• 제목/요약/키워드: Dual X-ray imaging

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이중 에너지 검출기를 이용한 영상 시스템 (Image System Using Dual Energy Detector)

  • 여화연
    • 한국산학기술학회논문지
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    • 제11권9호
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    • pp.3517-3523
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    • 2010
  • 본 논문은 이중 에너지 DR(Digital Radiography) 방식 중, 단일 조사 X-선(single shot X-ray exposure) 장치와 이중 모드 검출기 모듈 (Low Energy Detector & High Energy Detector)을 이용한 이중 X-선 이미징이 가능한 검출기 모듈에 관한 연구이다. 상용 BIS(baggage inspection system)에서 사용되고 있는 X-선 발생장치의 스펙트럼과 이중 모드 검출기에 대한 특징 및 방사선적 특성을 분석하여 새롭게 제안 할 검출기 모듈의 최적 설계 방향을 기술하고 상용화된 용화된 LED 및 HED 검출기와 새롭게 제안 한 검출기 모듈에 대해 전기적, 광학적, 방사선적 특성 실험을 실시하여, 새롭게 제안된 검출기 모듈이 BIS 용도로 사용 가능함을 증명하였다. 새롭게 제안 된 검출기 모듈이 적용된 BIS에 대해, 기본 특성 실험에 대한 X-선 영상을 획득하여 실험 및 분석을 실시하였다.

PCB 비파괴 검사에 있어서 단일 에너지 소스와 이중 에너지 소스의 영상비교를 위한 엑스선 스펙트럼 분석 (Energy Spectrum Analysis between Single and Dual Energy Source X-ray Imaging for PCB Non-destructive Test)

  • 김명수;김기윤;이민주;강동욱;이대희;박경진;김예원;김찬규;김형택;조규성
    • 방사선산업학회지
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    • 제9권3호
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    • pp.153-159
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    • 2015
  • Reliability of printed circuit board (PCB), which is based on high integrated circuit technology, is having been important because of development of electric and self-driving car. In order to answer these demand, automated X-ray inspection (AXI) is best solution for PCB non-destructive test. PCB is consist of plastic, copper, and, lead, which have low to high Z-number materials. By using dual energy X-ray imaging, these materials can be inspected accurately and efficiently. Dual energy X-ray imaging, that have the advantage of separating materials, however, need some solution such as energy separation method and enhancing efficiency because PCB has materials that has wide range of Z-number. In this work, we found out several things by analysis of X-ray energy spectrum. Separating between lead and combination of plastic and copper is only possible with energy range not dose. On the other hand, separating between plastic and copper is only with dose not energy range. Moreover the copper filter of high energy part of dual X-ray imaging and 50 kVp of low energy part of dual X-ray imaging is best for efficiency.

Spectral Computed Tomography: Fundamental Principles and Recent Developments

  • Aaron So;Savvas Nicolaou
    • Korean Journal of Radiology
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    • 제22권1호
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    • pp.86-96
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    • 2021
  • CT is a diagnostic tool with many clinical applications. The CT voxel intensity is related to the magnitude of X-ray attenuation, which is not unique to a given material. Substances with different chemical compositions can be represented by similar voxel intensities, making the classification of different tissue types challenging. Compared to the conventional single-energy CT, spectral CT is an emerging technology offering superior material differentiation, which is achieved using the energy dependence of X-ray attenuation in any material. A specific form of spectral CT is dual-energy imaging, in which an additional X-ray attenuation measurement is obtained at a second X-ray energy. Dual-energy CT has been implemented in clinical settings with great success. This paper reviews the theoretical basis and practical implementation of spectral/dual-energy CT.

인쇄회로기판 검사를 위한 단일조사 이중에너지 엑스선 영상기법의 유용성에 관한 연구 (Feasibility of Single-Shot Dual-Energy X-ray Imaging Technique for Printed-Circuit Board Inspection)

  • 김승호;김동운;김대천;김준우;박지웅;박은평;김진우;김호경
    • 방사선산업학회지
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    • 제9권3호
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    • pp.137-141
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    • 2015
  • A single-shot dual-energy x-ray imaging technique has been developed using a sandwich detector by stacking two detectors, in which the front and rear detectors respectively produce relatively lower and higher x-ray energy images. Each detector layer is composed of a phosphor screen coupled with a photodiode array. The front detector layer employs a thinner phosphor screen, whereas the rear detector layer employs a thicker phosphor screen considering the quantum efficiency for x-ray photons with higher energies. We have applied the proposed method into the inspection of printed circuit boards, and obtained dual-energy images with background clutter suppressed. In addition, the single-shot dual-energy method provides sharper-edge images than the conventional radiography because of the unsharp masking effect resulting from the use of different thickness phosphors between the two detector layers. It is promising to use the single-shot dual-energy x-ray imaging for high-resolution nondestructive testing. For the reliable use of the developed method, however, more quantitative analysis is further required in comparisons with the conventional method for various types of printed circuit boards.

Multispectral X-ray imaging to distinguish among dental materials

  • Peter, Ann-Christin;Schnaubelt, Matthias;Gente, Michael
    • Imaging Science in Dentistry
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    • 제47권4호
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    • pp.247-254
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    • 2017
  • Purpose: Dual-energy X-ray imaging is widely used today in various areas of medicine and in other applications. However, no similar technique exists for dental applications. In this study, we propose a dual-energy technique for dental diagnoses based on voltage-switching. Materials and Methods: The method presented in this study allowed different groups of materials to be classified based on atomic number, thereby enabling two-dimensional images to be colorized. Computer simulations showed the feasibility of this approach. Using a number of different samples with typical biologic and synthetic dental materials, the technique was applied to radiographs acquired with a commercially available dental X-ray unit. Results: This technique provided a novel visual representation of the intraoral environment in three colors, and is of diagnostic value when compared to state-of-the-art grayscale images, since the oral cavity often contains multiple permanent foreign materials. Conclusion: This work developed a technique for two-dimensional dual-energy imaging in the context of dental applications and showed its feasibility with a commercial dental X-ray unit in simulation and experimental studies.

