随机共振协同-多维尺度的量子信息理论

Milan Jovovic
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引用次数: 2

摘要

推导了多维信号标度的量子信息理论。动态数据建模方法描述了在尺度空间中结合协同作用的耦合结构中分解信号的方法。质量守恒原理,以及广义的不确定性关系,以及尺度空间波的传播导致了信息的多项式分解。通过动态级联对数据进行统计映射,给出了对其控制结构进行编码和评估的有效方法。采用多尺度方法,利用尺度-空间波信息传播计算随机共振协同效应(SRS),并在原子结构内概念化数据集成。在本文中,我们展示了多维数据散射的分析,显示了点缩放特性。我们将讨论在图像处理以及神经成像中的应用。通过多维标度解释了两个行为相关听觉实验的功能神经皮质映射,其BOLD信号被fMRI记录。结合皮层特征检测器结果和听觉张力图,分析了两个实验中记录的信号之间信息流的点标度特性。脑电图扫描的脑波核子,以及对脑波模式同步性的距离测量,也得到了解释。
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Stochastic Resonance Synergetics— Quantum Information Theory for Multidimensional Scaling
A quantum information theory is derived for multidimensional signals scaling. Dynamical data modeling methodology is described for decomposing a signal in a coupled structure of binding synergies, in scale-space. Mass conservation principle, along with a generalized uncertainty relation, and the scale-space wave propagation lead to a polynomial decomposition of information. Statistical map of data, through dynamical cascades, gives an effective way of coding and assessing its control structure. Using a multi-scale approach, the scale-space wave information propagation is utilized in computing stochastic resonance synergies (SRS), and a data ensemble is conceptualized within an atomic structure. In this paper, we show the analysis of multidimensional data scatter, exhibiting a point scaling property. We discuss applications in image processing, as well as, in neuroimaging. Functional neuro-cortical mapping by multidimensional scaling is explained for two behaviorally correlated auditory experiments, whose BOLD signals are recorded by fMRI. The point scaling property of the information flow between the signals recorded in those two experiments is analyzed in conjunction with the cortical feature detector findings and the auditory tonotopic map. The brain wave nucleons from an EEG scan, along with a distance measure of synchronicity of the brain wave patterns, are also explained.
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来源期刊
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108
期刊最新文献
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