A Semi-Analytical Method for Channel Modeling in Diffusion-Based Molecular Communication Networks

被引:7
|
作者
Zoofaghari, Mohammad [1 ]
Arjmandi, Hamidreza [1 ]
Etemadi, Ali [2 ]
Balasingham, Ilangko [3 ,4 ]
机构
[1] Yazd Univ, Dept Elect Engn, Yazd 89195741, Iran
[2] Tarbiat Modares Univ, Sch Elect & Comp Engn, Tehran 14115111, Iran
[3] Oslo Univ Hosp OUS, Intervent Ctr, N-0372 Oslo, Norway
[4] Norwegian Univ Sci & Technol NTNU, Dept Elect & Telecommun, N-7491 Trondheim, Norway
关键词
Receivers; Transmitters; Geometry; Boundary conditions; Analytical models; Molecular communication (telecommunication); Green's function methods; Diffusion Processes; molecular communications; channel models; Green's second identity; method of moments; RECEIVER DESIGN; PERFORMANCE; MODULATION; SYSTEMS;
D O I
10.1109/TCOMM.2021.3065372
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
Channel modeling is a challenging vital step towards the development of diffusion-based molecular communication networks (DMCNs). Analytical approaches for diffusion channel modeling are limited to simple and specific geometries and boundary conditions. Also, simulation- and experiment-driven methods are very time-consuming and computationally complex. In this paper, the channel model for DMCN employing the fundamental concentration Green's function (CGF) is characterized. A general homogeneous boundary condition framework is considered that includes any linear reaction systems at the boundaries in the environment. To obtain the CGF for a general DMCN including multiple transmitters, receivers, and other objects with arbitrary geometries and boundary conditions, a semi-analytical method (SAM) is proposed. The CGF linear integral equation (CLIE) is analytically derived. By employing the numerical method of moments, the problem of CGF derivation from CLIE is transformed into an inverse matrix problem. Moreover, a sequential SAM is proposed that converts the inversion problem of a large matrix into multiple smaller matrices reducing the computational complexity. Particle-based simulator confirms the results obtained from the proposed SAM. The convergence and run time for the proposed method are examined. Further, the error probability of a simple diffusion-based molecular communication system is analyzed and examined using the proposed method.
引用
收藏
页码:3957 / 3970
页数:14
相关论文
共 50 条
  • [31] Channel impulse response-based source localization in a diffusion-based molecular communication system
    Baidoo-Williams, Henry E.
    Rahman, Muhammad Mahboob Ur
    Abbasi, Qammer H.
    INTERNET TECHNOLOGY LETTERS, 2020, 3 (02)
  • [32] Semi-Analytical Source Method for Reaction-Diffusion Problems
    Cole, K. D.
    Cetin, B.
    Demirel, Y.
    JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 2018, 140 (06):
  • [33] Diffusion-Based Noise Analysis for Molecular Communication in Nanonetworks
    Pierobon, Massimiliano
    Akyildiz, Ian F.
    IEEE TRANSACTIONS ON SIGNAL PROCESSING, 2011, 59 (06) : 2532 - 2547
  • [34] Communication over Diffusion-Based Molecular Timing Channels
    Murin, Yonathan
    Farsad, Nariman
    Chowdhury, Mainak
    Goldsmith, Andrea
    2016 IEEE GLOBAL COMMUNICATIONS CONFERENCE (GLOBECOM), 2016,
  • [35] Channel Estimation Techniques for Diffusion-Based Molecular Communications
    Jamali, Vahid
    Ahmadzadeh, Arman
    Jardin, Christophe
    Sticht, Heinrich
    Schober, Robert
    2016 IEEE INTERNATIONAL CONFERENCE ON COMMUNICATIONS (ICC), 2016,
  • [36] Optimal Reception Delay in Diffusion-Based Molecular Communication
    Akdeniz, Bayram Cevdet
    Pusane, Ali Emre
    Tugcu, Tuna
    IEEE COMMUNICATIONS LETTERS, 2018, 22 (01) : 57 - 60
  • [37] Detection Interval Optimization for Diffusion-based Molecular Communication
    Chen, Xuan
    Wen, Miaowen
    Ji, Fei
    Huang, Yu
    Tang, Yuankun
    Eckford, Andrew W.
    IEEE INTERNATIONAL CONFERENCE ON COMMUNICATIONS (ICC 2022), 2022, : 3691 - 3696
  • [38] NETWORKING CHALLENGES AND PRINCIPLES IN DIFFUSION-BASED MOLECULAR COMMUNICATION
    Llatser, Ignacio
    Cabellos-Aparicio, Albert
    Alarcon, Eduard
    IEEE WIRELESS COMMUNICATIONS, 2012, 19 (05) : 36 - 41
  • [39] Trend and Challenges of the Diffusion-based Molecular Communication for Nanonetworks
    Park, Junho
    Kim, Yeonseok
    Oh, Sangjun
    Park, Kyoungjun
    Cho, Sungrae
    2015 INTERNATIONAL CONFERENCE ON ICT CONVERGENCE (ICTC), 2015, : 1362 - 1364
  • [40] Capacity of Diffusion-based Molecular Communication with Ligand Receptors
    Einolghozati, Arash
    Sardari, Mohsen
    Fekri, Faramarz
    2011 IEEE INFORMATION THEORY WORKSHOP (ITW), 2011,