1.3 µs
Input-to-output latency, down to
ACU is a fully programmable real-time processing IP for audio-first, multimodal hearables and wearables. Positioned at the sensor I/O, it processes, synchronizes and fuses audio, biosignal, motion and lightweight visual streams before they reach system memory.
1.3 µs
Input-to-output latency, down to
2 FP32 MACs
Per core, per cycle, sustained
mW-level
Continuous processing at the I/O boundary
Fully programmable
Streaming and block processing
THE ACU APPROACH
ACU processes continuous sensor streams directly at the I/O boundary—before data enters system memory. Its fully programmable architecture handles audio, bio-signals and visual sensing as data arrives, reducing memory traffic, latency and energy.
Instead of forwarding every raw sensor stream to the central processor, ACU can output processed streams, extracted features, events and control metadata—reducing data volume before system memory.
Process. Synchronize. Fuse.
Traditional fragmented pipeline (top) vs. ACU sensor fusion cluster (bottom)
Complete critical processing before data reaches system memory, reducing buffering, AXI traffic and unnecessary memory transfers.
Streaming execution delivers predictable input-to-output latency without relying on a software scheduler.
Use the same programmable architecture for audio, bio-signals, visual sensing and tightly synchronized sensor fusion.
CORE CAPABILITIES
Custom processing graphs, filters and algorithms—not fixed-function hardware.
Sample-by-sample time-domain processing and block-based frequency-domain workloads.
Up to 768 kHz sample rate, with input-to-output latency down to 1.3 µs.
Align audio, biosignal, motion and lightweight visual streams close to the sensor I/O, with support for PCM, PDM, DMA, memory streams and other sensor interfaces.
Seamless filter replacement and graph-level reconfiguration during operation.
Programmable RISC-V cores optimized for streaming signal processing, sustaining 2 FP32 MACs per core per cycle, including loads and stores.
PLATFORM
The same ACU architecture supports real-time workloads across audio, biosignal, motion, lightweight vision and sensor-fusion domains.
Audio is the starting point. Multimodal sensing is the future. ACU connects them in real time.
REPRESENTATIVE WORKLOADS
The ACU architecture scales to match the workload, power, area, latency and integration requirements of each application and SoC.
SOFTWARE & TOOLCHAIN
The ACU SDK, graph tools and system-level simulator support development from algorithm mapping and static scheduling to performance estimation and deployment.
Define audio, bio-signal and sensor-processing graphs through a portable interface.
Optimize graph mapping, identify configuration issues and generate deterministic static schedules.
Evaluate functionality, latency and performance before silicon is available.
Generate ready-to-load ACU code and integrate it into the target SoC.
Model the complete signal-processing subsystem before tape-out to accelerate development, integration and customer support.
All ACU kernels and libraries are written in standard C—no proprietary language or special tools required.
APPLICATIONS
From audio and bio-signals to visual and inertial data, ACU processes continuous sensor streams where latency, programmability and energy efficiency matter most.
Programmable, deterministic processing for adaptive ANC, transparency, hearing enhancement, hearing aids, cochlear implants, hearing protection, ear-EEG devices and sleepbuds.
EEG, EOG and EMG preprocessing with artifact reduction, feature and event extraction, and signal-quality monitoring—synchronized with audio and motion data.
Always-on contextual sensing for AI glasses / eyewear and wearable assistants—lightweight visual and IMU processing for low-latency human-machine interaction.
SENSOR FUSION IN ACTION
Illustrative processing flows that customers and algorithm partners may implement on the ACU platform. They are not claims that ACUTE currently provides complete end applications.
Attention and gaze signals can help identify what the user is referring to, while voice provides the command.
Cross-sensor context can help determine which speaker or sound the user intends to hear.
ANC, transparency and hearing enhancement can adapt not only to the acoustic environment, but also to user context.
ABOUT ACUTE DESIGN
Founded in Grenoble, France, in 2025, ACUTE Design is a semiconductor IP company developing fully programmable processing architectures for continuous sensor data. Our team brings more than 80 years of combined experience across ultra-low-power processor architecture, RISC-V systems, IC design, embedded software, signal processing, and the development and commercialization of hearable, wearable and AIoT products.
From processor architecture and silicon implementation to software toolchains, system integration and customer deployment, the team covers the complete lifecycle of semiconductor IP development.
Ultra-low-power computing, RISC-V architectures, memory systems and multicore processing.
IC architecture, prototyping, verification, implementation and SoC integration.
Embedded runtimes, graph-based development, simulation, optimization and deployment tools.
Programmable audio, hearables, wearables, AIoT applications and global customer deployment.