• 제목/요약/키워드: wavelet.

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Wavelet 변환을 이용한 공구파손 검출 (Detection of Tool Failure by Wavelet Transform)

  • 양재용;하만경;구양;윤문철;곽재섭;정진서
    • 한국정밀공학회:학술대회논문집
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    • 한국정밀공학회 2002년도 춘계학술대회 논문집
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    • pp.1063-1066
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    • 2002
  • The wavelet transform is a popular tool for studying intermittent and localized phenomena in signals. In this study the wavelet transform of cutting force signals was conducted for the detection of a tool failure in turning process. We used the Daubechies wavelet analyzing function to detect a sudden change in cutting signal level. A preliminary stepped workpiece which had intentionally a hard condition was cut by the inserted cermet tool and a tool dynamometer obtained cutting force signals. From the results of the wavelet transform, the obtained signals were divided into approximation terms and detailed terms. At tool failure, the approximation signals were suddenly increased and the detailed signals were extremely oscillated just before tool failure.

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모듈화된 웨이블렛 신경망의 적응 구조 (Adaptive Structure of Modular Wavelet Neural Network)

  • 서재용;김용택;김성현;조현찬;전홍태
    • 한국지능시스템학회:학술대회논문집
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    • 한국퍼지및지능시스템학회 2001년도 추계학술대회 학술발표 논문집
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    • pp.247-250
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    • 2001
  • In this paper, we propose an growing and pruning algorithm to design the adaptive structure of modular wavelet neural network(MWNN) with F-projection and geometric growing criterion. Geometric growing criterion consists of estimated error criterion considering local error and angle criterion which attempts to assign wavelet function that is nearly orthogonal to all other existing wavelet functions. These criteria provide a methodology that a network designer can constructs wavelet neural network according to one's intention. The proposed growing algorithm grows the module and the size of modules. Also, the pruning algorithm eliminates unnecessary node of module or module from constructed MWNN to overcome the problem due to localized characteristic of wavelet neural network which is used to modules of MWNN. We apply the proposed constructing algorithm of the adaptive structure of MWNN to approximation problems of 1-D function and 2-D function, and evaluate the effectiveness of the proposed algorithm.

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웨이브릿 편이 변조 시스템에서 웨이브릿에 대한 성능분석 (Performance Analysis for Wavelet in the Wavelet Shift Keying Systems)

  • 정태일;김은주
    • 한국정보통신학회논문지
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    • 제13권8호
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    • pp.1580-1586
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    • 2009
  • 웨이브릿 변환은 신호처리, 디지털 통신 등 여러 분야에 널리 사용된다. 본 논문에서는 웨이브릿 편이 변조(WSK : wavelet shift keying) 시스템에서 하러(Haar)와 도비치(Daubechies) 웨이브릿 계열(series)을 중심으로 웨이브릿 종류에 대한 성능을 분석한다. 사용된 웨이브릿은 하러, 도비치 4탭, 8탭, 12탭을 사용하였다. 분석방법은 눈 모양에 의한 방법과 에러확률에 의한 방법을 사용하였다. 모의실험 결과 필터계수의 개수가 적을수록 좋은 성능을 보였다.

증기터빈$\cdot$발전기축계의 지진응답해석 (제2보 : 웨이블렛 해석의 적용) (Seismic Response Analysis of Steam Turbine-Generator Rotor System (2nd Report, Application of Wavelet Analysis))

  • 양보석;김병욱;김용한
    • 소음진동
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    • 제9권4호
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    • pp.813-821
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    • 1999
  • This paper presents the technique using wavelet analysis to solve the seismic response of a steam turbine-generator rotor system subjected to earthquake excitations. A brief review of the wavelet transform and its discretization, time-frequency representation of the earthquake wave and the seismic response for a rotor system is presented. The Daubechies wavelet has been used for describing the time-frequency characteristics of the input and the response in case of a recorded accelerogram during 1995 Hyogoken Nanbu earthquake. Also, the results in the wavelet domain has been illustrated through comparison with the time domain simulation results.

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Wavelet을 이용하여 하드터닝 공정에서 표면품위의 향상을 위한 채터 진단에 관한 연구 (Chatter Detection for Improving Surface Quality of Hard Turning Process with Wavelet Transformation)

  • 박영호;공정흥;양희남;김일해;장동영;한동철
    • 대한기계학회논문집A
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    • 제28권1호
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    • pp.70-78
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    • 2004
  • This paper presents study of efficiency of wavelet transformation for on-line chatter detection during hard fuming process. From comparison with other time series and statistical methods such as fast fourier transformation (FFT), Kurtosis and standard deviation (STD), wavelet transform is better than others in on-line chatter detection. With using wavelet function with pseudo frequency corresponding to chatter frequency, chatter could be detected more sensitively. And for both force signal from dynamometer and displacement signal from capacitance type cylindrical sensor (CCS), wavelet transform with DB2 function on level 4 could be well used for chatter detection in hard turning process.

