• 제목/요약/키워드: image focusing

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Image J 프로그램을 이용한 격자집속거리와 격자비에 따른 영상비교평가 (Using Image J program, compared of focusing distance and grid rate)

  • 서원주;서정범;이종웅
    • 대한디지털의료영상학회논문지
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    • 제14권1호
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    • pp.37-42
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    • 2012
  • Pediatric head and neck phantom, using the rate by focusing distance and grid images, Image J using the Quality Assessment and Dose Area Product compared. X-ray laboratory equipment due to the Philips Digital DIAGNOST a 110 cm FFD set and using ACE Non-grid, focusing distance 110 cm (12 : 1), 140 cm (12 : 1), 180 cm (8 : 1) Focused grid, Acryl Phantom (Fluke Model 76-2 Series Phantom) 15.24 cm, by resolution chart image acquisition, image evaluation program (Image J Ver. 1.4.3.67, USA) imaging experiments were analyzed using. Dose Area Product in the Non Grid 0.028 $mGy{\cdot}cm^2$, focusing distance 110 cm (12 : 1), the 0.129 $mGy{\cdot}cm^2$, 140 cm (12 : 1), the 0.135 $mGy{\cdot}cm^2$, 180 cm (8 : 1) was measured with a 0.110 $mGy{\cdot}cm^2$ Non Grid, focusing distance 110 cm (12 : 1), 140 cm (12 : 1), 180 cm (8 : 1) Image obtained when grid using the image J program focusing distance 110 cm with grid based on the measured SNR and PSNR Non Grid if the SNR the 17.307 dB, PSNR of the 20.002 dB, if the SNR 28.755 dB, PSNR was measured by the 31.451 dB. Image J image analysis through the streets, rather than focusing on grid by the rate that could see an increase in dose. Select the grid by a small dose rate reduction is possible.

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포커성 방법을 이용한 이차원 음향 영상에 관한 연구 (A Study of Two-Dimensional Acoustic Image using Focusing Method)

  • 김형균
    • 한국음향학회:학술대회논문집
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    • 한국음향학회 1984년도 추계학술발표회 논문집
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    • pp.78-82
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    • 1984
  • The purposed of this paper is to realize two dimensional acoustic image using focusing method. In the experiment, it consists of phase delay part, 14 analog multiplexers, multi-amplifiers, A/D converter, DMA interfacing parts, two linear arrays(resonance frequency 25 KHz, radius 0.75 Cm diac type). Finally in this experimental result, both electrical deflection and dynamic focusing are realized and gets two dimensional acoustic image using focusing method.

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적응적 가중치를 이용한 노이즈에 강인한 초점값 연산자 (Noise Insensitive Focusing Index using Adaptive Weights)

  • 최종성;강희;강문기
    • 대한전자공학회논문지SP
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    • 제47권4호
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    • pp.90-96
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    • 2010
  • 초점 검출 시스템은 영상 획득 과정에서 영상의 화질을 결정하는 중요한 요소이다. 초점 검출은 크게 영상의 고주파 성분을 평가하여 수치화하는 초점값 연산 부분과 이 초점값을 이용하여 렌즈를 이동시켜 초점을 일치시키는 부분으로 이루어진다. 초점값을 연산하는데 있어 저조도 잡음이 첨가된 환경에서는 잡음에 의해 그 성능이 크게 저하되게 된다. 본 논문에서는 공간 적응적인 가중치를 이용하여 저조도 잡음이 첨가된 환경에서 효율적으로 초점값을 연산할 수 있도록 하는 방법을 제안하였다. 제안된 방법은 영상의 각 픽셀에서 영상의 국부 특성과 잡음의 특성을 적응적 가중치를 연산하고, 이를 이용해 저조도 잡음에 강인한 초점값 연산자를 제안한다. 제안된 적응적 가중치는 기존의 필터 기반 초점값 연산자에도 적용이 가능한 특성을 갖는다. 잡음이 없는 상태와 가우시안 잡음이 있는 환경 하에서 제안된 연산자의 성능을 검증하였다.

