Trace dynamics and division algebras: towards quantum gravity and unification
Tejinder P. Singh

TL;DR
This paper proposes a unifying framework at the Planck scale using octonionic trace dynamics, linking gravity, gauge fields, and fermions through exceptional Lie groups, and predicts a new massless boson.
Contribution
It introduces an octonionic formulation of trace dynamics that unifies fundamental interactions and predicts new particles, extending previous division algebra approaches.
Findings
Unifies gravity, gauge fields, and fermions using octonions and exceptional Lie groups.
Predicts a new massless spin-one boson, the Lorentz boson.
Shows gravitation as an emergent phenomenon from quantum trace dynamics.
Abstract
We have recently proposed a Lagrangian in trace dynamics at the Planck scale, for unification of gravitation, Yang-Mills fields, and fermions. Dynamical variables are described by odd-grade (fermionic) and even-grade (bosonic) Grassmann matrices. Evolution takes place in Connes time. At energies much lower than Planck scale, trace dynamics reduces to quantum field theory. In the present paper we explain that the correct understanding of spin requires us to formulate the theory in 8-D octonionic space. The automorphisms of the octonion algebra, which belong to the smallest exceptional Lie group , replace space-time diffeomorphisms and internal gauge transformations, bringing them under a common unified fold. Building on earlier work by other researchers on division algebras, we propose the Lorentz-weak unification at the Planck scale, the symmetry group being the stabiliser group of…
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