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Related Concept Videos

Equipments Used To Measure Blood Pressure01:30

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This invasive approach involves cannulating a peripheral artery. During each cardiac contraction, pressure generates mechanical motion within the catheter, transmitted through rigid, fluid-filled tubing to a transducer. This transducer converts mechanical motion into electrical signals displayed as waveforms on a monitor. An automatic flushing system prevents blood backflow. Due to the potential risk of unexpected arterial blood loss, this method is primarily used in intensive...
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Most pressure gauges, like those on scuba tanks, are calibrated to read zero at atmospheric pressure. Readings from such gauges are called the gauge pressure, which is the pressure relative to atmospheric pressure. When the pressure inside the tank exceeds atmospheric pressure, the gauge reports a positive value. Some gauges are designed to measure negative pressure. For example, many physics experiments must take place in a vacuum chamber, a rigid chamber from which some of the air is pumped...
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Related Experiment Video

Updated: Apr 18, 2026

Computerized Dynamic Posturography for Postural Control Assessment in Patients with Intermittent Claudication
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Wearable static posturography solution using a novel pressure sensor sole.

Samuel Reinfelder, Felix Durlak, Jens Barth

    Annual International Conference of the IEEE Engineering in Medicine and Biology Society. IEEE Engineering in Medicine and Biology Society. Annual International Conference
    |January 9, 2015
    PubMed
    Summary
    This summary is machine-generated.

    New in-shoe pressure soles accurately measure postural instability, offering a portable alternative to traditional posturography. This technology enables reliable static posturography in diverse settings.

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    Area of Science:

    • Biomechanics
    • Medical Technology
    • Human Movement Analysis

    Background:

    • Static posturography is crucial for diagnosing postural instability.
    • Wearable sensors, specifically in-shoe pressure soles, offer new possibilities for home and outdoor assessments.
    • Traditional posturography relies on specialized equipment and controlled environments.

    Purpose of the Study:

    • To validate a newly developed in-shoe pressure sole system for static posturography.
    • To compare the accuracy of in-shoe pressure soles against a state-of-the-art pressure plate.
    • To assess the potential of in-shoe sensors for mobile and home-based postural assessments.

    Main Methods:

    • A newly developed in-shoe pressure sole was utilized.
    • 24 subjects participated in the validation study.
    • Measurements were taken under three static posturography conditions: eyes open, eyes closed, and barefoot, comparing insole data to a pressure plate.

    Main Results:

    • Adaptive low-pass filtered data showed good overall correlation with pressure plate measurements.
    • Sway path correlations ranged from 0.63 to 0.78.
    • 95% confidence ellipse area correlations ranged from 0.66 to 0.79.
    • Individual subject correlations reached up to 0.97 for sway path and 0.99 for ellipse area.

    Conclusions:

    • The validated in-shoe pressure sole system provides a reliable method for static posturography.
    • This wearable technology offers a mobile advantage for postural assessments in various environments.
    • Future applications may include both static and dynamic posturography in clinical and home settings.