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Analysis of deep learning techniques in computer-aided diagnosis for meniscus injuries: a systematic literature
Vengas Memon1, Sayed A Zikri Bin Syed Aluwee1, Yogan Jaya Kumar2
1Faculty of Information and Communication Science and Technology, Universiti Tunku Abdul Rahman, Kampar, Perak, Malaysia.
Abstract:
Meniscus informatics is a growing subject of study in the healthcare industry. One of the major hindrances to the healthcare system's transformation is obtaining knowledge and meaningful information from complicated, high-dimensional and diverse sources. Modern biomedical research, for instance, has seen an increase in the use of complex, dissimilar, poorly documented, and generally unstructured electronic health records, imaging, sensor data and text, even after many current techniques have been used to extract more robust and useful elements from the data for analysis. New efficient standards for building end-to-end learning models from complex data are therefore needed. Therefore, the current study aims to examine the most recent research on the use of deep learning techniques for diagnosing meniscus tears and recommend creating comprehensive and meaningful interpretable structures that might benefit the healthcare industry. We also draw attention to shortcomings and the need for better technique development, and we provide new perspectives about this exciting new development in the field.