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Bespoke Co-processor for Energy-Efficient Health Monitoring on RISC-V-based Flexible Wearables

Vergos, Theofanis 1; Vergos, Polykarpos 1; Tahoori, Mehdi B. 1; Zervakis, Georgios
1 Institut für Technische Informatik (ITEC), Karlsruher Institut für Technologie (KIT)

Abstract:

Flexible electronics offer unique advantages for conformable, lightweight, and disposable healthcare wearables. However, their limited gate count, large feature sizes, and high static power consumption make on-body machine learning classification highly challenging. While existing bendable RISC-V systems provide compact solutions, they lack the energy efficiency required. We present a mechanically flexible RISC-V that integrates a bespoke multiply-accumulate co-processor with fixed coefficients to maximize energy efficiency and minimize latency. Our approach formulates a constrained programming problem to jointly determine co-processor constants and optimally map Multi-Layer Perceptron (MLP) inference operations, enabling compact, model-specific hardware by leveraging the low fabrication and non-recurring engineering costs of flexible technologies. Post-layout results demonstrate near-real-time performance across several healthcare datasets, with our circuits operating within the power budget of existing flexible batteries and occupying only 2.42mm2, offering a promising path toward accessible, sustainable, and conformable healthcare wearables. ... mehr


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Originalveröffentlichung
DOI: 10.23919/DATE69613.2026.11539544
Zugehörige Institution(en) am KIT Institut für Technische Informatik (ITEC)
Publikationstyp Proceedingsbeitrag
Publikationsdatum 20.04.2026
Sprache Englisch
Identifikator ISBN: 978-3-9826741-1-7
ISSN: 1530-1591
KITopen-ID: 1000194753
Erschienen in 2026 Design, Automation & Test in Europe Conference (DATE)
Veranstaltung 29th Design, Automation and Test in Europe Conference (DATE 2026), Verona, Italien, 20.04.2026 – 22.04.2026
Verlag Institute of Electrical and Electronics Engineers (IEEE)
Seiten 1–7
Externe Relationen Siehe auch
Schlagwörter Flexible Electronics, Machine Learning, RISC-V
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Scopus
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