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Quantitative imaging of ultrasound backscattered signals with information entropy for bone microstructure characterization
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Quantitative imaging of ultrasound backscattered signals with information entropy for bone microstructure characterization

Chiao-Yin Wang, Sung-Yu Chu, Yu-Ching Lin, Yu-Wei Tsai, Ching-Lung Tai, Kuen-Cheh Yang 和 Po-Hsiang Tsui
Scientific reports, 卷.12(1), 414(2022)
10/01/2022
PMID: 35013540
Web of Science ID: WOS:000741645800102

摘要

Adult Age Factors Aged Bone Density Entropy Female Humans Lumbar Vertebrae - diagnostic imaging Lumbar Vertebrae - physiopathology Middle Aged Osteoporosis - diagnostic imaging Osteoporosis - physiopathology Osteoporosis, Postmenopausal - diagnostic imaging Osteoporosis, Postmenopausal - physiopathology Phantoms, Imaging Porosity Postmenopause Predictive Value of Tests Scattering, Radiation Signal Processing, Computer-Assisted Ultrasonography - instrumentation Feasibility Studies
Osteoporosis is a critical problem during aging. Ultrasound signals backscattered from bone contain information associated with microstructures. This study proposed using entropy imaging to collect the information in bone microstructures as a possible solution for ultrasound bone tissue characterization. Bone phantoms with different pounds per cubic foot (PCF) were used for ultrasound scanning by using single-element transducers of 1 (nonfocused) and 3.5 MHz (nonfocused and focused). Clinical measurements were also performed on lumbar vertebrae (L3 spinal segment) in participants with different ages (n = 34) and postmenopausal women with low or moderate-to-high risk of osteoporosis (n = 50; identified using the Osteoporosis Self-Assessment Tool for Taiwan). The signals backscattered from the bone phantoms and subjects were acquired for ultrasound entropy imaging by using sliding window processing. The independent t-test, one-way analysis of variance, Spearman correlation coefficient r , and the receiver operating characteristic (ROC) curve were used for statistical analysis. The results indicated that ultrasound entropy imaging revealed changes in bone microstructures. Using the 3.5-MHz focused ultrasound, small-window entropy imaging (side length: one pulse length of the transducer) was found to have high performance and sensitivity in detecting variation among the PCFs (r  = - 0.83; p < 0.05). Small-window entropy imaging also performed well in discriminating young and old participants (p < 0.05) and postmenopausal women with low versus moderate-to-high osteoporosis risk (the area under the ROC curve = 0.80; cut-off value = 2.65; accuracy = 86.00%; sensitivity = 71.43%; specificity = 88.37%). Ultrasound small-window entropy imaging has great potential in bone tissue characterization and osteoporosis assessment.

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