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MedTech Outlook | Wednesday, May 24, 2023
Harnessing electromagnetic tracking systems aims at accelerating surgical navigation capabilities in the medical arena, via technology-driven processes.
FREMONT, CA: Sensor-enabled catheters and needles, per their clinical applications, often require navigation with increased accuracy and precision via pairing devices with an electromagnetic (EM) tracking system. Clinicians are made aware of the precise location of sensors throughout the procedure as a spectrum of options like sensor numbers, design configurations, shapes, and geometries have been acoustically noted in the navigation characteristics of the device. Hence, harnessing electromagnetics in the surgical space opens up seamless advantages for surgical vision beyond the line of sight.
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However, it may often be impeded by the limitations of distortion and frequency, requiring critical addressing in a next-gen system developing leaders in the surgical sector, especially with its elevated usage in biomedical and other applications. A novel advancement in recent times has enabled the EM tracking platform’s antenna to provide critical recognition of the presence of distortion, strength, and direction of the source. This acute identification of distortion allows systems for the proper execution of a range of mitigations, ensuring accuracy in particulars regarding location. These data are generally gathered from the full slate of sensors within the sensing volume, eliminating the dire need for map distortion for clinicians conducting the procedure.
Often considered a common approach for electromagnetic tracking, the technique aids healthcare providers in minimising the equipment in the room that is crucial for mobile equipment and devices in motion, owing to its inherent unmappability. Like the modern EM systems, the traditional EM systems also function in support of electromagnetic frequency bands to create potential interference with medical equipment. Wherein, a high-tech surgical suite prevents EM systems from deploying advanced machines like electrocardiograms (ECG), biopotential signals, and fluoroscopic C-arms for the imaging process.
Innovation frontiers in the EM systems-driven surgical domain are featuring a control unit, antenna, and 5DOF and 6DOF sensors to cope with the soaring and distinct demands for specific medical devices and procurement. These components are highly customisable and can be redefined using advanced algorithms, enabling an effective configuration during the manufacturing procedure. Another component gaining monumental significance in the EM platform is plug-and-play, which, when pre-calibrated, ensures increased sampling rates across varied sensors for high location confidence. This platform further integrates with medical devices by utilising a simple and encrypted application programming interface (API) per the open-source software developer kit. As a well-customised platform, the EM systems feature an adjustable sensing volume with an induced capability of shrinking and growing simultaneously. It aids in meeting the desired requirements of a surgical procedure via a personalised approach, ensuring patient satisfaction and accuracy in the process.
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