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医学成像级液晶显示器的灰度校准及相关方面介绍。

Introduction to grayscale calibration and related aspects of medical imaging grade liquid crystal displays.

作者信息

Fetterly Kenneth A, Blume Hartwig R, Flynn Michael J, Samei Ehsan

机构信息

Department of Diagnostic Radiology, Mayo Clinic, Rochester, Minnesota, USA.

出版信息

J Digit Imaging. 2008 Jun;21(2):193-207. doi: 10.1007/s10278-007-9022-y.

Abstract

Consistent presentation of digital radiographic images at all locations within a medical center can help ensure a high level of patient care. Currently, liquid crystal displays (LCDs) are the electronic display technology of choice for viewing medical images. As the inherent luminance (and thereby perceived contrast) properties of different LCDs can vary substantially, calibration of the luminance response of these displays is required to ensure that observer perception of an image is consistent on all displays. The digital imaging and communication in medicine (DICOM) grayscale standard display function (GSDF) defines the luminance response of a display such that an observer's perception of image contrast is consistent throughout the pixel value range of a displayed image. The main purpose of this work is to review the theoretical and practical aspects of calibration of LCDs to the GSDF. Included herein is a review of LCD technology, principles of calibration, and other practical aspects related to calibration and observer perception of images presented on LCDs. Both grayscale and color displays are considered, and the influence of ambient light on calibration and perception is discussed.

摘要

在医疗中心的所有地点一致呈现数字射线图像有助于确保高水平的患者护理。目前,液晶显示器(LCD)是用于查看医学图像的首选电子显示技术。由于不同LCD的固有亮度(以及由此产生的感知对比度)特性可能有很大差异,因此需要对这些显示器的亮度响应进行校准,以确保观察者对图像的感知在所有显示器上都是一致的。医学数字成像和通信(DICOM)灰度标准显示功能(GSDF)定义了显示器的亮度响应,以便观察者对图像对比度的感知在显示图像的整个像素值范围内保持一致。这项工作的主要目的是回顾将LCD校准到GSDF的理论和实践方面。本文包括对LCD技术、校准原理以及与LCD上呈现的图像的校准和观察者感知相关的其他实践方面的回顾。同时考虑了灰度和彩色显示器,并讨论了环境光对校准和感知的影响。

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本文引用的文献

1
THE RELATION BETWEEN VISUAL ACUITY AND ILLUMINATION.
J Gen Physiol. 1928 Jan 20;11(3):255-81. doi: 10.1085/jgp.11.3.255.
2
Digital mammography image quality: image display.
J Am Coll Radiol. 2006 Aug;3(8):615-27. doi: 10.1016/j.jacr.2006.03.007.
3
Viewing angle performance of medical liquid crystal displays.
Med Phys. 2006 Mar;33(3):645-54. doi: 10.1118/1.2168430.
4
Resolution and noise measurements of five CRT and LCD medical displays.
Med Phys. 2006 Feb;33(2):308-19. doi: 10.1118/1.2150777.
5
ROC study of four LCD displays under typical medical center lighting conditions.
J Digit Imaging. 2006 Mar;19(1):30-40. doi: 10.1007/s10278-005-8149-y.
7
On the cause of disability glare and its dependence on glare angle, age and ocular pigmentation.
Clin Exp Optom. 2003 Nov;86(6):363-70. doi: 10.1111/j.1444-0938.2003.tb03080.x.
9
High-fidelity electronic display of digital radiographs.
Radiographics. 1999 Nov-Dec;19(6):1653-69. doi: 10.1148/radiographics.19.6.g99no081653.
10
A note on disability glare.
Vision Res. 1965 Oct;5(9):565-71. doi: 10.1016/0042-6989(65)90089-1.

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