arXiv · 1204.5534
First eigenvalue/eigenvector in sparse random symmetric matrices: influences of degree fluctuation
Abstract
The properties of the first (largest) eigenvalue and its eigenvector (first eigenvector) are investigated for large sparse random symmetric matrices that are characterized by bimodal degree distributions. In principle, one should be able to accurately calculate them by solving a functional equation concerning auxiliary fields which come out in an analysis based on replica/cavity methods. However, the difficulty in analytically solving this equation makes an accurate calculation infeasible in practice. To overcome this problem, we develop approximation schemes on the basis of two exceptionally solvable examples. The schemes are reasonably consistent with numerical experiments when the statistical bias of positive matrix entries is sufficiently large, and they qualitatively explain why considerably large finite size effects of the first eigenvalue can be observed when the bias is relatively small.
Explore related subjects
Keep this discovery
Yoshiyuki Kabashima, Hisanao Takahashi. 2012-04-25. First eigenvalue/eigenvector in sparse random symmetric matrices: influences of degree fluctuation. https://doi.org/10.1088/1751-8113/45/32/325001
Cite the original work for its findings. Save a collection to share your selection of sources.