Abstract:Total knee arthroplasty (TKA) is currently one of the most common orthopedic surgeries worldwide. While TKA is generally successful, revision due to pain and failure is inevitable and adversely impacts patient outcomes. Catastrophic failure rates may be reduced by early detection of damage. This work evaluates the ability of machine learning to detect and classify damage from piezoelectric impedance measurements of total knee replacements (TKRs). Multiple simulated TKR test samples are constructed and artifici… Show more
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