HomeElectronics NewsRadio Signals Become Carriers of Digital Information

Radio Signals Become Carriers of Digital Information

A microwave chip encodes data into radio signals, reducing transmission needs and helping satellites and drones communicate with less bandwidth and power.

Credit: Pixabay/CC0 Public Domain
Credit: Pixabay/CC0 Public Domain

Researchers at Cornell University have developed a microwave-based computing chip that can encode information directly into radio signals, reducing the amount of data that needs to be transmitted while adding a layer of hardware-based security. The team says the technology could improve wireless communication in satellites, drones and other systems with limited bandwidth and power.

The researchers showed that the chip creates microwave token embeddings, which work in a similar way to the tokens used in large language models. These tokens allow information to be represented as microwave pulse patterns instead of conventional digital data, enabling more efficient transmission.

The chip is based on a microwave neural network introduced by the team last year. Rather than converting analog radio signals into digital data before processing them, it performs computation directly using the properties of microwave signals. This reduces the need for conventional signal processing and lowers bandwidth and energy requirements.

According to the researchers, commands such as navigation instructions for a satellite or drone can be converted into a small number of microwave pulses. Another microwave neural network with the same configuration can interpret these pulses directly, eliminating the need to transmit longer streams of digital data.

The team also found that every microwave neural network has unique physical characteristics, meaning only a similarly configured chip can correctly decode the transmitted information. They say this could provide an additional level of security for wireless communication.

The researchers also demonstrated that the chip can compress data using probabilistic bits, or p-bits, whose values change based on incoming data. In one test, they compressed a satellite image of a tropical storm and reconstructed it while reducing the transmitted data by about eight times. They believe this could help small satellites send more useful image data to Earth despite limitations in power and communication bandwidth.

Nidhi Agarwal
Nidhi Agarwal
Nidhi Agarwal is a Senior Technology Journalist at Electronics For You, specialising in embedded systems, development boards, and IoT cloud solutions. With a Master’s degree in Signal Processing, she combines strong technical knowledge with hands-on industry experience to deliver clear, insightful, and application-focused content. Nidhi began her career in engineering roles, working as a Product Engineer at Makerdemy, where she gained practical exposure to IoT systems, development platforms, and real-world implementation challenges. She has also worked as an IoT intern and robotics developer, building a solid foundation in hardware-software integration and emerging technologies. Before transitioning fully into technology journalism, she spent several years in academia as an Assistant Professor and Lecturer, teaching electronics and related subjects. This background reflects in her writing, which is structured, easy to understand, and highly educational for both students and professionals. At Electronics For You, Nidhi covers a wide range of topics including embedded development, cloud-connected devices, and next-generation electronics platforms. Her work focuses on simplifying complex technologies while maintaining technical accuracy, helping engineers, developers, and learners stay updated in a rapidly evolving ecosystem.

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