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  <title><![CDATA[Ph.D. Dissertation Defense - Sihwan Kim]]></title>
  <body><![CDATA[<p><strong>Title</strong><em>:&nbsp; </em><em>Low Power Mixed Signal System Design Environment using Floating-gate FPAAs</em></p>

<p><strong>Committee:</strong></p>

<p>Dr. Jennifer Hasler, ECE, Chair , Advisor</p>

<p>Dr. Saibal Mukhopadhyay, ECE</p>

<p>Dr. Sung-Kyu Lim, ECE</p>

<p>Dr. Aaron Lanterman, ECE</p>

<p>Dr. Scott Koziol, Baylor University</p>

<p><strong>Abstract: </strong></p>

<p>The objective of this research is to&nbsp;create a low-power mixed-signal system design&nbsp;environment using FG FPAAs. To achieve this, my research focused on implementing&nbsp;a compact hardware, developing algorithms and tools, and establishing a solid calibration flow. The first phase, implementing a compact hardware, involved developing&nbsp;FG SoC FPAAs including an FG programming infrastructure and built-in self test&nbsp;circuits, as well as designing smaller test boards to enable IoT embedded applications. Secondly, FG FPAA systems need to provide interfacing tools for application&nbsp;designers. This required a synthesis toolset generating a switch list from the user&#39;s&nbsp;design and an FG programming algorithm compatible with the SoC FPAAs. Lastly,&nbsp;a solid calibration&nbsp;flow solved the variation problem of each IC, which has been an&nbsp;issue in typical analog system designs. By coordinating the development of these&nbsp;three phases, it has been enabled to provide a powerful low-power system design environment, where system engineers consider analog circuits as black boxes, so they&nbsp;can enjoy the design and implementation of higher level applications, as if they are&nbsp;designing digital systems.</p>
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