Wavelet 변환 방식을 이용한 인쇄물 평가에 관한 연구 (A study on print estimation using wavelet transformation method)

  • 김택준;조가람;구철희
    • 한국인쇄학회지
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    • 제20권1호
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    • pp.28-44
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    • 2002
  • Wavelet transformation in image compression is to offer higher image compressibility and high-quality by quantization and entropy encoding. More image quality is good that reconstructed image by wavelet calculation than acquire cosine transform. Therefore, wavelet itself is function if it is wavelet's feature, in this function, do processing applying difference scale and resolution. That is, this is not that fixed resolution has been decided like existent compression way, when it regulated scale, damage goes in pixel and picture looks like break without giving damage entirely in reflex even if magnify or curtail Decoding. Therefore, this paper is in Image that using new wavelet application compression way research that see applies comparing In each image noted this time compressing step by step with circle image compression efficiency recognize. Also, estimated quality pass through by printing of compressed image, investigated compression ratio of most suitable that get print of high quality and elevation of transmission speed.

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Identification and Control of Nonlinear Systems Using Haar Wavelet Networks

  • Sokho Chang;Lee, Seok-Won;Nam, Boo-Hee
    • Transactions on Control, Automation and Systems Engineering
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    • 제2권3호
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    • pp.169-174
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    • 2000
  • In this paper, Haar wavelet-based neural network is described for the identification and control of discrete-time nonlinear dynamical systems. Wavelets are suited to depict functions with local nonlinearities and fast variations because of their intrinsic properties of finite support and self-similarity. Due to the orthonormal properties of Haar wavelet functions, wavelet neural networks result in a greatly simplified training problem. This wavelet-based scheme performs adaptively both the identification of nonlinear functions and the control of the overall system, while the multilayer neural network is applied to the control system just after its sufficient learning of the unknown functions. Simulation shows that the wavelet network can be a good alternative to a multilayer neural network with backpropagation.

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웨이브렛을 이용한 잡음 제거 알고리즘 (Denoising Algorithm using Wavelet)

  • 배상범;김남호
    • 한국정보통신학회논문지
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    • 제6권8호
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    • pp.1139-1145
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    • 2002
  • 웨이브렛 변환 데이터는 신호의 상세 정보를 포함하고 있으므로 주파수 대역별로 필터링할 수 있다. 따라서, 본 논문에서는 중요한 두 가지 잡음을 웨이브렛을 사용하여 제거하였다. AWGN 환경에 대해서 hard-threshold를 적용한 UDWT(undecimated discrete wavelet transform)를 사용하였으며, 임펄스 잡음환경에 대해서는 임계치에 의한 잡음 제거와 웨이브렛에 의한 신호의 slope를 이용하여, 잡음 제거 효과를 최대로 함과 동시에 원신호의 edge를 인식하도록 하였다. 이러한 잡음 제거 효과의 판단 기준으로 SNR을 사용하였으며, 테스트 신호로서 Blocks와 DTMF(dual tone multi frequency)를 사용하였다.

Wavelet 변환을 이용한 고저항 지락사고 고장점 추정 (Fault Location Estimation for High Impedance Fault using Wavelet Transform)

  • 김현;김철환
    • 대한전기학회논문지:전력기술부문A
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    • 제49권8호
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    • pp.369-373
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    • 2000
  • High impedance fault(HIF) is defined as a fault that the general overcurrent relay can not detect or interrupt. Especially when HIF occurs in residential areas, energized high voltage conductor results in fire hazard, equipment damage or personal threat. This paper proposes a fault location estimation algorithm for high impedance fault using wavelet transform. The algorithm is based on the wavelet analysis of the fault voltage and current signals. The performance of the proposed algorithm is tested on a typical 154kV korean transmission line system under various fault conditions. From the tests presented in this paper it can be concluded that a fault location estimation algorithm using wavelet transform can precisely calculate the fault point for HIF.

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Wavelet 변환을 이용한 절삭신호 분석과 노이즈 제거 (Analysis and Denoising of Cutting Force Using Wavelet Transform)

  • 하만경;곽재섭;진인태;김병탁;양재용
    • 한국정밀공학회지
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    • 제19권12호
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    • pp.78-85
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    • 2002
  • The wavelet transform is a popular tool fer studying intermittent and localized phenomena in signals. In this study the wavelet transform of cutting force signals was conducted for the detection of a tool failure in turning process. We used the Daubechies wavelet analyzing function to detect a sudden change in cutting signal level. A preliminary stepped workpiece which had intentionally a hard condition was cut by the inserted cermet tool and a tool dynamometer obtained cutting force signals. From the results of the wavelet transform, the obtained signals were divided into approximation terms and detailed terms. At tool failure, the approximation signals were suddenly increased and the detailed signals were extremely oscillated just before tool failure.