A Saliency-Based Focusing Region Selection Method for Robust Auto-Focusing

  • Jeon, Jaehwan;Cho, Changhun;Paik, Joonki
    • IEIE Transactions on Smart Processing and Computing
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    • 제1권3호
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    • pp.133-142
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    • 2012
  • This paper presents a salient region detection algorithm for auto-focusing based on the characteristics of a human's visual attention. To describe the saliency at the local, regional, and global levels, this paper proposes a set of novel features including multi-scale local contrast, variance, center-surround entropy, and closeness to the center. Those features are then prioritized to produce a saliency map. The major advantage of the proposed approach is twofold; i) robustness to changes in focus and ii) low computational complexity. The experimental results showed that the proposed method outperforms the existing low-level feature-based methods in the sense of both robustness and accuracy for auto-focusing.

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실시간 감시 카메라를 구현하기 위한 고속 영상확대 및 초점조절 기법 (Fast Zooming and Focusing Technique for Implementing a Real-time Surveillance Camera System)

  • 한헌수;최정렬
    • 한국정밀공학회지
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    • 제21권3호
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    • pp.74-82
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    • 2004
  • This paper proposes a fast zooming and focusing technique for implementing a real-time surveillance camera system which can capture a face image in less than 1 second. It determines the positions of zooming and focusing lenses using two-step algorithm. In the first step, it moves the zooming and focusing lenses simultaneously to the positions calculated using the lens equations for achieving the predetermined magnification. In the second step the focusing lens is adjusted so that it is positioned at the place where the focus measure is the maximum. The camera system implemented for the experiments has shown that the proposed algorithm spends about 0.56 second on average fur obtaining a focused image.

점확산함수 반지름을 사용한 영상분할 기반 다중객체 자동초점 (Multiple objects focusing based on image segmentation using radius of PSF)

  • 김기만;황성현;신정호;백준기
    • 대한전자공학회:학술대회논문집
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    • 대한전자공학회 2003년도 신호처리소사이어티 추계학술대회 논문집
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    • pp.7-10
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    • 2003
  • This paper proposes the multiple objects focusing algorithm. Given multiple objects at different distances from a camera, we assume that one object is well-focused and the others are out-of-focused. The proposed auto-focusing algorithm is summarized as follows: (i) detects edges from an input image, (ⅱ) estimates the radius of PSF (Point Spread Function) across the edge, (ⅲ) gather edge points having same radius of PSF, (ⅳ) segments the image into regions with the same radius of PSF, and (ⅴ) restores the each segmented region using the corresponding PSF.

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홍채 영상 초점 값에 기반한 홍채 영상 복원 연구 (A Study on Iris Image Restoration Based on Focus Value of Iris Image)

  • 강병준;박강령
    • 대한전자공학회논문지SP
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    • 제43권2호
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    • pp.30-39
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    • 2006
  • 홍채 인식은 흥채 근육의 무의 패턴을 이용하여 동일인 여부를 판별하는 연구 분야이다. 이러한 홍채 인식에서 홍채 영상의 품질은 홍채 인식의 성능에 많은 영향을 준다. 이는 흥채 영상이 흐려지면, 홍채 패턴이 변형되어지므로, FRR(False Rejection Error)이 증가되기 때문이다. 홍채 영상을 흐려지게 만드는 주된 요인 가운데 하나가 카메라 렌즈의 초점(focus)이다. 기존의 흥채 인식 카메라는 고정 초점(fixed focusing) 방식과 가변 초점(auto-focusing) 방식이 있다. 고정 초점 방식은 초점 렌즈가 고정되어 있기 때문에 사용자가 직접 자신의 눈을 DOF(Depth of Field) 영역 안에 위치시켜야하고, DOF 영역이 매우 작은 한계가 있다. 가변 초점 방식은 사용자와 카메라 사이의 거리를 측정하여 초점이 잘 맞는 위치로 초점렌즈를 움직여서 선명한 영상을 취득한다. 하지만 부가적인 하드웨어 장비가 필요하기 때문에 카메라의 부피가 늘어나고 비용도 증가되므로 개인 인증을 위해 홍채인식을 하는 핸드폰과 같은 모바일 장비에서 사용되는데 어려움이 따른다. 따라서 본 논문은 이러한 기존의 홍채인식 카메라의 문제점들을 극복하기 위해 부가적인 하드웨어 장비 없이 고정 초점 방식 카메라에서 취득한 홍채 영상을 복원함으로써 소프트웨어적으로 DOF영역을 증가시키는 방법을 제안한다. 기존의 영상 복원 알고리즘은 반복적(iterative) 방법에 의해 최상의 복원 계수(parameter)를 검출하여 영상을 복원하였으나, 본 논문은 초점값을 이용하여 영상의 흐려짐의 정도를 판단하고, 흐려짐의 정도에 따라 미리 정의한 복원 계수를 선택함으로써 빠른 시간 안에 홍채 영상을 복원하는 방법을 제안한다. 실험 결과, Panasonic에서 만든 BM-ET100 카메라의 작동범위(Operation Range)를 48-53cm에서 46-56cm로 증가시킬 수 있었다.

