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Human Transcranial Super Resolution Imaging

机译:人类经颅超分辨率成像

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Transcranial ultrasound imaging in humans is challenging due to the significantly aberrating nature of the skull bone, which degrades the image and compromises the resolution. Here, we demonstrate the feasibility of human super-resolution transcranial imaging. A focused-wave, full-aperture emission at 2.5 MHz was used to image out-of-plane and in-plane 208μm sized targets (λ/3) at a depth of 68.5 mm. By correcting the skull's aberration, registration errors in the lateral and axial dimensions were reduced to as low as λ/8 and λ/3 respectively in the out-of-plane super resolved images. Phase correction improved microbubble detection sensitivity by a factor of 1.48. An in-plane tube with the same diameter was resolved even without applying a phase correction across a 30 mm lateral field. Further phase correcting reduced the axial registration error by approximately 3λ, improved the shape of the tube and increased sensitivity by a factor of 1.31. Using microbubble contrast agents at a clinically relevant concentration of 1.6 * 106 bubbles/mL, it is shown that transcranial super-resolution imaging through a human skull is feasible with focused ultrasound, even without phase correcting. Phase correction further improved sensitivity and resolution. These findings imply the feasibility of super-resolution imaging in the in vivo human brain.
机译:由于颅骨的明显畸变性质,人的经颅超声成像具有挑战性,这会降低图像质量并损害分辨率。在这里,我们证明了人类超分辨率经颅成像的可行性。 2.5 MHz处的聚焦波全孔径发射用于在68.5 mm的深度成像面外和面内208μm大小的目标(λ/ 3)。通过校正头骨的像差,在平面外超分辨图像中,横向和轴向尺寸的配准误差分别降低至λ/ 8和λ/ 3。相位校正将微气泡检测灵敏度提高了1.48倍。即使没有在30 mm的横向场上进行相位校正,也可以分辨出具有相同直径的平面管。进一步的相位校正将轴向套准误差降低了约3λ,改善了管的形状并将灵敏度提高了1.31倍。使用临床上相关浓度为1.6 * 10的微泡造影剂 6 气泡/ mL,表明即使没有相位校正,通过聚焦颅骨通过颅骨进行超高分辨率成像也是可行的。相位校正进一步提高了灵敏度和分辨率。这些发现暗示了在体内人脑中超分辨率成像的可行性。

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