• 제목/요약/키워드: Gabor transform

검색결과 65건 처리시간 0.029초

마커 클러스터링을 이용한 유역변환 기반의 질감 분할 기법 (A Watershed-based Texture Segmentation Method Using Marker Clustering)

  • 황진호;김원희;문광석;김종남
    • 한국멀티미디어학회논문지
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    • 제10권4호
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    • pp.441-449
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    • 2007
  • 영상 분할을 위한 클러스터링에서는 방대한 계산량과 전형적인 분할 오류가 중요한 문제점으로 지적되어 왔다. 본 연구에서는 이러한 문제들을 최소화하기 위한 새로운 기법을 제안한다. 마커-제어 유역변환(marker- controlled watershed transform)에서 마커는 영역 확장의 시작점이므로, 분할된 각 영역을 대표하는 성질을 가진다. 따라서 마커 화소로 제한하는 클러스터링으로 계산 복잡도를 줄일 수 있다. 제안한 기법에서는 가보 필터(gabor filter)의 질감 에너지에서 마커를 선택하고, FCM(fuzzy c-means) 클러스터링으로 마커의 군집을 형성하며, 유역변환에서 생성된 영역들을 마커의 군집정보를 이용하여 병합한다. Brodatz 영상 조합에 대한 성능 실험에서 클러스터링 특유의 얼룩(blob) 분할 오류를 현저하게 개선하였으며, 영상 분할 소요 시간 비교에서 기존의 FCM 클러스터링 알고리즘보다 소요 시간이 적었다. 또한, 전체적으로 일정한 분할 소요시간을 보여주었다.

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웨이블렛 변환을 이용한 질량선 및 강체특성의 규명 (Identification of Mass-Lines and Rigid Body Properties using Wavelet Transform)

  • 안세진;정의봉;황대선
    • 한국소음진동공학회:학술대회논문집
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    • 한국소음진동공학회 2002년도 춘계학술대회논문집
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    • pp.115-120
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    • 2002
  • The rigid body properties of a structure may be estimated easily if the mass-line of the structure could be taken exactly. However, the exact mass-line may be hard to be obtained exactly in experiments. The mass line value can be read from the mass line in frequency response function. However, the mass lines in the frequency response function sometimes show the fluctuation with frequency, and it cannot be read correctly. In this paper, the wavelet transform is applied to obtain the good mass line value. The mass line calculated by using wavelet transform has unique value and showed in the range of fluctuated values of frequency response function. The rigid body properties obtained by wavelet transform also showed better results than those by fourier transform.

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웨이블렛 변환을 이용한 질량선 및 강체특성의 규명 (Identification of Mass-lines and Rigid Body Properties Using Wavelet Transform)

  • 안세진;정의봉;황대선
    • 한국소음진동공학회논문집
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    • 제12권9호
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    • pp.725-730
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    • 2002
  • The rigid body properties of a structure may be estimated easily if the mass-line of the structure could be taken exactly. However, the exact mass-line nay be hard to be obtained exactly in experiments. The mass line value can be read from the mass line in frequency response function. However, the mass lines in the frequency response function sometimes show the fluctuation with frequency, and it cannot be read correctly. In this paper, the wavelet transform is applied to obtain the good mass line value. The mass line calculated by using wavelet transform has unique value and showed in the range of fluctuated values of frequency response function. The rigid body properties obtained by wavelet transform also showed better results than those by fourier transform.

음성 특징의 효율성 (EFFICIENCY OF SPEECH FEATURES)

  • 황규웅
    • 한국음향학회:학술대회논문집
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    • 한국음향학회 1995년도 제12회 음성통신 및 신호처리 워크샵 논문집 (SCAS 12권 1호)
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    • pp.225-227
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    • 1995
  • This paper compared waveform, cepstrum, and spline wavelet features with nonlinear discriminant analysis. This measure shows efficiency of speech parametrization better than old linear separability criteria and can be used to measure the efficiency of each layer of certain system. Spline wavelet transform has larger gap among classes and cepstrum is clustered better than the spline wavelet feature. Both features do not have good property for classification and we will compare Gabor wavelet transform, Mel cepstrum, delta cepstrum, etc.

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가버 웨이블릿을 이용한 원시 시각 피질 모델 구현에 관한 연구 (Study on the Implementation of Primitive Visual Cortex Model in Retina Using Gabor Wavelet)

  • 이영석
    • 한국정보전자통신기술학회논문지
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    • 제13권6호
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    • pp.477-482
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    • 2020
  • 인간의 시각피질의 특징은 특별한 방향성을 갖거나 시간적인 주파수 변화를 동반하는 자극에는 민감하게 반응하지만, 공간 위상의 선택적 자극에는 둔감하게 작용한다는 것이 고등 포유동물의 시각 피질에 대한 생리학적 실험으로 증명되었다. 이 결과는 위치에 민감한 단순 세포의 분포가 복잡 세포의 분포에 비하여 상대적으로 적은 생리학적 특징에 기인한 것으로 본 논문에서는 원시 시각 피질을 구성하는 단순 세포와 복잡 세포 가운데 더 넓은 분포의 복잡 세포 모델링을 가버 웨이블릿 변환을 이용한 영상추정 반복 알고리즘을 이용하여 구현하였다. 구현된 모델은 영상의 경계 및 모서리의 검출 평가와 함께 기존의 생리학적 실험논문과 구현한 모델의 결과 사이의 일관성을 확인하였다. 구현된 모델은 단순 세포와 복잡 세포가 함께 분포하는 망막의 수용 장을 완전한 형태를 구현할 수 없는 제한이 있지만, 시각 피질을 일부를 담당하는 복잡 세포를 알고리즘의 관점에서 구현하여 더 완전한 시각 피질 모델의 기초로 활용할 수 있다.

