Physics case for quarkonium studies at the Electron Ion Collider
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Engineering topics
Publications and source records attributed to Metz, Andreas.
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The feasibility of extracting generalized parton distributions (GPDs) from deeply virtual Compton scattering (DVCS) data has recently been questioned because of the existence of an infinite set of so-called โshadow GPDsโ (SGPDs). These SGPDs depend on the process and manifest as multiple solutions (at a fixed scale ๐ 2 ) to the inverse problem that needs to be solved to infer GPDs from DVCS data. SGPDs therefore pose a significant challenge for extracting GPDs from DVCS data. With this motivation we study the extent to which QCD evolution can provide constraints on SGPDs. This is possible because the known classes of SGPDs begin to contribute to observables after evolution, and can then be constrained (at the input scale ๐$^{2}_{0}$) by data that has a finite ๐ 2 range. The impact that SGPDs could have on determining the total angular momentum, pressure and sheer force distributions, and tomography is also discussed. We find that ๐ 2 evolution, given empirical data over a wide range of skewness (๐ ) and ๐ 2 scales, constrains the SGPDs studied at low ๐ฅ and low ๐. If this finding generalizes to all SGPDsโand we have not been able to find any SGPDs with qualitatively different behaviorโthen this potentially makes extraction of GPDs from DVCS possible over a limited range of ๐ฅ and ๐.