• 제목/요약/키워드: FastICA

검색결과 21건 처리시간 0.02초

잡음 섞인 한국어 인식을 위한 ICA 비교 연구 (Comparison of ICA Methods for the Recognition of Corrupted Korean Speech)

  • 김선일
    • 전자공학회논문지 IE
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    • 제45권3호
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    • pp.20-26
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    • 2008
  • 두 가지 Independent Component Analysis(ICA) 알고리즘을 적용하여 자동차 엔진 소음과 섞인 음성 신호의 인식을 시도하였다. 이를 이용하여 추정한 신호를 HMM을 이용하여 인식하였고 이 신호의 인식률을 소음이 섞이기 전의 음성 신호의 인식률과 비교하였다. 음성 신호를 추정하는데 두 가지 서로 다른 ICA를 사용하였으며 그 중의 하나는 negentropy를 최대화하는 FastICA 알고리즘이며 다른 하나는 출력 신호 사이의 독립성을 최대화하여서 입력과 출력 사이의 mutual information을 최대화하는 information-maximization approach 이다. 남성 앵커가 진행한 한국어 뉴스 문장에 대한 단어 인식률은 87.85%이며 다양한 신호 대 잡음비를 갖도록 소음을 섞어서 추정을 한 후 인식을 시도한 결과 FastICA를 이용해 추정한 음성 신호에 대한 인식률은 1.65%, information-maximization을 이용해 추정한 음성 신호에 대한 인식률은 2.02% 인식률 저하가 나타났다. 따라서 어느 방법을 적용하든지 의미 있는 차이가 없음을 확인하였다.

A Efficient Image Separation Scheme Using ICA with New Fast EM algorithm

  • Oh, Bum-Jin;Kim, Sung-Soo;Kang, Jee-Hye
    • 한국지능시스템학회논문지
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    • 제14권5호
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    • pp.623-629
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    • 2004
  • In this paper, a Efficient method for the mixed image separation is presented using independent component analysis and the new fast expectation-maximization(EM) algorithm. In general, the independent component analysis (ICA) is one of the widely used statistical signal processing scheme in various applications. However, it has been known that ICA does not establish good performance in source separation by itself. So, Innovation process which is one of the methods that were employed in image separation using ICA, which produces improved the mixed image separation. Unfortunately, the innovation process needs long processing time compared with ICA or EM. Thus, in order to overcome this limitation, we proposed new method which combined ICA with the New fast EM algorithm instead of using the innovation process. Proposed method improves the performance and reduces the total processing time for the Image separation. We compared our proposed method with ICA combined with innovation process. The experimental results show the effectiveness of the proposed method by applying it to image separation problems.

RSNT-cFastICA for Complex-Valued Noncircular Signals in Wireless Sensor Networks

  • Deng, Changliang;Wei, Yimin;Shen, Yuehong;Zhao, Wei;Li, Hongjun
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제12권10호
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    • pp.4814-4834
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    • 2018
  • This paper presents an architecture for wireless sensor networks (WSNs) with blind source separation (BSS) applied to retrieve the received mixing signals of the sink nodes first. The little-to-no need of prior knowledge about the source signals of the sink nodes in the BSS method is obviously advantageous for WSNs. The optimization problem of the BSS of multiple independent source signals with complex and noncircular distributions from observed sensor nodes is considered and addressed. This paper applies Castella's reference-based scheme to Novey's negentropy-based algorithms, and then proposes a novel fast fixed-point (FastICA) algorithm, defined as the reference-signal negentropy complex FastICA (RSNT-cFastICA) for complex-valued noncircular-distribution source signals. The proposed method for the sink nodes is substantially more efficient than Novey's quasi-Newton algorithm in terms of computational speed under large numbers of samples, can effectively improve the power consumption effeciency of the sink nodes, and is significantly beneficial for WSNs and wireless communication networks (WCNs). The effectiveness and performance of the proposed method are validated and compared with three related BSS algorithms through theoretical analysis and simulations.

