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Subj: A New Approach to Digital Voice
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... for your knowledge.

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------
FreeDV RADE: A New Approach to Digital Voice over HF, Now Integrated
into Popular Radios

August 27, 2026 Rebecca Key - KO4KVG

Single sideband (SSB) is the most common voice mode for analog
communications over HF radio. Its widespread adoption is due in part to
its spectral efficiency, with a typical SSB signal occupying ~3 kHz of
bandwidth. This efficiency, however, comes with a tradeoff: because
only part of the frequency range of human speech is transmitted,
received SSB audio sounds less natural than speech heard in person.
Improving speech quality while maintaining the characteristics that
make SSB effective over HF remains a challenge in amateur radio.

This is exactly the problem that ARDC grantee FreeDV set out to solve.
Since late 2023, they have been working to create a digital voice mode
that could compete with SSB across varying signal-to-noise conditions
on HF while providing more natural-sounding speech. In June of 2025,
they released Radio Autoencoder (FreeDV RADE or RADE), their flagship
open-source digital voice mode. Building on that milestone, in May
2026, the team worked with radio manufacturers to integrate the mode
directly into their radios. Capabilities

FreeDV RADE combines machine learning with classical digital signal
processing (DSP) and can operate at signal-to-noise ratios (SNRs) as
low as -2 dB. Its design also addresses spectrum use, speech quality,
and power efficiency, all important considerations for voice
communications over HF.

Whereas a typical SSB signal occupies about 3 kHz, FreeDV RADE requires
about 1.5 kHz, cutting the amount of spectrum used by half. At the same
time, it can transmit about 8 kHz of voice audio, capturing a wider
range of human speech frequencies, resulting in more natural-sounding
speech.

This difference is particularly noticeable when people hear RADE for
the first time. When FreeDV demos RADE at hamfests, amateur radio
operators who are familiar with DMR, D-STAR, and other forms of digital
voice on UHF/VHF are amazed by the audio quality and how closely it
resembles natural human speech.

“In south east Australia I conduct a weekly net using FreeDV RADEV1,”
says Peter Marks VK3TPM. We get stations from VK3, VK2, VK5 and VK7.
Many of these stations live in inner city locations where HF noise has
become so bad that listening to sideband signals is difficult and
tiring. Stations report how easy FreeDV RADE is to listen to compared
to analog modes and it’s helped to bring them back to HF.”

Power efficiency was another consideration. FreeDV RADE has a
peak-to-average power ratio (PAPR) that allows for the efficient use of
power amplifiers, resulting in less heat and lower power consumption
during transmission. The narrower bandwidth and the PAPR of RADE give
users a way to experiment with digital voice while making more
efficient use of both spectrum and power.

These capabilities do require additional computing resources. FreeDV
RADE uses more memory and CPU than the team’s previous efforts, a
tradeoff for improved speech quality and the ability to operate across
different conditions on HF. Despite these requirements, RADE runs well
on a Raspberry Pi 4 or 5.

Open source was also an important requirement for FreeDV RADE. The team
wanted to make the technology available for others to learn from,
experiment with, and build upon by avoiding patent and licensing
barriers. Implementation

Support from ARDC has helped the team continue building on its earlier
work. Funding has allowed the team to address shortcomings in previous
modes, improve the FreeDV application, fix bugs, and add new
functionality. As part of that effort, the team has also worked with
radio manufacturers, such as FlexRadio, to integrate FreeDV RADE
directly into their radios.

For users with FlexRadio 6000, 8000, or Aurora series radios, that
integration makes trying RADE more straightforward. A module can be
downloaded from the FreeDV website (https://freedv.org/download/) and
installed on the radio, creating FreeDV as a mode in the radio itself,
similar to selecting SSB. Operators can then use RADE without needing a
separate computer to run the software. Looking Ahead

Users from around the world, including in Europe, Japan, South America,
and the United States, are experimenting with FreeDV RADE. Their
interest reflects one of the project’s original goals: giving people
another way to experiment with high-quality digital voice over HF.

A C library for RADE is now available
(https://github.com/freedv/rade_c), which is helping to get the mode
integrated into more radios and SDR programs. A current list of
third-party clients is available at
https://freedv.org/alternative-freedv-rade-v1-software/.

Development is also continuing with FreeDV RADE v2, where the team is
working on additional improvements to speech quality and aiming to
narrow the bandwidth further, with a goal of getting it under 1 kHz.

For the FreeDV team, RADE is about exploring a different approach to
voice communications over HF, one that combines efficient spectrum use,
improved speech quality, and an open-source implementation that others
can study, experiment with, and build upon. With FreeDV RADE v2 already
in development, that work is continuing. Learn More

To learn more about FreeDV, visit https://freedv.org to download the
software, explore the getting started guide, and find installation
instructions. You can also visit the FreeDV Reporter at
https://qso.freedv.org/, where you can see a near real-time look at
FreeDV activity. Post navigation



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