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Some Mathematical, Epistemological, and Historical Reflections on the Relationship Between Geometry and Reality, Space-Time Theory and the Geometrization of Theoretical Physics, from Riemann to Weyl and Beyond

机译:一些数学,认识论和历史反思关于几何形状与现实,时空理论与理论物理学的几何设计,从黎曼到Weyl及以外的影响

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The history and philosophy of science are destined to play a fundamental role in an epoch marked by a major scientific revolution. This ongoing revolution, principally affecting mathematics and physics, entails a profound upheaval of our conception of space, space-time, and, consequently, of natural laws themselves. Briefly, this revolution can be summarized by the following two trends: (1) by the search for a unified theory of the four fundamental forces of nature, which are known, as of now, as gravity, electromagnetism, and strong and weak nuclear forces; (2) by the search for new mathematical concepts capable of elucidating and therefore explaining such a relationship. In fact, the first search is essentially dependent on the second; that is to say, that in order for a new theory of physics to come to light, the development of a deeper geometric theory capable of explaining the structure of space-time on a quantum scale appears to be necessary. On careful consideration, we notice that both of these developments converge in the direction of a unitary and fundamental tendency of modern sciencewhich is the geometrization of theoretical physics and of natural sciences. This new emergent situation carries within it a profound conceptual change, affecting the way in which relations are conceived of, first and foremost, between mathematics and physics. This new paradigm can be summed up by the intimately interdependent points: (1) the immense variety of physical phenomena and of natural forms follows from the equally infinite variety of geometric and topological objects that can be made out in space and from which space is made up; (2) the second point, which ensues from the former one and which is of great historical and epistemological significance, is that mathematics is involved in rather than applied to phenomena. In other words, phenomena are effects that emerge from the geometrical structure of space-time. There is no doubt that this new conception of the relationship between the universe of mathematical ideas and objects and the world of natural phenomena is the true scientific revolution of our century, of great conceptual importance, and consequently, capable of changing our view of science and of nature at one and the same time. It is all at once of a scientific, philosophical and aesthetic order.
机译:科学的历史和哲学注定要在一个主要的科学革命中标志着的时代发挥重要作用。这种持续的革命,主要是影响数学和物理学,这需要深刻的崛起,我们的空间,时空,以及自然法则本身的概念。简而言之,这场革命可以通过以下两种趋势来概括:(1)通过寻求统一的自然力量的理论,众所周知,截至现在,作为重力,电磁和强大核动力; (2)通过寻找能够阐明的新的数学概念,从而解释这种关系。事实上,第一个搜索基本上依赖于第二个搜索;也就是说,为了让新的物理理论来看光,所以需要开发一种能够解释量子秤上的时空结构的更深的几何理论。关于仔细考虑,我们注意到这两个发展都融合了现代科学的统一和基本趋势的方向,这是理论物理和自然科学的几何化。这种新的紧急情况在它内部涉及深刻的概念变革,影响了在数学和物理学之间构思的关系的方式。这种新的范式可以通过紧密相互依存的点来总结:(1)从等于空间中的同样无限的各种几何和拓扑物体以及制造空间的同样无限种类的各种几何和拓扑物体,可以围绕巨大的物理现象和自然形式向上; (2)第二个点,从前一点,这是历史和认识论的重要意义,是数学是参与的,而不是应用于现象。换句话说,现象是从时空的几何结构出现的效果。毫无疑问,这种新的概念宇宙之间的数学思想和物体与自然现象世界之间的关系是我世纪的真正科学革命,具有巨大的概念重要性,因此能够改变我们的科学观大自然在一个和同时。这一切都是科学,哲学和美学的秩序。

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