수동 선배열 소나의 저주파 간섭 신호에 대한 독립성분분석 알고리즘 비교 (Comparison of independent component analysis algorithms for low-frequency interference of passive line array sonars)

  • 김주호;;이종현;정명준
    • 한국음향학회지
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    • 제38권2호
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    • pp.177-183
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    • 2019
  • 본 논문에서는 수동 선배열 소나의 저주파 영역에서 수신된 표적 신호로부터 간섭신호를 분리해 내기 위해 독립성분분석 알고리즘을 적용하는 방안을 제안하고 기존 알고리즘들의 성능을 비교해 보았다. 저주파 대역 신호의 경우 비교적 넓은 방위로부터 수신되기 때문에 인접 빔 신호를 관측신호로 활용하여 독립성분분석을 수행할 수 있다. 신호분리에 사용한 독립성분분석 알고리즘은 FastICA(Fast Independent Component Analysis), NNMF (Non-negative Matrix Factorization), JADE (Joint Approximation Diagonalization of Eigen-matrices)이다. 실측 선배열 수동소나신호를 이용하여 독립성분분석을 수행한 결과 제안한 방법으로 간섭신호분리가 가능함을 확인하였으며, JADE 알고리즘의 신호 분리 성능이 가장 우수한 것으로 나타났다.

An Introduction to Energy-Based Blind Separating Algorithm for Speech Signals

  • Mahdikhani, Mahdi;Kahaei, Mohammad Hossein
    • ETRI Journal
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    • 제36권1호
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    • pp.175-178
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    • 2014
  • We introduce the Energy-Based Blind Separating (EBS) algorithm for extremely fast separation of mixed speech signals without loss of quality, which is performed in two stages: iterative-form separation and closed-form separation. This algorithm significantly improves the separation speed simply due to incorporating only some specific frequency bins into computations. Simulation results show that, on average, the proposed algorithm is 43 times faster than the independent component analysis (ICA) for speech signals, while preserving the separation quality. Also, it outperforms the fast independent component analysis (FastICA), the joint approximate diagonalization of eigenmatrices (JADE), and the second-order blind identification (SOBI) algorithm in terms of separation quality.

대한상사중재원 국제중재규칙과 인도중재원 중재규칙 비교 연구 (A Study on the ICA Rules of Arbitration to be compared with KCAB International Rules of Arbitration)

  • 박양섭
    • 무역상무연구
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    • 제35권
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    • pp.125-144
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    • 2007
  • The objective of this study is to find out whether Korean companies which are doing a lot of commercial transactions with Indian companies can consider appointing ICA as a trustworthy institution and using ICA arbitration rules as a governing arbitration rule, when a dispute between Korean companies and Indian companies occurs. Up to now, in the case of dispute with Indian companies, Korean companies are hesitant to utilize ICA as well as ICA arbitration rules as a alternative dispute resolution, owing to lack of understanding on its rules. But, it is obvious that Korean companies which come to have better knowledge on ICA and its rules may consider more positively using ICA as well as ICA arbitration rules as a dispute resolution rather than using other arbitration institutions like ICC and KCAB etc. in the case of disputes with Indian companies because ICA arbitration rules are very objective and similar to other arbitration rules like ICC rules as well as KCAB(Korean Commercial Arbitration Board) international arbitration rules which are frequently being used by Korean companies and also have other several advantages like cheaper cost of arbitration and fast track arbitration procedures. In conclusion, ICA and its rules can also be recommended as a public-trustworthy arbitration option if Korean companies want to resolve some dispute cases with Indian companies.

