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Nearinfrared Speckle Contrast Diffuse Correlation Tomography For Noncontact Imaging Of Tissue Blood Flow Distribution Daniel Irwin

  • SKU: BELL-46848736
Nearinfrared Speckle Contrast Diffuse Correlation Tomography For Noncontact Imaging Of Tissue Blood Flow Distribution Daniel Irwin
$ 31.00 $ 45.00 (-31%)

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Nearinfrared Speckle Contrast Diffuse Correlation Tomography For Noncontact Imaging Of Tissue Blood Flow Distribution Daniel Irwin instant download after payment.

Publisher: CRC Press
File Extension: PDF
File size: 3.81 MB
Pages: 65
Author: Daniel Irwin, Siavash Mazdeyasna, Chong Huang, Mehrana Mohtasebi, Xuhui Liu, Lei Chen, Guoqiang Yu
ISBN: 9781032133874, 9781032159362, 1032133872, 1032159367
Language: English
Year: 2022

Product desciption

Nearinfrared Speckle Contrast Diffuse Correlation Tomography For Noncontact Imaging Of Tissue Blood Flow Distribution Daniel Irwin by Daniel Irwin, Siavash Mazdeyasna, Chong Huang, Mehrana Mohtasebi, Xuhui Liu, Lei Chen, Guoqiang Yu 9781032133874, 9781032159362, 1032133872, 1032159367 instant download after payment.

Imaging of tissue blood flow (BF) distributions provides vital information for the diagnosis and therapeutic monitoring of various vascular diseases. The innovative near-infrared speckle contrast diffuse correlation tomography (scDCT) technique produces full 3D BF distributions. Many advanced features are provided over competing technologies including high sampling density, fast data acquisition, noninvasiveness, noncontact, affordability, portability, and translatability across varied subject sizes. The basic principle, instrumentation, and data analysis algorithms are presented in detail. The extensive applications are summarized such as imaging of cerebral BF (CBF) in mice, rat, and piglet animals with skull penetration into deep brain. Clinical human testing results are described by recovery of BF distributions on preterm infants (CBF) through incubator wall, and on sensitive burn tissues and mastectomy skin flaps without direct device-tissue interactions. Supporting activities outlined include integrated capability for acquiring surface curvature information, rapid 2D blood flow mapping, and optimizations via tissue-like phantoms and computer simulations. These applications and activities both highlight and guide the reader as to the expected abilities and limitations of scDCT for adapting into their own preclinical/clinical research, use in constrained environments (i.e., neonatal intensive care unit bedside), and use on vulnerable subjects and measurement sites.

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