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Lossless Compression of RNAi Fluorescence Images Using Regional Fluctuations of Pixels

机译:使用像素区域波动的RNAi荧光图像的无损压缩

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摘要

RNA interference (RNAi) is considered one of the most powerful genomic tools which allows the study of drug discovery and understanding of the complex cellular processes by high-content screens. This field of study, which was the subject of 2006 Nobel Prize of medicine, has drastically changed the conventional methods of analysis of genes. A large number of images have been produced by the RNAi experiments. Even though a number of capable special purpose methods have been proposed recently for the processing of RNAi images but there is no customized compression scheme for these images. Hence, highly proficient tools are required to compress these images. In this paper, we propose a new efficient lossless compression scheme for the RNAi images. A new predictor specifically designed for these images is proposed. It is shown that pixels can be classified into three categories based on their intensity distributions. Using classification of pixels based on the intensity fluctuations among the neighbors of a pixel a context-based method is designed. Comparisons of the proposed method with the existing state-of-the-art lossless compression standards and well-known general-purpose methods are performed to show the efficiency of the proposed method.
机译:RNA干扰(RNAi)被认为是最强大的基因组工具之一,可通过高内涵筛选研究药物发现和了解复杂细胞过程。这个研究领域曾获得2006年诺贝尔医学奖,它彻底改变了传统的基因分析方法。 RNAi实验已经产生了大量图像。即使最近已经提出了许多有能力的专用方法来处理RNAi图像,但是对于这些图像却没有定制的压缩方案。因此,需要高度熟练的工具来压缩这些图像。在本文中,我们为RNAi图像提出了一种新的有效的无损压缩方案。提出了一种专门为这些图像设计的新预测器。示出了基于像素的强度分布可以将像素分为三类。使用基于像素的邻居之间的强度波动的像素分类,设计了基于上下文的方法。将所提出的方法与现有的最新无损压缩标准和已知的通用方法进行比较,以证明所提出方法的效率。

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