Publication: Bluetooth embedded inertial measurement unit for real-time data collection for gait analysis
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Type:
Article
Date
2013-10
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Journal ISSN
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Publisher
2013 International Conference on Indoor Positioning and Indoor Navigation
Abstract
—Inertial Measurement Units (IMUs) are often used
to measure motion parameters of human body in indoor/outdoor
localization applications. Most of commercially available low-cost
IMUs have limited number of sensors and are often connected
to a computer by a wired connection (usually by USB). The
disadvantage of using wired IMUs in human gait measurement is
that, the wires disturb the natural gait patterns. The existing IMUs
with wireless connectivity solve that problem, but are relatively
high cost. This paper describes the development and testing of
a miniature IMU that can be connected to a Windows based
computer or an Android based mobile device through Bluetooth.
The IMU consists of a 3-axis accelerometer, 3-axis gyroscope,
3-axis magnetometer, a temperature sensor, a pressure sensor
and an ambient light sensor. Sensors are sampled at a frequency
configurable by the user with a maximum set at 100 Hz. Raw
sensor data are streamed through the integrated Bluetooth module
to the host device for further processing. The IMU is also equipped
with a microSD card slot that enables on-board data logging. The
power usage of the Bluetooth transmitter is optimized because only
the sampled sensor data are transmitted. The windows application
can be used to view sensor data, plot them and to store them into
a file for further processing. Android application can be used to
view data as well as to record data into a file. The small size of
the device enables it be attached to any part of lower or upper
human body for the purpose of gait analysis. Comparison of the
performance of the device with a smartphone indicated that the
output of the IMU is comparable to the output of smartphone.
Description
Keywords
indoor localization, IMU, 3-axis inertial sensors, human gait analysis
