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Simplified solutions: Easy-to-use AI for embedded applications

Altaf Khan

Altaf Khan

CEO at Infxl

Optimizing AI for Embedded Systems and IoT Applications

AI experts often overlook the constraints of embedded systems, making it challenging to fit a conventional model into a tiny device. Typical embedded constraints include limited computational resources and power.

To address these, we reduce the complexity of the deep net inference engine by minimizing intra-network connectivity, eliminating floating-point data, and using only accumulation operations.

These small-footprint, low-latency deep nets are suitable for applications in IoT smart sensors measuring inertial, vibration, temperature, flow, electrical, and biochemical data in battery-powered endpoints. Applications include healthcare and industrial wearables, robots, and automotive systems.

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