修车大队一品楼qm论坛51一品茶楼论坛,栖凤楼品茶全国楼凤app软件 ,栖凤阁全国论坛入口,广州百花丛bhc论坛杭州百花坊妃子阁

Caveats to Obtaining Retinal Topography With Optical Coherence Tomography

DOI:10.1167/iovs.14-15212 期刊:Investigative Opthalmology & Visual Science 出版年份:2014 更新时间:2025-09-09 09:28:46
摘要: We read with great interest the article by Oh et al.1 on the assessment of retinal topography in myopic eyes using spectral domain optical coherence tomography (SD-OCT). In their article, the investigators described different characteristics of retinal topography to indicate variations in ocular shape in myopia (such as a retina sloped nasally versus temporally). Like similar prior studies using magnetic resonance imaging (MRI) to measure posterior eye shape in myopia, we agree this work in retinal topography provides important insight into classifying and risk stratifying myopic eyes. However, we would like to highlight a misconception regarding the use of posterior segment SD-OCT images for absolute retinal topography measurements. In the Discussion section, it is stated that 'The rainbow pseudo-colors in the topographic (RPE) layer image represent height from the coronal plane of the eye, with blue indicating low height and red indicating high height.' In OCT, the reference plane is not the coronal plane or any plane within the eye. Instead, the reference plane is a reference delay path length in the OCT device itself.2 Axial distance (height) within an OCT image represents sample distances relative to that reference delay in optical path length. Therefore, because the reference is in the OCT device and not in the eye itself, how the eye is positioned relative to the OCT device affects the eye’s appearance in the OCT image. For example, all three distinct subtypes of retinal sloping described in the article (nasal, middle, and temporal) can be produced from the same eye simply by moving the OCT scan beam position in the pupil slightly relative to the pupil center (see Figure). The same effect also would occur if, conversely, the subject’s eye moved relative to the OCT device. Further, OCT images of the posterior eye are distorted by scan geometry and optical artifacts as our group and others have described previously.3–5 The cumulative effect is that an OCT image of the posterior eye is not an exact spatial replica or digital 'cast' of the eye itself. Hence, when using OCT to measure the absolute topography of the posterior eye, these imaging effects must be considered to separate them from actual topographic differences present in these myopic eyes.
作者: Anthony N. Kuo,Oscar Carrasco-Zevallos,Cynthia A. Toth,Joseph A. Izatt
AI智能分析
纠错
研究概述 实验方案 设备清单

To highlight a misconception regarding the use of posterior segment SD-OCT images for absolute retinal topography measurements and to discuss the implications of OCT imaging artifacts on the interpretation of retinal topography in myopic eyes.

The letter concludes that when using OCT to measure the absolute topography of the posterior eye, imaging effects such as scan geometry and optical artifacts must be considered to accurately interpret the data and separate these effects from actual topographic differences in myopic eyes.

The letter points out that OCT images are subject to distortions from scan geometry and optical artifacts, and that the reference plane in OCT is within the device itself, not the eye, affecting the interpretation of retinal topography.

SCI高频之选
查看全部>
  • AQ6370D
    AQ6370D
    463

    型号:AQ6370D

    厂家:Yokogawa

    智能分析: Yokogawa AQ6370D是一款性能卓越的光谱分析仪,适用于光通信领域以及光放大器(EDFA)的测量和评估。其高波长分辨率、精准度和宽动态范围使其成为实验室和工业环境中的理想选择。虽然设备体积较大且预热时间较长,但其丰富的接口和出色的显示屏设计弥补了这些不足,整体是一款值得推荐的光谱分析仪。
    获取实验方案
  • ZEISS EVO Family

    型号:ZEISS EVO Family

    厂家:Carl Zeiss Microscopy GmbH

    智能分析: ZEISS EVO系列是一款高性能模块化扫描电子显微镜,适用于材料科学、生命科学及工业质量控制等领域。其先进的技术特性包括高分辨率、广泛加速电压范围和集成EDS系统。该产品操作直观,支持多用户环境,适合科学研究和工业应用。然而,价格信息缺失以及潜在的维护成本可能是其需要注意的方面。总体而言,ZEISS EVO系列表现优秀,值得推荐给专业用户。
    获取实验方案
  • Crossbeam Family

    型号:Crossbeam Family350/550

    厂家:Carl Zeiss Microscopy GmbH

    智能分析: ZEISS Crossbeam系列是蔡司公司推出的一款高端光电分析设备,结合了场发射扫描电子显微镜(FE-SEM)和聚焦离子束(FIB)的功能,适用于材料科学、纳米技术和半导体行业等多个领域。其高分辨率成像能力和自动化样品制备功能使其成为高通量分析的理想选择。此外,该设备支持多种检测器,具备强大的多功能性,是高精度研究和工业应用的利器。然而,由于其高端定位,设备成本较高且操作需要专业技能。总体而言,该设备表现卓越,为科学研究和工业应用提供了先进的解决方案。
    获取实验方案
  • Axio Observer

    型号:Axio Observer

    厂家:Carl Zeiss Microscopy GmbH

    智能分析: Axio Observer是一款专为金相学研究设计的倒置显微镜系统,以其高效的设计和蔡司知名的光学技术为特色。它能够快速、灵活地分析大量样品,并支持自动化操作,适用于多种应用场景,包括晶粒尺寸分析、非金属夹杂物检测等。然而,其重量较大且光源寿命较短,可能对使用者提出了额外的维护和空间管理需求。总体而言,这款产品在性能和可靠性方面表现出色,特别适合专业实验室使用。
    获取实验方案
  • ZEISS LSM 990 Spectral Multiplex

    型号:ZEISS LSM 990 Spectral Multiplex

    厂家:Carl Zeiss Microscopy GmbH

    智能分析: ZEISS LSM 990 Spectral Multiplex是一款定位于高端科研机构的光谱成像系统,具有卓越的光谱分辨率和自动化功能,适用于复杂的生物、医学及材料科学实验。其高效的荧光标签分离能力和多功能自动化设计为用户提供了强大的实验支持。然而,高昂的价格和一定的学习曲线可能对中小型实验室构成挑战。总体而言,这是一款性能优越、适应性强的高端实验设备。
    获取实验方案
  • ZEISS Sigma 300 with RISE

    型号:ZEISS Sigma 300 with RISE

    厂家:Carl Zeiss Microscopy GmbH

    智能分析: ZEISS Sigma 300 with RISE是蔡司公司推出的一款高端光谱分析仪,集成了拉曼成像和扫描电子显微镜技术,能够提供高质量的化学和结构分析。其功能强大,支持多领域应用,但设备价格较高且操作学习曲线可能较陡。适用于科研机构和高端实验室,是材料科学和生命科学领域的理想选择。
    获取实验方案
立即咨询

加载中....

论文纠错

您正在对论文“Caveats to Obtaining Retinal Topography With Optical Coherence Tomography”进行纠错

纠错内容

联系方式(选填)

设备询价

称呼

电话

+86

单位名称

用途

期望交货周期

产品预约

称呼

电话

+86

单位名称

用途

期望交货周期