| Literature DB >> 26538682 |
Timothy York1, Samuel B Powell2, Shengkui Gao3, Lindsey Kahan4, Tauseef Charanya5, Debajit Saha6, Nicholas W Roberts7, Thomas W Cronin8, Justin Marshall9, Samuel Achilefu10, Spencer P Lake11, Baranidharan Raman12, Viktor Gruev13.
Abstract
In this paper, we present recent work on bioinspired polarization imaging sensors and their applications in biomedicine. In particular, we focus on three different aspects of these sensors. First, we describe the electro-optical challenges in realizing a bioinspired polarization imager, and in particular, we provide a detailed description of a recent low-power complementary metal-oxide-semiconductor (CMOS) polarization imager. Second, we focus on signal processing algorithms tailored for this new class of bioinspired polarization imaging sensors, such as calibration and interpolation. Third, the emergence of these sensors has enabled rapid progress in characterizing polarization signals and environmental parameters in nature, as well as several biomedical areas, such as label-free optical neural recording, dynamic tissue strength analysis, and early diagnosis of flat cancerous lesions in a murine colorectal tumor model. We highlight results obtained from these three areas and discuss future applications for these sensors.Entities:
Keywords: Bioinspired circuits; calibration; complementary metal–oxide–semiconductor (CMOS) image sensor; current-mode imaging; interpolation; neural recording; optical neural recording; polarization
Year: 2014 PMID: 26538682 PMCID: PMC4629637 DOI: 10.1109/JPROC.2014.2342537
Source DB: PubMed Journal: Proc IEEE Inst Electr Electron Eng ISSN: 0018-9219 Impact factor: 10.961