문집
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    • 한국신호처리시스템학회 2001년도 하계 학술대회 논문집(KISPS SUMMER CONFERENCE 2001
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    • pp.77-80
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    • 2001
  • This paper presents a new threshold-based denoising method by using undecimated discrete wavelet transform (UDWT). It proved excellency of the UDWT compared with orthogonal wavelet transform (OWT), spatia1ly selective noise filtration (SSNF) and NSSNF added new parameter. Methods using the spatial correlation are effectual at edge detection and image enhancement, whereas algorithm is complex and needs more computation However, UDWT is effective at denoising and needs less computation and simple algorithm.

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Real-Time QRS Detection Using Wavelet Packet Transform

  • Bholsithi, Wisarut;;Hinjit, Watcharapong;Dejhan, Kobchai
    • 제어로봇시스템학회:학술대회논문집
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    • 제어로봇시스템학회 2004년도 ICCAS
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    • pp.1880-1884
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    • 2004
  • The wavelet packet transform has been applied for QRS detection with squaring, window integration, and impulse filter techniques to cut down the false detection of QRS complex. This real time QRS detection has been performed on Simulink and Matlab. The correct QRS detection rates have reached to 99.75% in the experiment with 15 sets of ECG data from European ST-T database which are kept in Physionet.

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웨이블릿 알고리즘을 적용한 휴대용 텔레미트리 시스템 (Implementation of a portable telemetry system based on wavelet transform.)

  • 박차훈;서희돈
    • 대한전자공학회:학술대회논문집
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    • 대한전자공학회 2000년도 하계종합학술대회 논문집(5)
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    • pp.113-116
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    • 2000
  • In this paper presents the portable wireless ECG data detection and diagnosis system based on discreet wavelet transform. An algorithm based on wavelet transform suitable for real time implementation has been developed in order to detect ECG characteristics. In particular, QRS complex, S and T waves may be distinguished form noise, baseline drift or artifacts. Proposed telemetry system that a transmitting media using radio frequency(RF) for the middle range measurement of the physiological signals and receiving media using optical for electromagnetic interference problem. A standard hi-directional serial communication interface between the telemetry system and a personal computer or laptop, allows read-time controlling, diagnosing and monitoring of system. A portable telemetry system within a size. of 65${\times}$125${\times}$45mm consists of three parts: a digital signal processing part for physiological signal detect or diagnose, RF transmitter for data transfer and a optical receiver for command receive. Advantages of proposed telemetry system is wireless middle range(50m) FM transmission, reduce electromagnetic interference to a minimum. which enables a comfortable diagnosis system at home.

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Heart Sound Recognition by Analysis of wavelet transform and Neural network.

  • Lee, Jung-Jun;Lee, Sang-Min;Hong, Seung-Hong
    • 대한전자공학회:학술대회논문집
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    • 대한전자공학회 2000년도 ITC-CSCC -2
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    • pp.1045-1048
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    • 2000
  • This paper presents the application of the wavelet transform analysis and the neural network method to the phonocardiogram (PCG) signal. Heart sound is a acoustic signal generated by cardiac valves, myocardium and blood flow and is a very complex and nonstationary signal composed of many source. Heart sound can be discriminated normal heart sound and heart murmur. Murmurs have broader frequency bandwidth than the normal ones and can occur at random position of cardiac cycle. In this paper, we classified the group of heart sound as normal heart sound(NO), pre-systolic murmur(PS), early systolic murmur(ES), late systolic murmur(LS), early diastolic murmur(ED). And we used the wavelet transform to shorten artifacts and strengthen the low level signal. The ANN system was trained and tested with the back- propagation algorithm from a large data set of examples-normal and abnormal signals classified by expert. The best ANN configuration occurred with 15 hidden layer neurons. We can get the accuracy of 85.6% by using the proposed algorithm.

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