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Dynamic Sub-Array Selection-Based Energy-Efficient Localization and Tracking Method to Power Implanted Medical Devices in Scattering Heterogenous Media Employing Ultrasound

 
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dc.contributor.authorParag, Anirudh Kumar
dc.contributor.authorRaducanu, Bogdan
dc.contributor.authorErden, Oguz Kaan
dc.contributor.authorStanzione, Stefano
dc.contributor.authorBeutel, Fabian
dc.contributor.authorPendse, Chinmay
dc.contributor.authorVan Hoof, Chris
dc.contributor.authorVan Helleputte, Nick
dc.contributor.authorGielen, Georges
dc.contributor.imecauthorParag, Anirudh Kumar
dc.contributor.imecauthorRaducanu, Bogdan C.
dc.contributor.imecauthorErden, Oguz Kaan
dc.contributor.imecauthorPendse, Chinmay
dc.contributor.imecauthorVan Hoof, Chris
dc.contributor.imecauthorVan Helleputte, Nick
dc.contributor.imecauthorGielen, Georges
dc.contributor.orcidimecErden, Oguz Kaan::0000-0002-0544-9646
dc.contributor.orcidimecPendse, Chinmay::0000-0002-6628-7783
dc.contributor.orcidimecVan Hoof, Chris::0000-0002-4645-3326
dc.contributor.orcidimecVan Helleputte, Nick::0000-0002-7511-1923
dc.date.accessioned2025-06-09T04:20:45Z
dc.date.available2025-06-09T04:20:45Z
dc.date.issued2025
dc.description.abstractUltrasound (US) as a wireless power transfer methodology has drawn considerable attention from the implantable medical devices (IMD) research community. Beamforming (BF) using an external transducer array patch (ETAP) has been proposed as a robust localization scheme to find a mm-sized IMD inside the human body. However, for applications focusing on deep and shallow IMDs, optimum resource utilization at the ETAP is a major power efficiency concern for energy-constrained wearable patches. Moreover, misalignment tolerance due to IMD movements (respiratory and patient ambulatory reasons) relative to the ETAP remains a challenge. This paper presents an energy-efficient method to localize a mm-sized IMD through the dynamic selection of a sub-array within the ETAP. It is fully adaptive to the heterogeneity of the media and requires no a priori knowledge of the IMD. To improve the tolerance to IMD movements, tracking is implemented by adding and subtracting elements on the sub-array such that the sub-array electrically follows the IMD movement. Furthermore, it is shown that a minimum sampling frequency of 10X the US frequency can improve the tolerance to random noise. K-wave simulations in MATLAB are performed in different heterogenous, scattering biological media to prove the efficacy of the proposed method over standard BF methods. Measurement results in heterogenous scattering media consisting of a 3D-printed human ribs phantom and a partially blocking multipath cancellous bone phantom show an energy efficiency improvement of 10.53X and 14.4X compared to the delay-and-sum beamforming method and the unfocused transmission employing all the elements of the ETAP, respectively.
dc.identifier.doi10.1109/TBCAS.2024.3487782
dc.identifier.issn1932-4545
dc.identifier.pmidMEDLINE:39495684
dc.identifier.urihttps://imec-publications.be/handle/20.500.12860/45779
dc.publisherIEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
dc.source.beginpage657
dc.source.endpage668
dc.source.issue3
dc.source.journalIEEE TRANSACTIONS ON BIOMEDICAL CIRCUITS AND SYSTEMS
dc.source.numberofpages12
dc.source.volume19
dc.title

Dynamic Sub-Array Selection-Based Energy-Efficient Localization and Tracking Method to Power Implanted Medical Devices in Scattering Heterogenous Media Employing Ultrasound

dc.typeJournal article
dspace.entity.typePublication
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