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Model-free uncertainty estimation in stochastical optical fluctuation imaging (SOFI) leads to a doubled temporal resolution

机译:随机光学波动成像(SOFI)中的无模型不确定性估计可将时间分辨率提高一倍

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摘要

Stochastic optical fluctuation imaging (SOFI) is a super-resolution fluorescence imaging technique that makes use of stochastic fluctuations in the emission of the fluorophores. During a SOFI measurement multiple fluorescence images are acquired from the sample, followed by the calculation of the spatiotemporal cumulants of the intensities observed at each position. Compared to other techniques, SOFI works well under conditions of low signal-to-noise, high background, or high emitter densities. However, it can be difficult to unambiguously determine the reliability of images produced by any superresolution imaging technique. In this work we present a strategy that enables the estimation of the variance or uncertainty associated with each pixel in the SOFI image. In addition to estimating the image quality or reliability, we show that this can be used to optimize the signal-to-noise ratio (SNR) of SOFI images by including multiple pixel combinations in the cumulant calculation. We present an algorithm to perform this optimization, which automatically takes all relevant instrumental, sample, and probe parameters into account. Depending on the optical magnification of the system, this strategy can be used to improve the SNR of a SOFI image by 40% to 90%. This gain in information is entirely free, in the sense that it does not require additional efforts or complications. Alternatively our approach can be applied to reduce the number of fluorescence images to meet a particular quality level by about 30% to 50%, strongly improving the temporal resolution of SOFI imaging.
机译:随机光学波动成像(SOFI)是一种超分辨率的荧光成像技术,它利用了荧光团发射中的随机波动。在SOFI测量期间,从样品获取多个荧光图像,然后计算在每个位置观察到的强度的时空累积量。与其他技术相比,SOFI在低信噪比,高背景或高发射极密度的条件下效果很好。但是,很难明确确定任何超分辨率成像技术所产生图像的可靠性。在这项工作中,我们提出了一种策略,可以估算与SOFI图像中每个像素相关的方差或不确定性。除了估计图像质量或可靠性外,我们还表明,通过在累积量计算中包括多个像素组合,可以将其用于优化SOFI图像的信噪比(SNR)。我们提出了一种执行此优化的算法,该算法会自动考虑所有相关的仪器,样品和探针参数。根据系统的光学放大倍数,该策略可用于将SOFI图像的SNR提高40%至90%。从某种意义上来说,这种信息获取是完全免费的,不需要额外的努力或复杂性。或者,我们的方法可以应用于将满足特定质量水平的荧光图像数量减少约30%至50%,从而极大地提高SOFI成像的时间分辨率。

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