• Title/Summary/Keyword: Line Artifact

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MRI Artifacts

  • 최순섭
    • Investigative Magnetic Resonance Imaging
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    • v.1 no.1
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    • pp.51-57
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    • 1997
  • MRI의 artifact는 대부분 신호의 부호화 방향에 따라서 방향성을 가지는데, 이를 요약해보면, 위상부호화 방향의 artifact에는 motion artifact, flow artifact, RF noise등이 있고, 주파수 부호화 방향의 artfact는 susceptibility artfact, chemical shift artifact, central line artifact등이 있으며, 양방향 모두 생길수 있는 것은 Aliasing artifact와 Gibb's phenomenon이고, 전체적으로 영샹의 질을 떨어뜨리는 것은 susceptibility artifact, Eddy current, cross talk등이 있다. 이런 artifact는 대부분은 MRI 자체의 물리적 특성에 다소간 기인하므로, artifact가 없는 양호한 영상을 얻기 위해서는 MRI의 설치 단계부터 관심이 필요하고, MRI의 기본원리와 다양한 artifact에 대해 이해함으로써, 제거 가능한 artifact는 제거하여 양질의 영상을 만들고 판독시의 오류를 피할 수 있도록 해야할 것이다.

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Image Correction Method for Segmented Linear Detector (모듈로 구성된 선형 검출기의 영상보정 방법)

  • Chon, Kwon-Su;Oh, Suk-Sim;Jin, Wang-Youn
    • Journal of the Korean Society of Radiology
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    • v.16 no.2
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    • pp.163-168
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    • 2022
  • Linear detectors composed of several modules have been widely used in industrial in-line inspection. Two dimensional image obtained from the linear detector shows line artifact at the connection part of each module. In this study, we proposed a method to remove the line artifact using the flat-field correction and a wedge phantom image. Conventional flat-field correction has been applied to remove the artifact, however there are still line artifacts even after applying correction. It was found that two edge pixels at the connection part of two modules were over-corrected after the flat-field correction. Those edge pixels was corrected by using the correction factor obtained from an image of the wedge phantom, and images removed line artifacts were obtained. It is necessary to improve the method obtained manually the correction factor from the image of the wedge phantom.

MR Artifacts

  • 문치웅
    • Proceedings of the KSMRM Conference
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    • 2001.11a
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    • pp.73-83
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    • 2001
  • 영상의 좋고 나쁨을 나타낼 때는 대조도, 해상도, 잡음 그리고 Artifact 등을 정량적으로 측정하거나 기준이 되는 영상과 정성적으로 비교하게 된다. 이 중에서 Artifact는 영상의 해부학적 진단에 오류를 범하게 하여 엉뚱한 병리학적 해석을 내리게 하거나 해석이 불가능하게 하기도 하므로 적절한 규명을 하여 그 원인을 제거하는 등, 응당한 조치를 취해 최상의 화질을 유지하기 위한 노력을 기울여야한다. MR 영상에서 Artifact는 기하학적 늘림(stretch), 주름(wrinkle), 왜곡(distortion), 허상(ghost), 줄(line), 눈잡음(snow noise), 신호의 증감 등과 같은 다양한 현상으로 나타나며 이들은 영상을 해석할 때 오류를 범하는 원인이 된다. Artifact의 발생원인으로는 MR 장치의 기능장애, 부적절한 영상기법의 구사, 또는 MR 영상의 고유한 성질에 기인하기도 한다. MR Artifacts의 근본적인 이해를 위해서는 MRI의 물리적 원리와 장비에 관한 이해가 필요하다. 이렇게 MR Artifact는 여러 가지 인자들이 복합적인 관계를 가지고 나타나기 때문에 분류하기가 쉽지 않지만 전형적인 양상과 원인 그리고 그에 대한 여러 가지 대책을 살펴보고자 한다.

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Artifacts in Digital Radiography (디지털 방사선 시스템에서 발생하는 Artifact)

  • Min, Jung-Whan;Kim, Jung-Min;Jeong, Hoi-Woun
    • Journal of radiological science and technology
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    • v.38 no.4
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    • pp.375-381
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    • 2015
  • Digital Radiography is a big part of diagnostic radiology. Because uncorrected digital radiography image supported false effect of Patient's health care. We must be manage the correct digital radiography image. Thus, the artifact images can have effect to make a wrong diagnosis. We report types of occurrence by analyzing the artifacts that occurs in digital radiography system. We had collected the artifacts occurred in digital radiography system of general hospital from 2007 to 2014. The collected data had analyzed and then had categorize as the occurred causes. The artifacts could be categorized by hardware artifacts, software artifacts, operating errors, system artifacts, and others. Hardware artifact from a Ghost artifact that is caused by lag effect occurred most frequently. The others cases are the artifacts caused by RF noise and foreign body in equipments. Software artifacts are many different types of reasons. The uncorrected processing artifacts and the image processing error artifacts occurred most frequently. Exposure data recognize (EDR) error artifacts, the processing error of commissural line, and etc., the software artifacts were caused by various reasons. Operating artifacts were caused when the user didn't have the full understanding of the digital medical image system. System artifacts had appeared the error due to DICOM header information and the compression algorithm. The obvious artifacts should be re-examined, and it could result in increasing the exposure dose of the patient. The unclear artifact leads to a wrong diagnosis and added examination. The ability to correctly determine artifact are required. We have to reduce the artifact occurrences by understanding its characteristic and providing sustainable education as well as the maintenance of the equipments.

