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Mark R. O'Malley

Publications and source records attributed to Mark R. O'Malley.

2 recordsLinked to original sources

Searching for sources of the highest energy cosmic rays: low statistics, pitfalls, and possible clues

The clustering properties of the highest energy cosmic rays and their correlations with candidate sources are re-examined using the most recently available AGASA data and a rigorous correlation analysis. The statistical methodology incorporates some important points not considered in previous studies. Results include small angle clustering significances consistent with, but somewhat less than, earlier findings, a possible large scale anisotropy for events with energies $E \approx 5 - 8 \times 10^{19} \mathrm{eV}$, and no statistically significant cross correlations with BL Lacertae or blazars. A marginally significant cross correlation exists for events with energies $E > 8 \times 10^{19} \mathrm{eV}$ with a set of Abell clusters, but no definitive conclusion can yet be drawn from this result.

astro-ph↗

Hints of Energy Dependences in AGASA EHECR Arrival Directions

A correlation and probability analysis of the distribution of arrival directions for a sample of AGASA events reported to have energies above 4x10^{19} eV shows the small scale clustering to remain significant at the 99.5 - 99.9% CL and to be consistent with previous results. For the sample taken as a whole, there are no departures from either homogeneity or isotropy on angular scales greater than 5 degrees. The sample of events with E >= 6x10^{19} eV possesses no small scale clustering. Cross correlating subsamples partitioned by energy reveals three uncorrelated distributions in the intervals 4 - 5x10^{19} eV, 5 - (8-10)x10^{19} eV, and greater than (8-10)x10^{19} eV. The partition with 5 <= E < 8x10^{19} eV is correlated with the supergalactic equatorial plane while the other two groups are statistically consistent with isotropic distributions. The presence of three distinct energy-partitioned groups of events could reflect possible changes in primary composition, different source distributions, differing levels of GZK losses, or deflection effects of magnetic fields.

hep-ph↗