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◆ Physical review. D/Physical review. D.2025-11-10· Sky

Fast and accurate parameter estimation of high-redshift sources with the Einstein Telescope

Filippo Santoliquido, Jacopo Tissino, U. Dupletsa, M. Branchesi, J. Harms, Manuel Arca Sedda, Maximilian Dax, Annalena Kofler, Stephen Green, Nihar Gupte, I. M. Romero-Shaw, Emanuele Berti

原始摘要(英文原文)· Original abstract
The Einstein Telescope (ET), along with other third-generation gravitational wave (GW) detectors, will be a key instrument for detecting GWs in the coming decades. However, analyzing the data and estimating source parameters will be challenging, especially given the large number of expected detections---on the order of ${10}^{5}$ per year---which make current methods based on stochastic sampling impractical. In this work, we use dingo-is to perform neural posterior estimation (NPE) of high-redshift events detectable with ET in its triangular configuration. NPE is a likelihood-free inference technique that leverages normalizing flows to approximate posterior distributions. After training, inference is fast, requiring only a few minutes per source, and accurate, as corrected through importance sampling and validated against standard Bayesian inference methods. To confirm previous findings on the ability to estimate parameters for high-redshift sources with ET, we compare NPE results with predictions from the Fisher information matrix (FIM) approximation. We find that NPE correctly recovers the eight degenerate sky modes induced by the triangular detector geometry, missed by the FIM analysis, resulting in an underestimation of sky localization uncertainties for most sources. FIM also overestimates the uncertainty in luminosity distance by a factor of $\ensuremath{\sim}3$ on average when the injected luminosity distance is ${d}_{\mathrm{L}}^{\mathrm{inj}}>{10}^{5}\text{ }\text{ }\mathrm{Mpc}$, further confirming that ET will be particularly well suited for studying the early Universe.
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