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Roo Weerasinghe

Publications and source records attributed to Roo Weerasinghe.

2 recordsLinked to original sources

Real-Time Multi-Mode Post-Merger Gravitational Wave Detection using Convolutional Neural Networks: Methodology Development for Third-Generation Detectors

The detection and characterization of post-merger gravitational wave signals from binary neutron star mergers remains challenging with current ground-based detectors. We present a convolutional neural network framework designed for real-time detection and multi-mode frequency extraction of post-merger signals, achieving an inference latency of 3.0 ms and a frequency accuracy of 48.6 Hz on the direct-comparison subsets (53 Hz on the comprehensive test set). The framework is validated on realistic LIGO O4 detector noise including authentic GravitySpy glitch morphologies, demonstrating ROC AUC of 0.999999 and 99.998% detection efficiency at 1% false alarm rate. These exceptional performance metrics arise from an aggressive training augmentation strategy that exposes the network to artificially challenging conditions, enabling robust generalization to our synthetic O4 detector noise model. We compare performance against a simplified matched filtering baseline using Lorentzian templates (23x more accurate despite a 4.7x computational overhead) and Bayesian parameter estimation (1.2 million times faster), establishing complementary trade-offs in the analysis landscape. While current O4 sensitivity limits post-merger detections to ~20 Mpc (~1 detection per century), this methodology provides essential infrastructure for third-generation detectors (Einstein Telescope, Cosmic Explorer) where post-merger detection will become routine with annual detection rates exceeding 100 events. Our validation framework identifies expected behavior in uncertainty scaling that reflects realistic training constraints rather than idealized Fisher information limits, demonstrating honest assessment practices for machine learning applications in gravitational wave astronomy.

astro-ph.IM

High-Precision Multi-Period Analysis of the Ellipsoidal Variable Candidate TIC~470127886 from TESS Photometry

We present the first detailed photometric characterization of TIC 470127886, a previously unstudied multi-periodic variable star discovered in TESS photometry. Analysis of 145,374 high-cadence observations spanning 696 days (944-day baseline, 2023 January-2024 October) across 10 sectors (60, 59, 58, 53, 52, 73, 86, 79, 78, 85) reveals complex periodic variability with a primary period of 5.544527 +/- 0.004307 days and false alarm probability 1.47 x 10^-87. Lomb-Scargle analysis identifies three significant periods at 5.545, 5.801, and 8.874 days with amplitudes of 15,702, 12,772, and 12,670 ppm. The phase-folded light curve shows smooth, sinusoidal morphology consistent with ellipsoidal variation from tidal distortion in a close binary, with no eclipse features. A three-component sinusoidal model, appropriate for ellipsoidal variables, provides excellent fit quality. Validation tests confirm signal authenticity and persistence, and systematic checks verify no contamination from nearby stars (>3 mag fainter). We classify TIC 470127886 as an ellipsoidal variable candidate with 0.70 confidence, with multi-period behavior suggesting additional variability mechanisms beyond tidal distortion. This work demonstrates high-precision characterization of complex multi-periodic variables in TESS photometry.

astro-ph.SR