Intelligent Multi-Modal Sensing-Communication Integration: Synesthesia of Machines
Xiang Cheng, Haotian Zhang, Jianan Zhang, Shijian Gao, Sijiang Li,, Ziwei Huang, Lu Bai, Zonghui Yang, Xinhu Zheng, Liuqing Yang

TL;DR
This paper introduces the Synesthesia of Machines (SoM), a comprehensive framework for integrating multi-modal sensing and communication in 6G, inspired by human synesthesia, to enhance environment understanding and system performance.
Contribution
It proposes the novel SoM paradigm for intelligent multi-modal sensing-communication integration, including its definition, operation modes, datasets, and technological applications.
Findings
Simulation results demonstrate improved dual-function waveform performance.
Predictive beamforming benefits from multi-modal integration.
SoM outperforms traditional RF-based sensing in dynamic environments.
Abstract
In the era of sixth-generation (6G) wireless communications, integrated sensing and communications (ISAC) is recognized as a promising solution to upgrade the physical system by endowing wireless communications with sensing capability. Existing ISAC is mainly oriented to static scenarios with radio-frequency (RF) sensors being the primary participants, thus lacking a comprehensive environment feature characterization and facing a severe performance bottleneck in dynamic environments. To date, extensive surveys on ISAC have been conducted but are limited to summarizing RF-based radar sensing. Currently, some research efforts have been devoted to exploring multi-modal sensing-communication integration but still lack a comprehensive review. Therefore, we generalize the concept of ISAC inspired by human synesthesia to establish a unified framework of intelligent multi-modal…
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Taxonomy
TopicsSpeech and Audio Processing · Animal Vocal Communication and Behavior · Underwater Acoustics Research
MethodsSelf-Organizing Map
