2022Unpublished venueRequires access

Frequency-Time-Division-Multiplexed Single-Pixel Imaging for Biomedical Applications

Hideharu Mikami

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Abstract

We demonstrate high-speed single-pixel imaging by integrating frequency-division multiplexing and time-division multiplexing and applying the combined technique, namely frequency-time-division multiplexing (FTDM), to optical imaging. We employ the technique to obtain fluorescence images from biological cells.

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What this paper is about

We demonstrate high-speed single-pixel imaging by integrating frequency-division multiplexing and time-division multiplexing and applying the combined technique, namely frequency-time-division multiplexing (FTDM), to optical imaging. We employ the technique to obtain fluorescence images from biological cells.

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Available abstract

We demonstrate high-speed single-pixel imaging by integrating frequency-division multiplexing and time-division multiplexing and applying the combined technique, namely frequency-time-division multiplexing (FTDM), to optical imaging. We employ the technique to obtain fluorescence images from biological cells.

Key concepts: Multiplexing, Division (mathematics), Time-division multiplexing, Frequency-division multiplexing, Computer science, Pixel, Electronic engineering, Orthogonal frequency-division multiplexing

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