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Detecting changes in ultrasound backscattered statistics by using Nakagami parameters: Comparisons of moment-based and maximum likelihood estimators
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Detecting changes in ultrasound backscattered statistics by using Nakagami parameters: Comparisons of moment-based and maximum likelihood estimators

Jen-Jen Lin, Jung-Yu Cheng, Li-Fei Huang, Ying-Hsiu Lin, Yung-Liang WanPo-Hsiang Tsui
Ultrasonics, 卷.77, 頁碼.133-143
01/05/2017
PMID: 28231487
Web of Science ID: WOS:000399515100016

摘要

Backscattered statistics Envelope statistics Maximum likelihood estimation Nakagami distribution Nakagami imaging
•The effects of moment- and MLE-based estimators on Nakagami parameters were explored.•Simulations, phantoms, and clinical experiments were performed for validations.•The MLE enables more stable parameter estimations with small sample sizes.•The MLE is a reliable estimator to reflect physical meanings of the backscattered statistics. The Nakagami distribution is an approximation useful to the statistics of ultrasound backscattered signals for tissue characterization. Various estimators may affect the Nakagami parameter in the detection of changes in backscattered statistics. In particular, the moment-based estimator (MBE) and maximum likelihood estimator (MLE) are two primary methods used to estimate the Nakagami parameters of ultrasound signals. This study explored the effects of the MBE and different MLE approximations on Nakagami parameter estimations. Ultrasound backscattered signals of different scatterer number densities were generated using a simulation model, and phantom experiments and measurements of human liver tissues were also conducted to acquire real backscattered echoes. Envelope signals were employed to estimate the Nakagami parameters by using the MBE, first- and second-order approximations of MLE (MLE1 and MLE2, respectively), and Greenwood approximation (MLEgw) for comparisons. The simulation results demonstrated that, compared with the MBE and MLE1, the MLE2 and MLEgw enabled more stable parameter estimations with small sample sizes. Notably, the required data length of the envelope signal was 3.6 times the pulse length. The phantom and tissue measurement results also showed that the Nakagami parameters estimated using the MLE2 and MLEgw could simultaneously differentiate various scatterer concentrations with lower standard deviations and reliably reflect physical meanings associated with the backscattered statistics. Therefore, the MLE2 and MLEgw are suggested as estimators for the development of Nakagami-based methodologies for ultrasound tissue characterization.

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