Separating Space and Time for Dimensional Analysis and Euclidean Relational Modeling

Steven D. P. Moore
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Abstract

The theory of relativity links space and time to account for observed events in four-dimensional space. In this article we describe an alternative static state causal discrete time modeling system using an omniscient viewpoint of dynamical systems that can express object relations in the moment(s) they are observed. To do this, three key components are required, including the introduction of independent object-relative dimensional metrics, a zero-dimensional frame of reference, and application of Euclidean geometry for modeling. Procedures separate planes of matter, extensions of space (relational distance) and time (duration) using object-oriented dimensional quantities. Quantities are converted into base units using symmetry for space (Dihedral360), time (Dihedral12), rotation (Dihedral24), and scale (Dihedral10). Geometric elements construct static state outputs in discrete time models rather than continuous time using calculus, thereby using dimensional and positional natural number numerals that can visually encode complex data instead of using abstraction and irrationals. Static state Euclidean geometric models of object relations are both measured and expressed in the state they are observed in zero-time as defined by a signal. The frame can include multiple observer frames of reference where each origin, point, is the location of a distinct privileged point of reference. Two broad and diverse applications are presented: a one-dimensional spatiotemporal orbital model, and a thought experiment related to a physical theory beyond Planck limits. We suggest that expanding methodologies and continued formalization, novel tools for physics can be considered along with applications for computational discrete geometric modeling.
分离空间和时间的量纲分析和欧几里得关系建模
相对论把空间和时间联系起来,以解释在四维空间中观察到的事件。在这篇文章中,我们描述了一个备选的静态因果离散时间建模系统,使用动态系统的全知观点,可以在观察到的时刻表达对象关系。要做到这一点,需要三个关键组成部分,包括引入独立的物体相对维度度量,零维参考框架,以及应用欧几里得几何进行建模。程序使用面向对象的维度量分离物质平面、空间扩展(关系距离)和时间(持续时间)。使用空间(Dihedral360)、时间(Dihedral12)、旋转(Dihedral24)和尺度(Dihedral10)的对称性将数量转换为基本单位。几何元素在离散时间模型中构建静态输出,而不是使用微积分在连续时间模型中构建静态输出,从而使用可以直观地编码复杂数据的维度和位置自然数,而不是使用抽象和无理数。物体关系的静态欧几里得几何模型是在信号定义的零时间内观察到的状态下测量和表示的。帧可以包括多个观察者参考帧,其中每个原点点是一个独特的特权参考点的位置。提出了两种广泛而多样的应用:一维时空轨道模型,以及与超越普朗克极限的物理理论相关的思想实验。我们建议扩展方法和持续的形式化,可以考虑新的物理工具以及计算离散几何建模的应用。
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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