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用于在线检测健康受试者激光多普勒血流仪信号中瞬态信号高值的费希尔信息和香农熵

Fisher information and Shannon entropy for on-line detection of transient signal high-values in laser Doppler flowmetry signals of healthy subjects.

作者信息

Humeau Anne, Trzepizur Wojciech, Rousseau David, Chapeau-Blondeau François, Abraham Pierre

机构信息

Groupe esaip, 18 rue du 8 mai 1945, BP 80022, 49180 Saint Barthélémy d'Anjou cedex, France.

出版信息

Phys Med Biol. 2008 Sep 21;53(18):5061-76. doi: 10.1088/0031-9155/53/18/014. Epub 2008 Aug 22.

Abstract

Laser Doppler flowmetry (LDF) is an easy-to-use method for the assessment of microcirculatory blood flow in tissues. However, LDF recordings very often present TRAnsient Signal High-values (TRASH), generally of a few seconds. These TRASH can come from tissue motions, optical fibre movements, movements of the probe head relative to the tissue, etc. They often lead to difficulties in signal global interpretations. In order to test the possibility of detecting automatically these TRASH for their removal, we process noisy and noiseless LDF signals with two indices from information theory, namely Fisher information and Shannon entropy. For this purpose, LDF signals from 13 healthy subjects are recorded at rest, during vascular occlusion of 3 min, and during post-occlusive hyperaemia. Computation of Fisher information and Shannon entropy values shows that, when calibrated, these two indices can be complementary to detect TRASH and be insensitive to the rapid increases of blood flow induced by post-occlusive hyperaemia. Moreover, the real-time algorithm has the advantage of being easy to implement and does not require any frequency analysis. This study opens new fields of application for Fisher information and Shannon entropy: LDF 'denoising'.

摘要

激光多普勒血流仪(LDF)是一种用于评估组织微循环血流的易于使用的方法。然而,LDF记录经常出现短暂信号高值(TRASH),通常持续几秒。这些TRASH可能来自组织运动、光纤移动、探头相对于组织的移动等。它们常常导致信号整体解释方面的困难。为了测试自动检测并去除这些TRASH的可能性,我们用信息论中的两个指标,即费希尔信息和香农熵,来处理有噪声和无噪声的LDF信号。为此,记录了13名健康受试者在静息状态、3分钟血管阻塞期间以及阻塞后充血期间的LDF信号。费希尔信息和香农熵值的计算表明,校准后,这两个指标可以互补以检测TRASH,并且对阻塞后充血引起的血流快速增加不敏感。此外,实时算法具有易于实现的优点,并且不需要任何频率分析。这项研究为费希尔信息和香农熵开辟了新的应用领域:LDF“去噪”。

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