Internet of Things as a Methodological Concept

Nima Bari, G. Mani, S. Berkovich
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引用次数: 95

Abstract

Nowadays, we are witnessing formation of a new technological marvel: Internet of Things. This construction is able to combine in a particular operational entity all the bits and pieces of the world around us. Thus, why could not this unique establishment present the long-sought essence in the Nature of Things? The two pillars of modern fundamental science-relativity and quantum mechanics-are just approximate descriptions of some properties of such a constructive possibility. The machinery of the physical world develops on a cellular automaton model employing as the transformation rule the mechanism of distributed mutual synchronization with the property of fault-tolerance. This infrastructure yields traveling wave solutions that exactly correspond to the spectrum of the stable elementary particles of matter with an upper bound on the propagation speed. On top of the considered cellular automaton infrastructure there appears a secondary formation that constitutes the mechanism of the Holographic Universe that is the basis for the Internet of Things. The holographic activities determine all the quantum mechanics properties of the physical world including the nonlocality entanglement. For living systems the arrangement of the Internet of Things elucidates the most puzzling biological capability of morphogenesis that otherwise cannot find any reasonable explanation. In this paper, we present the world view of internet of things and the application of this methodology from geospatial computing to physics. We give specific details on applying IoT concept to geospatial analysis in various fields from agriculture to medicine. We also provide detailed analysis of the profound impact of internet of things on our physical world which is a vital knowledge when it comes to geospatial research. We present calendar variation of quantum world which can be used for geospatial data gathering by fine tuning the equipment based on the time of the year.
物联网作为方法论概念
如今,我们正在见证一个新的技术奇迹的形成:物联网。这种结构能够将我们周围世界的点点滴滴结合在一个特定的操作实体中。那么,为什么这个独特的机构不能呈现出长期寻求的事物本质呢?现代基础科学的两大支柱——相对论和量子力学——只是对这种建构可能性的一些性质的近似描述。物理世界的机制是在元胞自动机模型上发展起来的,其转换规则是具有容错特性的分布式互同步机制。这种基础结构产生的行波解与具有传播速度上限的物质的稳定基本粒子的光谱完全对应。在考虑的元胞自动机基础设施之上,出现了构成全息宇宙机制的二级结构,这是物联网的基础。全息活动决定了包括非定域性纠缠在内的物理世界的所有量子力学性质。对于生命系统来说,物联网的安排阐明了最令人费解的形态发生的生物能力,否则无法找到任何合理的解释。在本文中,我们提出了物联网的世界观以及这种方法从地理空间计算到物理的应用。我们详细介绍了将物联网概念应用于从农业到医学等各个领域的地理空间分析。我们还详细分析了物联网对我们的物理世界的深远影响,这在地理空间研究中是至关重要的知识。我们提出了量子世界的日历变化,它可以通过基于一年中的时间微调设备来用于地理空间数据的收集。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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