Energy-Aware Multi-Exit TinyML for Smart Zero-Energy Devices

Fuente: arXiv
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Auteurs principaux: Jahanbazi, Shahab, Ashraf, Mateen, De Strycker, Lieven, Famaey, Jeroen, Lopez, Onel L. A.
Format: Preprint
Publié: 2026
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author Jahanbazi, Shahab
Ashraf, Mateen
De Strycker, Lieven
Famaey, Jeroen
Lopez, Onel L. A.
author_facet Jahanbazi, Shahab
Ashraf, Mateen
De Strycker, Lieven
Famaey, Jeroen
Lopez, Onel L. A.
contents The proliferation of smart and autonomous systems has motivated a shift toward executing intelligence directly on edge devices. This shift becomes particularly challenging for zero-energy devices (ZEDs), where severe constraints on memory, energy availability, and inference accuracy must be addressed simultaneously. In this paper, we present a unified approach to managing these constraints for smart ZEDs. Specifically, we design, train, and deploy a tiny machine learning (TinyML) model for person detection on a ZED. The proposed architecture stores a single model in memory while enabling adaptive inference through multiple exit points, allowing computational effort to scale with input difficulty. As a result, low-energy inference is performed for easy instances, while higher-precision inference is selectively employed for harder cases. This strategy significantly reduces energy consumption without sacrificing detection accuracy. Furthermore, to enhance device autonomy and prevent power failures, we introduce auxiliary energy-aware circuits that dynamically regulate system operation based on available energy. Compared with a state-of-the-art energy-aware single-exit TinyML approach, the proposed method achieves an energy consumption reduction of approximately $29.6\%$. Overall, the proposed framework is appealing for enabling accurate and energy-efficient intelligence on ZED platforms.
format Preprint
id arxiv_https___arxiv_org_abs_2603_08047
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Energy-Aware Multi-Exit TinyML for Smart Zero-Energy Devices
Jahanbazi, Shahab
Ashraf, Mateen
De Strycker, Lieven
Famaey, Jeroen
Lopez, Onel L. A.
Signal Processing
The proliferation of smart and autonomous systems has motivated a shift toward executing intelligence directly on edge devices. This shift becomes particularly challenging for zero-energy devices (ZEDs), where severe constraints on memory, energy availability, and inference accuracy must be addressed simultaneously. In this paper, we present a unified approach to managing these constraints for smart ZEDs. Specifically, we design, train, and deploy a tiny machine learning (TinyML) model for person detection on a ZED. The proposed architecture stores a single model in memory while enabling adaptive inference through multiple exit points, allowing computational effort to scale with input difficulty. As a result, low-energy inference is performed for easy instances, while higher-precision inference is selectively employed for harder cases. This strategy significantly reduces energy consumption without sacrificing detection accuracy. Furthermore, to enhance device autonomy and prevent power failures, we introduce auxiliary energy-aware circuits that dynamically regulate system operation based on available energy. Compared with a state-of-the-art energy-aware single-exit TinyML approach, the proposed method achieves an energy consumption reduction of approximately $29.6\%$. Overall, the proposed framework is appealing for enabling accurate and energy-efficient intelligence on ZED platforms.
title Energy-Aware Multi-Exit TinyML for Smart Zero-Energy Devices
topic Signal Processing
url https://arxiv.org/abs/2603.08047