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一种用于生物数据最优图像阈值处理的新算法。

A novel algorithm for optimal image thresholding of biological data.

机构信息

Department of Biological Sciences, Carnegie Mellon University, Pittsburgh, PA, USA.

出版信息

J Neurosci Methods. 2010 Nov 30;193(2):380-4. doi: 10.1016/j.jneumeth.2010.08.031. Epub 2010 Sep 15.

Abstract

With the proliferation of both in vivo and in vitro microscopy techniques in the neurosciences, increased attention has been placed on the development of image analysis techniques. As experiments can produce large numbers of high bit depth images, automated processing methods have become necessary for handling these data sets. Thresholding, whereby a high bit depth image is converted into a binary image in order to identify a feature of interest, is one such standard automated technique; but the method of selecting an appropriate threshold value is far from standard. We present a novel algorithm, maximum correlation thresholding (MCT), that thresholds images accurately and efficiently without relying on any assumptions of the statistics of the image. As MCT produces thresholded images that preserve the most salient elements in the image, the algorithm performs as well as a trained user on a range of neurobiological data and in a variety of noisy conditions or when preprocessing steps preceded the thresholding operation. Our method will thus allow neuroscientists to automate image thresholding using a robust, computationally efficient algorithm, ultimately aiding in accurate image quantification and analysis.

摘要

随着神经科学中体内和体外显微镜技术的普及,人们越来越关注图像分析技术的发展。由于实验可以产生大量高比特深度的图像,因此对于处理这些数据集,自动化处理方法变得非常必要。阈值处理是一种标准的自动化技术,即将高比特深度图像转换为二进制图像,以识别感兴趣的特征;但是选择适当的阈值值的方法远非标准。我们提出了一种新颖的算法,即最大相关阈值处理(MCT),该算法无需依赖图像统计的任何假设即可准确有效地对图像进行阈值处理。由于 MCT 生成的阈值图像保留了图像中最显著的元素,因此该算法在一系列神经生物学数据以及各种噪声条件下,或者在阈值处理操作之前进行预处理步骤的情况下,其性能与经过训练的用户一样好。因此,我们的方法将允许神经科学家使用强大、计算效率高的算法来自动进行图像阈值处理,最终有助于进行准确的图像量化和分析。

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