Three-dimensional imaging of hadrons with hard exclusive reactions: advances in experiment, theory, phenomenology, and lattice QCD
arXiv preprint arXiv:2512.15064, 2025•arxiv.org
Generalized Parton Distributions (GPDs) have emerged as a powerful framework for
exploring the internal structure of hadrons in terms of their partonic constituents. Over the
past three decades, the field has witnessed significant theoretical and experimental
advancements. The interpretation of GPDs in impact parameter space offers a vivid three-
dimensional visualization of hadron structure, correlating longitudinal momentum and
transverse spatial distributions, thereby enabling tomographic imaging of hadrons …
exploring the internal structure of hadrons in terms of their partonic constituents. Over the
past three decades, the field has witnessed significant theoretical and experimental
advancements. The interpretation of GPDs in impact parameter space offers a vivid three-
dimensional visualization of hadron structure, correlating longitudinal momentum and
transverse spatial distributions, thereby enabling tomographic imaging of hadrons …
Generalized Parton Distributions (GPDs) have emerged as a powerful framework for exploring the internal structure of hadrons in terms of their partonic constituents. Over the past three decades, the field has witnessed significant theoretical and experimental advancements. The interpretation of GPDs in impact parameter space offers a vivid three-dimensional visualization of hadron structure, correlating longitudinal momentum and transverse spatial distributions, thereby enabling tomographic imaging of hadrons. Furthermore, the link between GPDs and the matrix elements of the QCD energy-momentum tensor provides access to fundamental properties of hadrons, including spin decomposition and internal pressure distributions. Notably, recent analyses of Deeply Virtual Compton Scattering (DVCS) data have enabled the empirical extraction of the quark pressure profile inside the proton. Motivated by the rapidly evolving experimental landscape, this white paper provides a timely and focused overview of recent developments in GPD theory, phenomenology, and lattice QCD studies. Its scope is shaped by the needs and opportunities of forthcoming experimental programs, and it highlights advances that are particularly relevant for the next generation of dedicated measurements, including the extended Jefferson Lab 12 GeV program and its potential 22 GeV upgrade, J-PARC, COMPASS/AMBER, LHC ultra-peripheral collisions, and the future electron-ion colliders EIC and EicC.
arxiv.org