AI Article Synopsis

  • A novel deep learning model combining UNet and DenseNet was developed for automatic segmentation of thigh muscles from MRI, enabling accurate assessment of muscle morphology and fat composition.
  • The model demonstrated high accuracy compared to manual segmentation methods, achieving a Dice similarity coefficient above 0.97 and an average symmetric surface distance below 0.24, particularly excelling in identifying muscles, including hamstrings.
  • The automated technique showed better reproducibility in cross-sectional area quantification compared to manual methods, making it suitable for large-scale patient studies, especially in post-surgical assessments.

Article Abstract

Purpose: Fast and accurate thigh muscle segmentation from MRI is important for quantitative assessment of thigh muscle morphology and composition. A novel deep learning (DL) based thigh muscle and surrounding tissues segmentation model was developed for fully automatic and reproducible cross-sectional area (CSA) and fat fraction (FF) quantification and tested in patients at 10 years after anterior cruciate ligament reconstructions.

Methods: A DL model combining UNet and DenseNet was trained and tested using manually segmented thighs from 16 patients (32 legs). Segmentation accuracy was evaluated using Dice similarity coefficients (DSC) and average symmetric surface distance (ASSD). A UNet model was trained for comparison. These segmentations were used to obtain CSA and FF quantification. Reproducibility of CSA and FF quantification was tested with scan and rescan of six healthy subjects.

Results: The proposed UNet and DenseNet had high agreement with manual segmentation (DSC >0.97, ASSD < 0.24) and improved performance compared with UNet. For hamstrings of the operated knee, the automated pipeline had largest absolute difference of 6.01% for CSA and 0.47% for FF as compared to manual segmentation. In reproducibility analysis, the average difference (absolute) in CSA quantification between scan and rescan was better for the automatic method as compared with manual segmentation (2.27% vs. 3.34%), whereas the average difference (absolute) in FF quantification were similar.

Conclusions: The proposed method exhibits excellent accuracy and reproducibility in CSA and FF quantification compared with manual segmentation and can be used in large-scale patient studies.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10050107PMC
http://dx.doi.org/10.1002/mrm.29599DOI Listing

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