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首页> 外文期刊>Journal of biomedical optics >Experimental validation of a high-resolution diffuse optical imaging modality: photomagnetic imaging
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Experimental validation of a high-resolution diffuse optical imaging modality: photomagnetic imaging

机译:高分辨率漫射光学成像模式的实验验证:光磁成像

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摘要

We present experimental results that validate our imaging technique termed photomagnetic imaging (PMI). PMI illuminates the medium under investigation with a near-infrared light and measures the induced temperature increase using magnetic resonance imaging. A multiphysics solver combining light and heat propagation is used to model spatiotemporal distribution of temperature increase. Furthermore, a dedicated PMI reconstruction algorithm has been developed to reveal high-resolution optical absorption maps from temperature measurements. Being able to perform measurements at any point within the medium, PMI overcomes the limitations of conventional diffuse optical imaging. We present experimental results obtained on agarose phantoms mimicking biological tissue with inclusions having either different sizes or absorption contrasts, located at various depths. The reconstructed images show that PMI can successfully resolve these inclusions with high resolution and recover their absorption coefficient with high-quantitative accuracy. Even a 1-mm inclusion located 6-mm deep is recovered successfully and its absorption coefficient is underestimated by only 32%. The improved PMI system presented here successfully operates under the maximum skin exposure limits defined by the American National Standards Institute, which opens up the exciting possibility of its future clinical use for diagnostic pur-poses.
机译:我们提供的实验结果证实了我们称为光磁成像(PMI)的成像技术。 PMI用近红外光照射被测介质,并使用磁共振成像测量引起的温度升高。结合光和热传播的多物理场求解器用于模拟温度升高的时空分布。此外,已经开发了专用的PMI重建算法,以显示来自温度测量的高分辨率光学吸收图。 PMI能够在介质内的任何点进行测量,克服了常规漫射光学成像的局限性。我们提出了在模拟生物组织的琼脂糖体模上获得的实验结果,其具有不同大小或吸收对比,位于不同深度。重建的图像表明,PMI可以成功地高分辨率分辨这些夹杂物,并以高定量精度恢复它们的吸收系数。即使位于6毫米深的1毫米夹杂物也能成功恢复,其吸收系数仅被低估了32%。此处介绍的改进的PMI系统在美国国家标准协会定义的最大皮肤暴露极限下成功运行,这为将来将其用于诊断目的提供了令人兴奋的可能性。

著录项

  • 来源
    《Journal of biomedical optics》 |2016年第1期|016009.1-016009.9|共9页
  • 作者单位

    University of California, Tu and Yuen Center for Functional Onco-Imaging, Department of Radiological Sciences, 164 Irvine Hall, Irvine, California, United States;

    University of California, Tu and Yuen Center for Functional Onco-Imaging, Department of Radiological Sciences, 164 Irvine Hall, Irvine, California, United States;

    University of California, Tu and Yuen Center for Functional Onco-Imaging, Department of Radiological Sciences, 164 Irvine Hall, Irvine, California, United States,Washington University in St. Louis, Mallinckrodt Institute of Radiology, 510 South Kingshighway Boulevard, St. Louis, Missouri 63110, United States;

    University of California, Tu and Yuen Center for Functional Onco-Imaging, Department of Radiological Sciences, 164 Irvine Hall, Irvine, California, United States,Massachusetts General Hospital and Harvard Medical School, Department of Radiation Oncology, 55 Fruit Street, Boston, Massachusetts 02144, United States;

    University of California, Tu and Yuen Center for Functional Onco-Imaging, Department of Radiological Sciences, 164 Irvine Hall, Irvine, California, United States,Philips Healthcare, N27 West 23676 Paul Road, Pewaukee, Wisconsin 53072, United States;

    University of California, Tu and Yuen Center for Functional Onco-Imaging, Department of Radiological Sciences, 164 Irvine Hall, Irvine, California, United States;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《化学文摘》(CA);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    image reconstruction techniques; inverse problems; light propagation in tissues; medical and biological imaging;

    机译:图像重建技术;反问题光在组织中的传播;医学和生物成像;

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