Industrial NanoEdge AI Studio Predictive maintenance Current sensor

AI solution for failure prediction on rotating machines with SMRI 

Predictive maintenance on high-tech industrial tools.

AI solution for failure prediction on rotating machines with SMRI 
Industrial NanoEdge AI Studio Predictive maintenance Current sensor
SMRI leveraged STMicroelectronics ecosystem to develop an Artificial Intelligence based solution to reduce equipment downtime, increase productivity and optimize human intervention by adding predictive maintenance features on industrial equipment.  
We needed a predictive maintenance technology that is undeniably proven industrially and whose implementation is agile. After comparing several solutions on the market, we chose NanoEdge AI from STMicroelectronics, the only solution capable of guaranteeing us optimal results, rapid implementation, and the confidentiality of our clients industrial data, while providing them with the added value of considerable innovation.
Luc Frison 
President at SMRI 

Approach

Thanks to embedded machine learning, SMRI developed and rapidly implemented predictive maintenance solutions capable of learning, on the field, the different sequences and detect drift in real-time and with a high level of accuracy to plan intervention before major failure. 
This solution is running on ultra-low power STM32 microcontrollers.

Sensor

Accelerometer from STMicroelectronics.

Model created with

NanoEdge AI Studio

Model created with

Compatible with

STM32

Compatible with

Resources

Model created with NanoEdge AI Studio

A free AutoML software for adding AI to embedded projects, guiding users step by step to easily find the optimal AI model for their requirements.

Model created with NanoEdge AI Studio

Compatible with STM32

The STM32 family of 32-bit microcontrollers based on the Arm Cortex®-M processor is designed to offer new degrees of freedom to MCU users. It offers products combining very high performance, real-time capabilities, digital signal processing, low-power / low-voltage operation, and connectivity, while maintaining full integration and ease of development.

Compatible with STM32

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