The paper reviews and extends a relational, shape-based formulation of Newtonian gravity in which only dimensionless ratios are physical, unifying total-collision and parabolic-escape solutions and defining time via increasing variety.
The Emergence of Measured Geometry in Self-Gravitating Systems
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abstract
This work investigates the geometrical properties of self-gravitating $N$-body systems from the perspective established by Henri Poincar\'e and Albert Einstein concerning the operational nature of measured geometry. Utilizing recent numerical analyses of central configurations--special equilibrium solutions to the Newtonian $N$-body problem--we uncover systematic spatial variations in nearest-neighbor particle separations correlated with the radial distance from the system's center of mass. We argue that these variations reflect a context-dependent, emergent effective geometry shaped by gravitational interactions, in accordance with Poincar\'e's assertion that measured geometry depends on the forces influencing measuring devices, and Einstein's view that rods and clocks define physical geometry through their local dynamics. By revisiting these foundational insights within a modern computational framework, we provide evidence that geometry in self-gravitating Newtonian systems is not a fixed background, but an emergent construct arising from internal physical interactions.
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A Scale-Invariant Theory of the Universe
The paper reviews and extends a relational, shape-based formulation of Newtonian gravity in which only dimensionless ratios are physical, unifying total-collision and parabolic-escape solutions and defining time via increasing variety.