
Laura A Prosser
VerifiedUniversity of Pennsylvania · Rehabilitation Medicine
Active 1955–2024
Research topics
- Artificial Intelligence
- Computer Science
- Machine Learning
- Communication
- Psychology
- Developmental psychology
- Medicine
- Physical medicine and rehabilitation
Selected publications
Computer Vision to Automatically Assess Infant Neuromotor Risk
IEEE Transactions on Neural Systems and Rehabilitation Engineering · 2020 · 109 citations
- Computer Science
- Artificial Intelligence
- Machine Learning
An infant's risk of developing neuromotor impairment is primarily assessed through visual examination by specialized clinicians. Therefore, many infants at risk for impairment go undetected, particularly in under-resourced environments. There is thus a need to develop automated, clinical assessments based on quantitative measures from widely-available sources, such as videos recorded on a mobile device. Here, we automatically extract body poses and movement kinematics from the videos of at-risk infants (N = 19). For each infant, we calculate how much they deviate from a group of healthy infants (N = 85 online videos) using a Naïve Gaussian Bayesian Surprise metric. After pre-registering our Bayesian Surprise calculations, we find that infants who are at high risk for impairments deviate considerably from the healthy group. Our simple method, provided as an open-source toolkit, thus shows promise as the basis for an automated and low-cost assessment of risk based on video recordings.
Frequent coauthors
- 106 shared
Samuel R. Pierce
American Physical Therapy Association
- 69 shared
Richard T. Lauer
Temple University
- 61 shared
Samuel C. K. Lee
University of Delaware
- 29 shared
Julie Skorup
Children's Hospital of Philadelphia
- 27 shared
Athylia C. Paremski
Children's Hospital of Philadelphia
- 25 shared
Randall Betz
- 25 shared
Scott H. Faro
Thomas Jefferson University Hospital
- 25 shared
Feroze B. Mohamed
Thomas Jefferson University
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