The Method for Removing Jagging Artifact (Jagging Artifact 억제 기법)

  • Yang Seoung-Joon;Lee In-Hwan;Kwon Young-Jin
    • The Transactions of the Korean Institute of Electrical Engineers D
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    • v.54 no.3
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    • pp.194-197
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    • 2005
  • Digital display products are gradually becoming diversified and pursuing high-quality image display. Digital TV supports various video signal formats from conventional SD to digital HD because the format conversion of video image is required. Traditional format conversion of the video image is achieved by a 1-dimensional linear interpolator applying both horizontal and vertical direction. Jagging artifact can be expressed as the linkage of line segments in several directions. In this paper, we present the method that removes jagging artifact effectively using PCA (Principle Component Analysis) and reserve the detail in a given image.

Study on a moir$\acute{e}$ Artifact in the Use of Carbon Interspaced Antiscatter Grids for Digital Radiography (탄소 중간물질 그리드를 사용한 DR system에서의 moir$\acute{e}$ artifact에 관한 연구)

  • Lee, Sung-Ju;Cho, Hyo-Sung;Choi, Sung-Il;Cho, Hee-Moon;Oh, Ji-Eun;Lee, So-Young;Park, Yeon-Ok;Lee, Min-Sik
    • Journal of the Korean Society of Radiology
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    • v.2 no.4
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    • pp.5-9
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    • 2008
  • Antiscatter grids are widely used in radiography to remove scattered X-rays and thus improve the image contrast. However, the use of grids makes moir$\acute{e}$ artifact in the digital image, and this can be a critical reason for a mistaken diagnosis. In this paper, we examined that moire artifacts are how to relate with grid frequency, pixel pitch and grid rotation angle. To experiment we prepared 6 grids having different line frequencies (4.0 to 8.5lines/mm) and tested with a DR imager having a $139{\mu}m{\times}139{\mu}m$ pixel size. In the result of this experiment, we could get data about moir$\acute{e}$ artifact that could be make solution to remove the line artifact for the successful use of the grid in digital radiography. The acquired data and theory through this experiment, are expected to make contribution to the elimination of moir$\acute{e}$ artifact in the DR system.

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Intra-Motion Compensation Using CSRS method in MRI

  • Ro, Y.M.;Yi, J.H.;Cho, Z.H.
    • Journal of Biomedical Engineering Research
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    • v.15 no.4
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    • pp.377-382
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    • 1994
  • In the conventional Fourier imaging method in MRI (Magnetic Resonance Imaging), intramotion such as pulsatile flow makes zipper-like artifact along the phase encoding direction. On the other hand, line-integral projection reconstruction (LPR) method has advantages such as imaging of short T2, object and reduction of the flow artifact by elimination of the flow-induced phase fluctuation. The LPR, however, necessarily requires time consuming filtering and back-projection processes, so that the reconstruction takes long time. To overcome the long reconstruction time of the LPR and to obtain the flow artifact reduction effect, we adopted phase corrected concentric square raster sampling (CSRS) method and improved its imaging performance. The CSRS is a fast reconstruction method which has the same properties with the LPR. In this paper, we proposed a new method of flow artifact reduction using the CSRS method. Through computer simulations and experiments, we verified that the proposed method can eliminate phase fluctuations, thereby reducing the flow artifact and re- markably shorten the reconstruction time which required long time in the LPR.

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A new algorithm for minimization of metal artifact made on CT by pedicle screws (Pedicle screws에 의해 CT에 생성되는 metal artifact를 최소화하는 알고리즘 개발)

  • Lee, J.B.;Yeom, J.S.;Kim, N.K.;Lee, D.H.;Kim, J.H.;Kim, Y.
    • Proceedings of the KOSOMBE Conference
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    • v.1998 no.11
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    • pp.279-280
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    • 1998
  • A new algorithm is developed that can reduce the metal artifact on CT caused by pedicle screws. Metal artifact has been recognized as a major problem in precise reading of CT images. In particular, spine surgeons have been bothered with the artifact appearing on CT taken after pedicle screw insertion. To reduce the artifact, our new algorithm first finds the center line from CT images, and then overlays an exact size screw image on the CT. The exact screw is obtained from an actual design specifications of screw, and the CT images are processed to maximize bone margins while minimizing screw images through adjusting the window width and level. 실험 결과 단순한 Window W/L 조절로는 해결되지 않는군요. This algorithm provides spine surgeons with more accurate CT images and thus better interpretation of CT to ascertain the success or failure of pedicle screw insertion.

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A Bilateral Filtering Based Ringing Elimination Approach for Motion-blurred Restoration Image

  • Wang, Weiqing;Wang, Weihua;Yin, Jiao
    • Current Optics and Photonics
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    • v.4 no.3
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    • pp.200-209
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    • 2020
  • We describe an approach that uses a bilateral filter to reduce the ringing artifact in motion-blurred restoration image. It takes into account the specific physical structure of the ringing artifact combined with the properties of the human visual system. To properly reduce the ringing artifact, each of the adjacent pixels is limited in a straight line which has a given direction. To protect the edges and the texture regions of an image, our algorithm divides the image into texture regions and flat regions, and the artifact reduction algorithm is only applied to the flat region. Finally, we use 8 typical images and 5 objective quality evaluation indices to evaluate our algorithm. Experimental results show that our algorithm can obtain better results in subjective visual effect and in objective image quality evaluation.