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Towards a first implementation of the WLIMES approach in living system studies advancing the diagnostics and therapy in augmented personalized medicine

机译:朝着生命系统研究中的WLIMES方法的第一次实施推进增强个性化医学中的诊断和治疗

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AbstractThe goal of this paper is to advance an extensible theory of living systems using an approach to biomathematics and biocomputation that suitably addresses self-organized, self-referential and anticipatory systems with multi-temporal multi-agents. Our first step is to provide foundations for modelling of emergent and evolving dynamic multi-level organic complexes and their sustentative processes in artificial and natural life systems. Main applications are in life sciences, medicine, ecology and astrobiology, as well as robotics, industrial automation, man-machine interface and creative design. Since 2011 over 100 scientists from a number of disciplines have been exploring a substantial set of theoretical frameworks for a comprehensive theory of life known as Integral Biomathics. That effort identified the need for a robust core model of organisms as dynamic wholes, using advanced and adequately computable mathematics. The work described here for that core combines the advantages of a situation and context aware multivalent computational logic for active self-organizing networks, Wandering Logic Intelligence (WLI), and a multi-scale dynamic category theory, Memory Evolutive Systems (MES), hence WLIMES. This is presented to the modeller via a formal augmented reality language as a first step towards practical modelling and simulation of multi-level living systems. Initial work focuses on the design and implementation of this visual language and calculus (VLC) and its graphical user interface. The results will be integrated within the current methodology and practices of theoretical biology and (personalized) medicine to deepen and to enhance the holistic understanding of life.<
机译:<![cdata [ 抽象 本文的目标是使用适当地处理自组织的生物水肿和生物追查的方法,推进生活系统的可伸展理论。具有多时间多代理的参照和预期系统。我们的第一步是为突出和不断发展的动态多级有机综合体建模及其在人工和自然生活系统中的可养护过程提供建模的基础。主要应用是生命科学,医学,生态和天体学,以及机器人,工业自动化,人机界面和创造性设计。自2011年以来,来自许多学科的100多名科学家一直探索了一个大量的理论框架,以众所周知的生物硕士学位。该努力确定了需要一种强大的生物体核心模型作为动态惠士,使用先进和充分的可计算数学。这里描述的工作结合了活动自组织网络,徘徊逻辑智能(WLI)的情况和背景感知多价计算逻辑的优点,以及多尺度动态类别理论,内存演化系统(MES),因此Wlimes。这通过正式的增强现实语言作为迈向朝向迈向实际建模和模拟的多级生活系统的第一步。初始工作侧重于此视觉语言和微积分(VLC)的设计和实现及其图形用户界面。结果将集成在理论生物学和(个性化)医学的当前方法和实践范围内,加深和提高对生命的整体理解。<

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