Building Semantic Communication System via Molecules: An End-to-End Training Approach (2404.09595v1)
Abstract: The concept of semantic communication provides a novel approach for applications in scenarios with limited communication resources. In this paper, we propose an end-to-end (E2E) semantic molecular communication system, aiming to enhance the efficiency of molecular communication systems by reducing the transmitted information. Specifically, following the joint source channel coding paradigm, the network is designed to encode the task-relevant information into the concentration of the information molecules, which is robust to the degradation of the molecular communication channel. Furthermore, we propose a channel network to enable the E2E learning over the non-differentiable molecular channel. Experimental results demonstrate the superior performance of the semantic molecular communication system over the conventional methods in classification tasks.
- The Mathematical Theory of Communication. University of illinois Press, 1949.
- On the road to 6g: Visions, requirements, key technologies, and testbeds. IEEE Communications Surveys &\&& Tutorials, 25(2):905–974, 2023.
- Beyond transmitting bits: Context, semantics, and task-oriented communications. IEEE Journal on Selected Areas in Communications, 41(1):5–41, 2023.
- Cddm: Channel denoising diffusion models for wireless semantic communications. IEEE Transactions on Wireless Communications, pages 1–1, 2024.
- Encrypted semantic communication using adversarial training for privacy preserving. IEEE Communications Letters, 27(6):1486–1490, 2023.
- Tadashi Nakano. Molecular Communication. Cambridge University Press, 2013.
- A comprehensive survey of recent advancements in molecular communication. IEEE Communications Surveys &\&& Tutorials, 18(3):1887–1919, 2016.
- Experimental research in synthetic molecular communications – part ii. IEEE Nanotechnology Magazine, 17(3):54–65, 2023.
- A molecular communication link for monitoring in confined environments. In 2014 IEEE International Conference on Communications Workshops (ICC), pages 718–723, 2014.
- Molecular versus electromagnetic wave propagation loss in macro-scale environments. IEEE Transactions on Molecular, Biological and Multi-Scale Communications, 1(1):18–25, 2015.
- Vertical underwater molecular communications via buoyancy: Gaussian velocity distribution of signal. In ICC 2020 - 2020 IEEE International Conference on Communications (ICC), pages 1–6, 2020.
- Applications of molecular communications to medicine: A survey. Nano Communication Networks, 7:27–45, 2016.
- Novel molecular signaling method and system for molecular communication in human body. IEEE Access, 8:119361–119375, 2020.
- Fantastic voyage: Designing self-powered nanorobots. Angewandte Chemie International Edition, 51(34):8434–8445, 2012.
- A survey on modulation techniques in molecular communication via diffusion. IEEE Communications Surveys &\&& Tutorials, 23(1):7–28, 2021.
- Coding in diffusion-based molecular nanonetworks: A comprehensive survey. IEEE Access, 11:16411–16465, 2023.
- Wireless image transmission using deep source channel coding with attention modules. IEEE Transactions on Circuits and Systems for Video Technology, 32(4):2315–2328, 2022.
- Deep joint source-channel coding for image transmission with visual protection. IEEE Transactions on Cognitive Communications and Networking, 9(6):1399–1411, 2023.
- Deep joint source-channel coding for csi feedback: An end-to-end approach. IEEE Journal on Selected Areas in Communications, 41(1):260–273, 2023.
- Deep joint source-channel coding for wireless image transmission. IEEE Transactions on Cognitive Communications and Networking, 5(3):567–579, 2019.
- Deep joint source-channel coding for semantic communications. IEEE Communications Magazine, 61(11):42–48, 2023.
- Model-free training of end-to-end communication systems. IEEE Journal on Selected Areas in Communications, 37(11):2503–2516, 2019.
- Approximating the void: Learning stochastic channel models from observation with variational generative adversarial networks. In 2019 International Conference on Computing, Networking and Communications (ICNC), pages 681–686, 2019.
- Evolutionary generative adversarial network based end-to-end learning for mimo molecular communication with drift system. Nano Communication Networks, 37:100456, 2023.
- Model-free machine learning of wireless siso/mimo communications. Computer Communications, 181:192–202, 2022.
- Channel modeling for diffusive molecular communication—a tutorial review. Proceedings of the IEEE, 107(7):1256–1301, 2019.
- A novel experimental platform for in-vessel multi-chemical molecular communications. In GLOBECOM 2017 - 2017 IEEE Global Communications Conference, pages 1–6, 2017.
- Experimental system for molecular communication in pipe flow with magnetic nanoparticles. IEEE Transactions on Molecular, Biological and Multi-Scale Communications, 8(2):56–71, 2022.
- An experimental platform for macro-scale fluidic medium molecular communication. IEEE Transactions on Molecular, Biological and Multi-Scale Communications, 5(3):163–175, 2019.
- Christopher M. Bishop. Mixture density networks. 1994.
- A survey for possible technologies of micro/nanomachines used for molecular communication within 6g application scenarios. IEEE Internet of Things Journal, 10(13):11240–11263, 2023.
- A novel ml-based symbol detection pipeline for molecular communication. IEEE Transactions on Molecular, Biological and Multi-Scale Communications, 9(2):207–216, 2023.
- Scheduling-based transmit signal shaping in energy-constrained molecular communications. IEEE Transactions on Molecular, Biological and Multi-Scale Communications, 9(4):447–460, 2023.
- Fractionally spaced equalization and decision feedback sequence detection for diffusive mc. IEEE Communications Letters, 25(1):117–121, 2021.