2020•Unpublished venueRequires access

Binary Phase-Shift Keying for Ultrasonic Intra-Body Area Networks

Justine Guedey, Yann Deval, H. Lapuyade, François Rivet

Open publisher page 2 citations

Abstract

This paper investigates modulation schemes for ultrasonic intra-body networks. State-of-the-art implanted medical devices mostly operate with On-Off Keying (OOK) which is the simplest type of modulation. However, MATLAB simulations depict the higher power efficiency of Binary Phase-Shift Keying (BPSK) over OOK and other binary modulation techniques. Moreover, at equal Bit Error Rate (BER) and emitted signal power, the higher power efficiency eventually results in a gain of achievable depth that is quantified in a gelatin phantom. At last, alternatives to power-hungry Phased-Locked Loop (PLL)-based demodulation circuits are explored as their complex structure generally thwarts the use of BPSK modulation.

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What this paper is about

This paper investigates modulation schemes for ultrasonic intra-body networks. State-of-the-art implanted medical devices mostly operate with On-Off Keying (OOK) which is the simplest type of modulation. However, MATLAB simulations depict the higher power efficiency of Binary Phase-Shift Keying (BPSK) over OOK and other binary modulation techniques. Moreover, at equal Bit Error Rate (BER) and emitted signal power, the higher power efficiency eventually results in a gain of achievable depth that is quantified in a gelatin phantom. At last, alternatives to power-hungry Phased-Locked Loop (PLL)-based demodulation circuits are explored as their complex structure generally thwarts the use of BPSK modulation.

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Available abstract

This paper investigates modulation schemes for ultrasonic intra-body networks. State-of-the-art implanted medical devices mostly operate with On-Off Keying (OOK) which is the simplest type of modulation. However, MATLAB simulations depict the higher power efficiency of Binary Phase-Shift Keying (BPSK) over OOK and other binary modulation techniques. Moreover, at equal Bit Error Rate (BER) and emitted signal power, the higher power efficiency eventually results in a gain of achievable depth that is quantified in a gelatin phantom. At last, alternatives to power-hungry Phased-Locked Loop (PLL)-based demodulation circuits are explored as their complex structure generally thwarts the use of BPSK modulation.

Key concepts: Phase-shift keying, On-off keying, Demodulation, Keying, Minimum-shift keying, Amplitude-shift keying, Modulation (music), Electronic engineering

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