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Effects of thresholding on correlation-based image similarity metrics

机译:阈值处理对基于相关的图像相似性度量的影响

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摘要

The computation of image similarity is important for a wide range of analyses in neuroimaging, from decoding to meta-analysis. In many cases the images being compared have empty voxels, but the effects of such empty voxels on image similarity metrics are poorly understood. We present a detailed investigation of the influence of different degrees of image thresholding on the outcome of pairwise image comparison. Given a pair of brain maps for which one of the maps is thresholded, we show that an analysis using the intersection of non-zero voxels across images at a threshold of Z = ±1.0 maximizes accuracy for retrieval of a list of maps of the same contrast, and thresholding up to Z = ±2.0 can increase accuracy as compared to comparison using unthresholded maps. Finally, maps can be thresholded up to to Z = ±3.0 (corresponding to 25% of voxels non-empty within a standard brain mask) and still maintain a lower bound of 90% accuracy. Our results suggest that a small degree of thresholding may improve the accuracy of image similarity computations, and that robust meta-analytic image similarity comparisons can be obtained using thresholded images.
机译:图像相似度的计算对于神经影像的广泛分析(从解码到元分析)非常重要。在许多情况下,要比较的图像具有空体素,但是人们对这种空体素对图像相似性指标的影响了解得很少。我们提出了不同程度的图像阈值化对成对图像比较结果的影响的详细调查。给定一对大脑地图,其中一个地图是有阈值的,我们表明使用在阈值Z =±1.0时跨图像使用非零体素的交点进行的分析可最大程度地提高检索相同地图列表的准确性与使用无阈值图进行比较相比,阈值达到Z =±2.0可以提高准确性。最后,地图的阈值最高可达到Z =±3.0(相当于标准脑罩内25%的非空体素),并且仍保持90%的精度下限。我们的结果表明,较小程度的阈值化可以提高图像相似度计算的准确性,并且可以使用阈值化图像获得鲁棒的元分析图像相似度比较。

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