Journal article

Development and validation of an algorithm to determine the minimal factors needed for non-invasive measurement of the in vivo primary stability of cementless hip implants


Authors listUlloa, Carlos A. Fonseca; Seeger, Anja; Hagedorn, Frederike S.; Harz, Torben; Folsch, Christian; Ishaque, Bernd A.; Rickert, Markus; Jahnke, Alexander

Publication year2023

JournalMedical Engineering & Physics

Volume number111

ISSN1350-4533

eISSN1873-4030

DOI Linkhttps://doi.org/10.1016/j.medengphy.2022.103932

PublisherElsevier


Abstract
Aseptic loosening is a frequent cause for revision of endoprosthesis. X-ray examinations like Radio-Stereometry-Analysis (RSA) are among the most widely used in vivo methods for its detection. Nevertheless, this method is not used routinely because of bone marker and related radiation exposure. This work aims at creating a new in vivo concept to detect implant stability measuring micromotions without x-ray and to develop a corresponding algorithm. Based on the assumption of contactless measurement, the input parameters for the algorithm are the distances of each ultrasound sensor to the object (prosthesis and bone) and its position. First, the number of parameters necessary for a precise reconstruction and measurement of micromotions between objects had to be defined. Therefore, the algorithm has been tested with simulations of these parameters. Two experimental measurements, either using contact sensors or ultrasound, were used to prove the accuracy of the algorithm. Simulations indicate a high accuracy with three distances as initial parameters for each object. Contact mea-surements show precise representation of micromotion, and the contactless measurements show the possibility of detecting various materials with a high resolution. This work lays the foundations for non-invasive detection of micromotions between the implant-bone interface.



Citation Styles

Harvard Citation styleUlloa, C., Seeger, A., Hagedorn, F., Harz, T., Folsch, C., Ishaque, B., et al. (2023) Development and validation of an algorithm to determine the minimal factors needed for non-invasive measurement of the in vivo primary stability of cementless hip implants, Medical Engineering & Physics, 111, Article 103932. https://doi.org/10.1016/j.medengphy.2022.103932

APA Citation styleUlloa, C., Seeger, A., Hagedorn, F., Harz, T., Folsch, C., Ishaque, B., Rickert, M., & Jahnke, A. (2023). Development and validation of an algorithm to determine the minimal factors needed for non-invasive measurement of the in vivo primary stability of cementless hip implants. Medical Engineering & Physics. 111, Article 103932. https://doi.org/10.1016/j.medengphy.2022.103932


Last updated on 2025-21-05 at 18:16