Nuridin-Amin, Nashipu (2026): Equitable Equilibrium Network Economics (ENE 2.0): A Physical Theory of Self-directing Conscious Intelligence Under Scarcity. Published in:
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Abstract
We propose a new scientific framework for understanding economic activity as a physical process governed by scarcity, energy transformation, and purposive action by intelligent agents. This framework, Equitable Equilibrium Network Economics (ENE), grounds economic concepts — including value, utility, and price — in a coherent physical ontology, deriving them from first principles rather than assumption. The result is a system in which human capabilities and material resources can be continuously and efficiently matched to human wants giving rise to an economic architecture capable of achieving universal productive participation (zero unemployment), eliminating structural poverty, and substantially increasing human welfare.
| Item Type: | MPRA Paper |
|---|---|
| Original Title: | Equitable Equilibrium Network Economics (ENE 2.0): A Physical Theory of Self-directing Conscious Intelligence Under Scarcity. |
| Language: | English |
| Keywords: | Physical theory of value; Self-directing conscious intelligence; Economic ontology; Scarcity and purposive action; Energy-based measurement, Economic Value, Utility |
| Subjects: | B - History of Economic Thought, Methodology, and Heterodox Approaches > B0 - General > B00 - General B - History of Economic Thought, Methodology, and Heterodox Approaches > B4 - Economic Methodology B - History of Economic Thought, Methodology, and Heterodox Approaches > B5 - Current Heterodox Approaches |
| Item ID: | 128722 |
| Depositing User: | Mr Nashipu Nuridin-Amin |
| Date Deposited: | 15 May 2026 14:45 |
| Last Modified: | 15 May 2026 14:45 |
| References: | 1. Muralidhar SS, Marin N, Melick C, Alwan A, Wang Z, Baldwin R, Walcott S, Srinivasan M. Metabolic cost for isometric force scales nonlinearly and predicts how humans distribute forces across limbs. bioRxiv. 2023 Dec 24. doi: https://doi.org/10.1101/2023.12.24.573267 2. de Leva P. Adjustments to Zatsiorsky-Seluyanov's segment inertia parameters. J Biomech. 1996;29(9):1223-1230. 3. Barclay CJ, Curtin NA. Advances in understanding the energetics of muscle contraction. J Biomech. 2023;156:111669. 4. Mitoraj M, Michalak A. Natural orbitals for chemical valence as descriptors of chemical bonding in transition metal complexes. Journal of Molecular Modeling. 2007;13(2):347-355. 5. Mitoraj MP, Michalak A, Ziegler T. A combined charge and energy decomposition scheme for bond analysis. Journal of Chemical Theory and Computation. 2009;5(4):962-975. 6. Ainsworth BE, Haskell WL, Herrmann SD, et al. 2011 Compendium of Physical Activities. Medicine & Science in Sports & Exercise. 2011;43(8):1575-1581. |
| URI: | https://mpra.ub.uni-muenchen.de/id/eprint/128722 |

