New Methods for Big Data Analysis in Images

P. Perner
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引用次数: 1

Abstract

In the rapidly expanding fields of cellular and molecular biology, fluorescence illumination and observation is becoming one of the techniques of choice to study the localization and dynamics of proteins, organelles, and other cellular compartments, as well as a tracer of intracellular protein trafficking. The automatic analysis of these images and signals in medicine, biotechnology, and chemistry is a challenging and demanding field. Signal-producing procedures by microscopes, spectrometers and other sensors have found their way into wide fields of medicine, biotechnology, economy and environmental analysis. With this arises the problem of the automatic mass analysis of signal information. Signal-interpreting systems which automatically generate the desired target statements from the signals are therefore of compelling necessity. The continuation of mass analysis on the basis of the classical procedures leads to investments of proportions that are not feasible. New procedures and system architectures are therefore required. We will present, based on our flexible image analysis and interpretation system Cell interpret, new intelligent and automatic image analysis and interpretation procedures. We will demonstrate it in the application of the HEp-2 cell pattern analysis.
图像大数据分析的新方法
在快速发展的细胞和分子生物学领域,荧光照明和观察正在成为研究蛋白质、细胞器和其他细胞区室的定位和动力学的首选技术之一,以及细胞内蛋白质运输的示踪剂。在医学、生物技术和化学领域,这些图像和信号的自动分析是一个具有挑战性和高要求的领域。通过显微镜、光谱仪和其他传感器产生信号的程序已广泛应用于医学、生物技术、经济和环境分析等领域。这就产生了信号信息自动海量分析的问题。因此,从信号中自动产生所需目标语句的信号解释系统是非常必要的。在经典程序的基础上继续进行大量分析,导致不可行的比例投资。因此需要新的程序和系统架构。我们将介绍基于我们灵活的图像分析和解释系统Cell interpretation,新的智能和自动图像分析和解释程序。我们将在HEp-2细胞模式分析的应用中证明这一点。
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