AI Article Synopsis

  • The dataset includes motion capture, inertial measurement unit data, and sagittal-plane video from 51 healthy participants walking at three speeds (slow, comfortable, fast) with around 60 trials each.
  • It contains detailed data such as ground reaction forces from force plates, 3D trajectories from motion capture markers, and accelerometer readings from lower limbs and pelvis, alongside 2D keypoint trajectories analyzed through the OpenPose algorithm.
  • The dataset also includes participant demographics and anatomical measurements, making it useful for musculoskeletal modeling, kinematics, and kinetics analysis, as well as for comparing data across different capture methods.

Article Abstract

We present a dataset comprising motion capture, inertial measurement unit data, and sagittal-plane video data from walking at three different instructed speeds (slow, comfortable, fast). The dataset contains 51 healthy participants with approximately 60 walking trials from each participant. Each walking trial contains data from motion capture, inertial measurement units, and computer vision. Motion capture data comprises ground reaction forces and moments from floor-embedded force plates and the 3D trajectories of subject-worn motion capture markers. Inertial measurement unit data comprises 3D accelerometer readings and 3D orientations from the lower limbs and pelvis. Computer vision data comprises 2D keypoint trajectories detected using the OpenPose human pose estimation algorithm from sagittal-plane video of the walking trial. Additionally, the dataset contains participant demographic and anthropometric information such as mass, height, sex, age, lower limb dimensions, and knee intercondylar distance measured from magnetic resonance images. The dataset can be used in musculoskeletal modelling and simulation to calculate kinematics and kinetics of motion and to compare data between motion capture, inertial measurement, and video capture.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11385067PMC
http://dx.doi.org/10.1016/j.dib.2024.110841DOI Listing

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