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  4. Fast, high-density, and depth-sensitive time-resolved laser speckle contrast imaging (TR-LSCI) of cerebral blood flow
 
conference paper

Fast, high-density, and depth-sensitive time-resolved laser speckle contrast imaging (TR-LSCI) of cerebral blood flow

Fathi, Faraneh
•
Akbari, Faezeh
•
Haratbar, Samaneh Rabienia
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Walsh, Alex J.
•
Roblyer, Darren M.
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March 20, 2025
Multiscale Imaging and Spectroscopy VI
Multiscale Imaging and Spectroscopy VI

Imaging cerebral blood flow (CBF) is crucial for diagnosing cerebrovascular diseases. Conventional laser speckle contrast imaging (LSCI) offers high spatiotemporal resolution but limited penetration depth (<1 mm). This study introduces an innovative time-resolved laser speckle contrast imaging (TR-LSCI) technique, which illuminates picosecond-pulsed, coherent, widefield, near-infrared light onto the head and synchronizes a newly launched, ultrafast, high-resolution, picosecond-gated SPAD512^2 camera to continuously and rapidly capture CBF maps at different depths, thus reducing partial volume effects from the overlying skull. The new-generation TR-LSCI enabled 2D mapping of pulsatile CBF distributions in rodents with a fast-sampling rate of 21.1 Hz. The FFT analyses of pulsatile CBF maps revealed multiple harmonic frequency peaks, which corresponded to respiratory and heartbeat signals. The new TR-LSCI with high spatiotemporal resolution captures fast hemodynamic changes across different brain regions and generates large spatiotemporal datasets for extracting intracranial pressure information from measured pulsatile CBF waveforms using deep learning algorithms.

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Type
conference paper
DOI
10.1117/12.3041499
Author(s)
Fathi, Faraneh

University of Kentucky

Akbari, Faezeh

University of Kentucky

Haratbar, Samaneh Rabienia

University of Kentucky

Singh, Dara

University of Kentucky

Mohtasebi, Mehrana

University of Kentucky

Bruschini, Claudio  

EPFL

Charbon, Edoardo  

EPFL

Chen, Lei

University of Kentucky

Yu, Guoqiang

University of Kentucky

Editors
Walsh, Alex J.
•
Roblyer, Darren M.
•
Campagnola, Paul J.
Date Issued

2025-03-20

Publisher

SPIE

Published in
Multiscale Imaging and Spectroscopy VI
Series title/Series vol.

Proceedings SPIE ; PC13327

Start page

21

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
AQUA  
Event nameEvent acronymEvent placeEvent date
Multiscale Imaging and Spectroscopy VI

San Francisco, United States

2025-01-25 - 2025-01-31

Available on Infoscience
December 23, 2025
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/257277
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