A multisource image fusion method for multimodal pig-body feature detection

  • Zhong, Zhen;Wang, Minjuan;Gao, Wanlin
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제14권11호
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    • pp.4395-4412
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    • 2020
  • The multisource image fusion has become an active topic in the last few years owing to its higher segmentation rate. To enhance the accuracy of multimodal pig-body feature segmentation, a multisource image fusion method was employed. Nevertheless, the conventional multisource image fusion methods can not extract superior contrast and abundant details of fused image. To superior segment shape feature and detect temperature feature, a new multisource image fusion method was presented and entitled as NSST-GF-IPCNN. Firstly, the multisource images were resolved into a range of multiscale and multidirectional subbands by Nonsubsampled Shearlet Transform (NSST). Then, to superior describe fine-scale texture and edge information, even-symmetrical Gabor filter and Improved Pulse Coupled Neural Network (IPCNN) were used to fuse low and high-frequency subbands, respectively. Next, the fused coefficients were reconstructed into a fusion image using inverse NSST. Finally, the shape feature was extracted using automatic threshold algorithm and optimized using morphological operation. Nevertheless, the highest temperature of pig-body was gained in view of segmentation results. Experiments revealed that the presented fusion algorithm was able to realize 2.102-4.066% higher average accuracy rate than the traditional algorithms and also enhanced efficiency.

초음파 에코파형의 웨이브렛 변환과 비파괴평가에의 응용 (Wavelet Analysis of Ultrasonic Echo Waveform and Application to Nondestructive Evaluation)

  • 박익근;박은수;안형근;권숙인;변재원
    • 비파괴검사학회지
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    • 제20권6호
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    • pp.501-510
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    • 2000
  • 초음파 에코파형의 시간-주파수해석법으로 Wigner 분포와 웨이브렛 변환 등과 같은 새로운 신호처리 기법이 비파괴평가 분야에 널리 응용되고 있다. 본 연구에서는 웨이브렛 변환(wavelet transform)에 의한 음속과 감쇠계수의 주파수의존성과 초음파 결함신호의 잡음제거의 유용성 유무를 실험적으로 검증하였다. Gabor 함수를 웨이브렛의 기본함수로 사용하였다. 초음파의 에코파형에 포함된 각 주파수성분의 속도와 감쇠계수의 주파수의존성을 추정할 수 있었으며, 초음파탐상에서 결함의 검출능 향상과 결함크기 산정의 정량화에 접근하기 위해 웨이브렛 변환에 의한 S/N비 신호처리 시뮬레이션 결과를 오스테나이트강 스테인레스 용접부에 가공한 EDM 노치의 초음파 결함신호에 적용한 결과 임상에코를 저감하고 S/N비를 개선하는 것이 가능하였다.

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Human Face Recognition using Multi-Class Projection Extreme Learning Machine

  • Xu, Xuebin;Wang, Zhixiao;Zhang, Xinman;Yan, Wenyao;Deng, Wanyu;Lu, Longbin
    • IEIE Transactions on Smart Processing and Computing
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    • 제2권6호
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    • pp.323-331
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    • 2013
  • An extreme learning machine (ELM) is an efficient learning algorithm that is based on the generalized single, hidden-layer feed-forward networks (SLFNs), which perform well in classification applications. Many studies have demonstrated its superiority over the existing classical algorithms: support vector machine (SVM) and BP neural network. This paper presents a novel face recognition approach based on a multi-class project extreme learning machine (MPELM) classifier and 2D Gabor transform. First, all face image features were extracted using 2D Gabor filters, and the MPELM classifier was used to determine the final face classification. Two well-known face databases (CMU-PIE and ORL) were used to evaluate the performance. The experimental results showed that the MPELM-based method outperformed the ELM-based method as well as other methods.

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Wavelet변환을 이용한 초음파 잡음신호의 제거에 관한 연구 (A Study on Suppression of Ultrasonic Background Noise Signal using wavelet Transform)

  • 박익근
    • 한국생산제조학회지
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    • 제8권1호
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    • pp.135-141
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    • 1999
  • Recently, advance signal analysis which is called "Time-Frequency Analysis" has been developed. Wavelet and Wigner Distribution are used to the method. Wavelet transform(WT) is applied to time-frequency analysis of waveforms obtained by an ultrasonic pulse-echo technique. The Gabor function is adopted as the analyzing wavelet. Wavelet analysis method is an attractive technique for evolution of material characterization evoluation. In this paper, the feasibility of suppression of ultrasonic background noise signal using WT has been presented. These results suggest that ultrasonic background noise ginal can be suppressed and enhanced even for SNR of 20.8 dB. This property of the WT is extremely useful for the detecting flaw echos embedded in background noise.und noise.

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Human Iris Recognition using Wavelet Transform and Neural Network

  • Cho, Seong-Won;Kim, Jae-Min;Won, Jung-Woo
    • International Journal of Fuzzy Logic and Intelligent Systems
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    • 제3권2호
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    • pp.178-186
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    • 2003
  • Recently, many researchers have been interested in biometric systems such as fingerprint, handwriting, key-stroke patterns and human iris. From the viewpoint of reliability and robustness, iris recognition is the most attractive biometric system. Moreover, the iris recognition system is a comfortable biometric system, since the video image of an eye can be taken at a distance. In this paper, we discuss human iris recognition, which is based on accurate iris localization, robust feature extraction, and Neural Network classification. The iris region is accurately localized in the eye image using a multiresolution active snake model. For the feature representation, the localized iris image is decomposed using wavelet transform based on dyadic Haar wavelet. Experimental results show the usefulness of wavelet transform in comparison to conventional Gabor transform. In addition, we present a new method for setting initial weight vectors in competitive learning. The proposed initialization method yields better accuracy than the conventional method.