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독립 요소 분석 기반의 KOMPSAT EOC영상 무감독 분류 (Unsupervised Classification of KOMPSAT EOC Imagery Based on Independent Component Analysis)

  • 변승건;이호영;이쾌희
    • 한국GIS학회:학술대회논문집
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    • 한국GIS학회 2003년도 공동 춘계학술대회 논문집
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    • pp.581-587
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    • 2003
  • 독립 요소 분석 (Independent Component Analysis: ICA)는 텍스처를 의미 있는 특징으로 변환하는 강인한 영상 필터를 생성하기 위한 확률적 방법이다. ICA는 고차통계적 특성을 사용하여 ICA 필터와 독립 요소를 동시에 학습한다. 제안한 분류 방법은 fast ICA 알고리즘을 사용하여 KOMPSAT 영상으로부터 ICA 필터를 생성한 다음, 필터에 의해 투영된 텍스처들의 특징들을 독립 평면상에서 무감독 방법으로 분류한다. KOMPSAT 영상은 텍스처 성분이 뚜렷하지 않는 영역이 존재하기 때문에 본 논문에서는 투영된 특징 값들과 윈도우 내의 정규화된 평균 화소값으로 특징 벡터를 재구성하였다. 분류 방법으로는 K-means 클러스터링을 적용하였다. 6.6m 해상도를 가진 KOMPSAT 흑백 영상에 대해 제안한 방법은 우수한 분류 성능을 보인다.

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Independent Component Analysis Based MIMO Transceiver With Improved Performance In Time Varying Wireless Channels

  • Uddin, Zahoor;Ahmad, Ayaz;Iqbal, Muhammad;Shah, Nadir
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제9권7호
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    • pp.2435-2453
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    • 2015
  • Independent component analysis (ICA) is a signal processing technique used for un-mixing of the mixed recorded signals. In wireless communication, ICA is mainly used in multiple input multiple output (MIMO) systems. Most of the existing work regarding the ICA applications in MIMO systems assumed static or quasi static wireless channels. Performance of the ICA algorithms degrades in case of time varying wireless channels and is further degraded if the data block lengths are reduced to get the quasi stationarity. In this paper, we propose an ICA based MIMO transceiver that performs well in time varying wireless channels, even for smaller data blocks. Simulation is performed over quadrature amplitude modulated (QAM) signals. Results show that the proposed transceiver system outperforms the existing MIMO system utilizing the FastICA and the OBAICA algorithms in both the transceiver systems for time varying wireless channels. Performance improvement is observed for different data blocks lengths and signal to noise ratios (SNRs).

독립 요소 분석을 통한 Photoplethysmography에서의 동잡음 제거 (The Motion Artifact Reduction in Photoplethysmography Using Independent Component Analysis)

  • 김경하;유선국;김병수;김남현
    • 대한전기학회논문지:시스템및제어부문D
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    • 제52권10호
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    • pp.598-605
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    • 2003
  • In this paper, we propose the method that separates PPG signal and motion artifact signal from two input signals using new independent component analysis algorithm in time domain. In order to eliminate the large level artifact efficiently, block interleaving. lowpass time filtering and innovation processing technique were applied in ICA preprocessing, and FastICA algorithm were applicable. Experiments are made with the numerical simulation and the real PPG signal including four kinds of motion artifact pattern. Our results show that ICA can effectively detect, separate and remove motion artifact in input signals. Then from the separated signals we restore the original PPG signal and propose a new method which computes SpO$_2$ using ICA mixing matrix.

Colour Constancy using Grey Edge Framework and Image Component analysis

  • Savc, Martin;Potocnik, Bozidar
    • KSII Transactions on Internet and Information Systems (TIIS)
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    • 제8권12호
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    • pp.4502-4512
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    • 2014
  • This article presents a reformulation of the Grey Edge framework for colour constancy. Colour constancy is the ability of a visual system to perceive objects' colours independently of their scenes' illuminants. Colour constancy algorithms try to estimate the colour of an illuminant from image values. This estimation can later be used to correct the image as though it were taken under a white illuminant. The modification presented allows the framework to incorporate image-specific filters instead of the commonly used edge detectors. A colour constancy algorithm is proposed using PCA and FastICA linear component analyses methods for the construction of such filters. The results show that the proposed method improves the accuracies of the Grey Edge framework algorithms whilst on the other hand, achieving comparable accuracies with the state-of-the-art methods, but improving their time efficiencies.