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Spatial resolution in fast time-resolved transillumination imaging: an indeterministic Monte Carlo approach

机译:快速时间分辨透射成像中的空间分辨率:不确定的蒙特卡洛方法

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摘要

The spatial resolution achievable in time-resolved optical transillumination imaging through a turbid (scattering and absorbing) medium has been reassessed theoretically. The temporal point spread function was constructed assuming a delta function input pulse, a ~50 mm thick medium and a small detector with zero risetime. Temporal profiles were derived from an indeterministic Monte Carlo simulation for different time scales. From the temporal point spread function (TPSF), an analytic edge response function from which the spatial resolution was determined was derived. Previous analytical methods for determining the spatial resolution are approximations for very short flight times (sub-100 ps time region). The results show that a spatial resolution of about two millimeters is possible under ideal signal-to-noise ratio conditions and with detector gate times of the order of ten picoseconds. If this predicted spatial resolution can be achieved in an imaging system, it may be possible to improve the diagnosis of breast tumours.
机译:在理论上已经重新评估了通过浑浊(散射和吸收)介​​质在时间分辨光学透射成像中可获得的空间分辨率。构造时间点扩展函数时要假设输入函数是德尔塔函数,输入介质厚约50 mm,上升时间为零的小型检测器。时间轮廓是从不确定时间尺度的不确定性蒙特卡洛模拟中得出的。从时间点扩展函数(TPSF),得出解析边缘响应函数,从中可以确定空间分辨率。用于确定空间分辨率的先前分析方法是非常短的飞行时间(低于100 ps时域)的近似值。结果表明,在理想的信噪比条件下,且检波器门时间为十微微秒的量级时,大约2毫米的空间分辨率是可能的。如果可以在成像系统中实现这种预测的空间分辨率,则可能会改善乳腺肿瘤的诊断。

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