자동 초점 조절 검사 시스템 설계 및 구현 (Implementation of Measuring System for the Auto Focusing)

  • 이영교;김영포
    • 디지털산업정보학회논문지
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    • 제8권4호
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    • pp.159-165
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    • 2012
  • The accurate focusing position should be determined for accurate measurements In VMS. Camera lens focusing is an important problem in computer vision and video measuring systems (VMS) that use CCD cameras and high precision XYZ stages. Camera focusing is a very important step in high precision measurement systems that use computer vision technique. The auto focusing process consists of two steps, the focus value measurement step and the exact focusing position determination step. It is suitable for eliminating high frequency noises with lower processing time and without blurring. An automatic focusing technique is applied to measure a crater with a one-dimensional search algorithm for finding the best focus. Throughout this paper, the suggested algorithm for the Auto focusing was combined with the learning. As a result, it is expected that such a combination would be expanded into the system of recognizing voices in a noisy environment.

디지털 카메라를 위한 새로운 자동초점조절 알고리즘의 연구 (A Study on a New Auto-Focusing Algorthem for Digital Cameras)

  • 신승현;박중호;김근섭;조일준;김성환
    • 대한전기학회논문지:시스템및제어부문D
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    • 제50권9호
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    • pp.447-453
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    • 2001
  • In this paper, a new auto-focusing algorithm for digital cameras is proposed. One of the primary concerns of digital image processing is to increase image quality, and the most important factor for degrading the images is the blurring effect due to inexact focusing. The blurring effect occurs when the focusing lens is located on an unsuitable position. Therefore, focusing on an object should be proceeded before acquiring images. The proposed auto-focusing algorithm is MMDT(min-max difference threshold), and the performance of the proposed algorithm is evaluated by the use of the focus curve. It is shown that the proposed algorithm is superior to other previous auto-focusing algorithms in both the focus shape and computation time aspects. Especially, the improvement of the focus curve shape in both monotonousness and slope indicates that focusing can be done rapidly in comparison with other previous proposed algorithms.

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Time Reversal Focusing and Imaging of Point-Like Defects in Specimens with Nonplanar Surface Geometry

  • Jeong, Hyun-Jo;Lee, Hyun-Kee;Bae, Sung-Min;Lee, Jung-Sik
    • 비파괴검사학회지
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    • 제30권6호
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    • pp.569-577
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    • 2010
  • Nonplanar surface geometries of components are frequently encountered in real ultrasonic inspection situations. Use of rigid array transducers can lead to beam defocusing and reduction of defect image quality due to the mismatch between the planar array and the changing surface. When a flexible array is used to fit the complex surface profile, the locations of array elements should be known to compute the delay time necessary for adaptive heam focusing. An alternative method is to employ the time reversal focusing technique that does not require a prior knowledge about the properties and structures of the specimen and the transducer. In this paper, a time reversal method is applied to simulate beam focusing of flexible arrays and imaging of point-like defects contained in specimens with nonplanar surface geometry. Quantitative comparisons are made for the performance of a number of array techniques in terms of the ability to focus and image three point-like reflectors positioned at regular intervals. The sinusoidal profile array studied here exhibits almost the same image quality as the flat, reference case.