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Synaptics/sr100_person_classification_256x448
sr100_person_classification_256x448 is a image classification model from Synaptics. Use it when you need a label for an image. It is set up for tflite. The card lists the license as apache-2.0.
The Person Classification 256x448 model, developed by Synaptics, is a lightweight quantized tflite model developed for the SR100 processor in the Synaptics Astra™ SR MCU Series.
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From the Hugging Face model README
The Person Classification 256x448 model, developed by Synaptics, is a lightweight quantized tflite model developed for the SR100 processor in the Synaptics Astra™ SR MCU Series.
It efficiently classifies input images as either person or non-person, enabling reliable human presence detection. This model can fit in Flash and designed to fit in SRAM as well.
You can optimize this model for Synaptics Astra SR100 MCU using our our hosted SR100 Model Compiler HF Space.
Designed for real-time person classification on embedded, resource-constrained edge devices. Typical use cases include:
You can evaluate and test this model directly in our hosted Hugging Face Space, optimized for Synaptics SR110 MCU. This space provides a seamless sandbox for model evaluation using hardware-specific quantization and runtime settings.
For a detailed walkthrough on how to optimize and evaluate a model, please see our Evaluate Model Guide page.
To get started quickly with Astra SR Series, visit our SR Quick Start page.
Distributed under the Apache License 2.0, allowing flexible use, modification, and distribution.