2010Unpublished venueRequires access

Spatiotemporal distribution and modulation schemes for concentration-encoded medium-to-long range molecular communication

Mohammad Upal Mahfuz, Dimitrios Makrakis, Hussein T. Mouftah

Open publisher page 23 citations

Abstract

Spatiotemporal distribution and modulation schemes suitable for medium-to-long range molecular communication and networks have been investigated in this paper. This research has basically focused on bio-inspired transmission techniques for concentration-encoded nanoscale molecular communication system. Spatiotemporal distribution of a carrier signal in the form of concentration of diffused molecules and diffusion-dependent ranges are explained. Finally, the performance of modulation schemes has been evaluated in the form of steady state loss of amplitude of received concentration signals and its dependence to transmitter-receiver distance.

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What this paper is about

Spatiotemporal distribution and modulation schemes suitable for medium-to-long range molecular communication and networks have been investigated in this paper. This research has basically focused on bio-inspired transmission techniques for concentration-encoded nanoscale molecular communication system. Spatiotemporal distribution of a carrier signal in the form of concentration of diffused molecules and diffusion-dependent ranges are explained. Finally, the performance of modulation schemes has been evaluated in the form of steady state loss of amplitude of received concentration signals and its dependence to transmitter-receiver distance.

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OpenAlex reports 23 citations for this work. Citation counts describe recorded attention and do not establish research quality.

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Available abstract

Spatiotemporal distribution and modulation schemes suitable for medium-to-long range molecular communication and networks have been investigated in this paper. This research has basically focused on bio-inspired transmission techniques for concentration-encoded nanoscale molecular communication system. Spatiotemporal distribution of a carrier signal in the form of concentration of diffused molecules and diffusion-dependent ranges are explained. Finally, the performance of modulation schemes has been evaluated in the form of steady state loss of amplitude of received concentration signals and its dependence to transmitter-receiver distance.

Key concepts: Molecular communication, Modulation (music), Transmitter, Transmission (telecommunications), Diffusion, Range (aeronautics), SIGNAL (programming language), Nanoscopic scale

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