3D Inspection by Registration of CT and Dual X-ray Images

  • Kim, Youngjun;Kim, Wontae;Lee, Deukhee
    • Journal of International Society for Simulation Surgery
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    • 제3권1호
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    • pp.16-21
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    • 2016
  • Computed tomography (CT) can completely digitize the interior and the exterior of nearly any object without any destruction. Generally, the resolution for industrial CT is below a few microns. The industrial CT scanning, however, has a limitation because it requires long measuring and processing time. Whereas, 2D X-ray imaging is fast. In this paper, we propose a novel concept of 3D non-destructive inspection technique using the advantages of both micro-CT and dual X-ray images. After registering the master object’s CT data and the sample objects’ dual X-ray images, 3D non-destructive inspection is possible by analyzing the matching results. Calculation for the registration is accelerated by parallel computing using graphics processing unit (GPU).

Dual Energy X-ray 흡수 영상의 분해를 통한 뼈 영역 추출 (Bone Region Extraction by Dual Energy X-ray Absorbtion Image Decomposition)

  • 권주원;조선일;안영복;노용만
    • 한국멀티미디어학회논문지
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    • 제12권9호
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    • pp.1233-1241
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    • 2009
  • 골다공증은 45세 이상의 여성 50% 이상이 갖고 있는 질환이다. 더욱이 질병의 증상을 환자가 느끼지 못하여 병을 심화시키기 때문에 조기 진단으로 골다공증을 예방하는 것이 중요하다. 이를 위해 골밀도(Bone Mineral Density)의 효과적인 측정을 위한 다양한 연구가 국내외적으로 수행되고 있다. 골밀도 측정을 위해서는 X-선 영상이 활용되고 있으며, 이 중에서 이중 에너지 X 선 흡수법(DEXA)을 이용하여 골밀도를 측정하는 방법은 많은 관심을 받고 있는 분야이다. DEXA 영상은 서로 다른 두 에너지준위의 X선으로부터 영상을 획득함으로써 생체조직의 중첩에 의한 잡음을 효과적으로 줄여 진단효과를 높이는데 유용하다. 하지만, DEXA 영상에서 골영역을 추출하기 위해서는 실험적으로 계수를 결정해야 하는 문제점이 있다. 본 논문에서는 두 에너지 흡수 영상에서 골영역을 추출하기 위해 실험적으로 결정하는 변수를 X-선 영상의 물리적 의미와 각 에너지에 반응하는 생체조직들의 감쇠상수 특성을 기반으로 분석하여 골영역을 효과적으로 검출하는 방법을 제안한다. 더불어 다양한 영상을 적용한 실험으로 제안한 알고리즘의 효율성을 확인하였다.

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Study on Dual-Energy Signal and Noise of Double-Exposure X-Ray Imaging for High Conspicuity

  • Song, Boram;Kim, Changsoo;Kim, Junwoo
    • Journal of Radiation Protection and Research
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    • 제46권4호
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    • pp.160-169
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    • 2021
  • Background: Dual-energy X-ray images (DEI) can distinguish or improve materials of interest in a two-dimensional radiographic image, by combining two images obtained from separate low and high energies. The concepts of DEI performance describing the performance of double-exposure DEI systems in the Fourier domain been previously introduced, however, the performance of double-exposure DEI itself in terms of various parameters, has not been reported. Materials and Methods: To investigate the DEI performance, signal-difference-to-noise ratio, modulation transfer function, noise power spectrum, and noise equivalent quanta were used. Low- and high-energy were 60 and 130 kVp with 0.01-0.09 mGy, respectively. The energy-separation filter material and its thicknesses were tin (Sn) and 0.0-1.0 mm, respectively. Noise-reduction (NR) filtering used the Gaussian-filter NR, median-filter NR, and anti-correlated NR. Results and Discussion: DEI performance was affected by Sn-filter thickness, weighting factor, and dose allocation. All NR filtering successfully reduced noise, when compared with the dual-energy (DE) images without any NR filtering. Conclusion: The results indicated the significance of investigating, and evaluating suitable DEI performance, for DE images in chest radiography applications. Additionally, all the NR filtering methods were effective at reducing noise in the resultant DE images.

Clinical Applications of Dual-Energy CT

  • Saira Hamid;Muhammad Umer Nasir;Aaron So;Gordon Andrews;Savvas Nicolaou;Sadia Raheez Qamar
    • Korean Journal of Radiology
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    • 제22권6호
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    • pp.970-982
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    • 2021
  • Dual-energy CT (DECT) provides insights into the material properties of tissues and can differentiate between tissues with similar attenuation on conventional single-energy imaging. In the conventional CT scanner, differences in the X-ray attenuation between adjacent structures are dependent on the atomic number of the materials involved, whereas in DECT, the difference in the attenuation is dependent on both the atomic number and electron density. The basic principle of DECT is to obtain two datasets with different X-ray energy levels from the same anatomic region and material decomposition based on attenuation differences at different energy levels. In this article, we discuss the clinical applications of DECT and its potential robust improvements in performance and postprocessing capabilities.