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Eliminating experimental bias in anisotropic-flow measurements of high-energy nuclear collisions
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Eliminating experimental bias in anisotropic-flow measurements of high-energy nuclear collisions
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We argue that the traditional event-plane method, which is still widely used to analyze anisotropic flow in ultrarelativistic heavy-ion collisions, should be abandoned because flow fluctuations introduce an uncontrolled bias in the measurement. Instead, one should use an alternative, such as the scalar-product method or cumulant method, which always measures an unambiguous property of the underlying anisotropic flow and therefore eliminates this bias, and does so without any disadvantages. It is known that this correction is important for precision comparisons of traditional v_n measurements requiring better than a few percent accuracy. However, we show that it is absolutely essential for correlations between different harmonics, such as those that have been recently measured by the ATLAS Collaboration, which can differ from the nominally-measured quantity by a factor two or more. We also describe how, using the corrected analysis method, the information from different subevents can be combined in order to optimize the precision of analyses.
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Cited by 1 Pith paper
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Exploring the origin of D$^0$ meson elliptic flow in PbPb collisions at $\sqrt{s_\mathrm{NN}}$ = 5.02 TeV using event shape engineering
Prompt D0 v2 is strongly linearly correlated with low-pT charged-particle v2 across q2-selected event classes, indicating initial-state geometry dominates charm-hadron elliptic flow in PbPb collisions.
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