TY - JOUR
T1 - Sensorless 3-D Ultrasound Reconstruction via Embedded Patterns
T2 - A Low-Cost Framework
AU - Liang, Libin
AU - Dai, Ling
AU - Xing, Shuwei
AU - Zhao, Kaitao
AU - Li, Zhongyu
AU - Zhu, Jihua
AU - Fenster, Aaron
N1 - Publisher Copyright:
© 1963-2012 IEEE.
PY - 2026
Y1 - 2026
N2 - Hand-held 3-D ultrasound (US) imaging offers critical advantages over conventional 2-D systems by providing richer spatial context and more reliable volumetric measurements for diagnosis and interventions. However, existing 3-D US solutions either rely on costly external tracking systems or suffer from cumulative drift errors in purely image-based methods. To address these limitations, we propose a novel, low-cost sensorless 3-D US framework that integrates a custom coupling device with a coarse-to-fine optimization algorithm for robust pose refinement. The coupling device embeds geometrically structured patterns into the US images, enabling accurate probe pose estimation directly from image content and supporting reliable volumetric reconstruction. Validation using simulations, phantoms, and in vivo carotid artery studies confirms the method’s accuracy: 2.4% average drift rate (ADR) in simulations, 2.4% volumetric error, and linear measurement error of 0.07, 0.11, and 0.22 mm for lateral, axial, and elevational directions in phantoms, and anatomical fidelity comparable to commercial 3-D probes in vivo. By removing the need for expensive external tracking or specialized US probes and enhancing robustness over existing image-based methods, our approach improves the accessibility of 3-D US imaging, particularly in resource-constrained clinical settings.
AB - Hand-held 3-D ultrasound (US) imaging offers critical advantages over conventional 2-D systems by providing richer spatial context and more reliable volumetric measurements for diagnosis and interventions. However, existing 3-D US solutions either rely on costly external tracking systems or suffer from cumulative drift errors in purely image-based methods. To address these limitations, we propose a novel, low-cost sensorless 3-D US framework that integrates a custom coupling device with a coarse-to-fine optimization algorithm for robust pose refinement. The coupling device embeds geometrically structured patterns into the US images, enabling accurate probe pose estimation directly from image content and supporting reliable volumetric reconstruction. Validation using simulations, phantoms, and in vivo carotid artery studies confirms the method’s accuracy: 2.4% average drift rate (ADR) in simulations, 2.4% volumetric error, and linear measurement error of 0.07, 0.11, and 0.22 mm for lateral, axial, and elevational directions in phantoms, and anatomical fidelity comparable to commercial 3-D probes in vivo. By removing the need for expensive external tracking or specialized US probes and enhancing robustness over existing image-based methods, our approach improves the accessibility of 3-D US imaging, particularly in resource-constrained clinical settings.
KW - 3-D ultrasound (US)
KW - coarse-to-fine optimization
KW - coupling device
KW - low cost
KW - sensorless
UR - https://www.scopus.com/pages/publications/105028209864
U2 - 10.1109/TIM.2026.3655962
DO - 10.1109/TIM.2026.3655962
M3 - 文章
AN - SCOPUS:105028209864
SN - 0018-9456
VL - 75
JO - IEEE Transactions on Instrumentation and Measurement
JF - IEEE Transactions on Instrumentation and Measurement
M1 - 4002113
ER -