Abstract

Modern cosmological observations are encountering acute foundational tensions within the standard ΛCDM framework. These include the 5σ Hubble Tension, anomalously mature galaxy populations at high redshifts (z > 10) revealed by the James Webb Space Telescope (JWST), and large-scale cosmic anisotropy dipoles detected in radio and infrared surveys. This white paper presents a formal empirical framework to evaluate the Dimensionally Extended Holographic Projection (DEHP) model against these anomalies. By treating space-time as an emergent bulk generated by a two-dimensional boundary information layer, DEHP treats cosmic expansion as a manifestation of viscoelastic substrate mechanics rather than an intrinsic vacuum metric expansion. We define explicit, falsifiable observational metrics across three modules utilizing synchronized data streams from JWST, the Euclid Space Telescope, and the Nancy Grace Roman Space Telescope (RST). Standard Navier-Stokes fluid formalisms, Beltrami flow constraints, and non-linear elastic strain tensors are used to establish precise mathematical benchmarks, comprehensive engineering matrices, cross-sector validation metrics, and error-insulated Python scripts for automated data validation.

Creative Commons License

Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.

Share

COinS