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  <title><![CDATA[PhD Proposal by Xuanwen Hua]]></title>
  <body><![CDATA[<p>Xuanwen Hua</p>

<p><strong>BME PhD Proposal</strong></p>

<p>&nbsp;</p>

<p><strong>Date: </strong>Thursday, July 22<sup>nd</sup></p>

<p><strong>Time:</strong> 12pm-2pm</p>

<p>&nbsp;</p>

<p><strong>Meeting Link:</strong> Zoom / <a href="https://us02web.zoom.us/j/9933642230?pwd=VEFmUlFZeWpWRTRPUTRITldxdlpVZz09">https://us02web.zoom.us/j/9933642230?pwd=VEFmUlFZeWpWRTRPUTRITldxdlpVZz09</a> &nbsp;<br />
(Meeting ID: 993 364 2230, Passcode: hxw2021 )</p>

<p>&nbsp;</p>

<p><strong>Committee Members: </strong></p>

<p>Dr. Shu Jia (Advisor)</p>

<p>Dr. Ahmet Coskun</p>

<p>Dr. Hang Lu</p>

<p>Dr. Peng Qiu</p>

<p>Dr. Francisco Robles</p>

<p><strong>Title:</strong> High-Resolution, High-Throughput, and Machine-Intelligent Single-Cell Imaging with Microfluidic Fourier Light-Field Microscopy (&mu;-FLFM)</p>

<p><strong>Abstract:</strong> Observation and interrogation of cellular structures and functions at a high spatiotemporal resolution and throughput have been playing a significant role in comprehending cell physiology, development, and pathology. Recent years have witnessed the emergence of advanced imaging techniques, which have revolutionized a wide range of single-cell studies. Nevertheless, there has been a persistent need of new imaging technology to accommodate to the bloom of biological discoveries. Here, the Ph.D. Candidate proposes to develop a microfluidic Fourier Light-Field Microscopy (&mu;-FLFM) system, enhanced by deep learning, for high-resolution, high-throughput volumetric cell imaging. Built upon the Candidate&rsquo;s prior training and accomplishments, the objectives of the project are to establish a PSF-engineering strategy for depth-extended high-resolution volumetric imaging with wavefront modulation and aperture partitioning, apply optofluidics to the imaging system for high-throughput high-resolution volumetric imaging, and enhance the optofluidic imaging capability of the system with deep learning. The Candidate anticipates this innovative imaging system to provide a multiplexed methodology for investigating subcellular anatomy, function and cell-to-cell variability, paving a promising pathway for broad single-cell investigations and technological breakthroughs.</p>

<p>&nbsp;</p>
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