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April 29, 20260 citationsOpen Access

Calibration Code and Technical Report for an 8+1 Coil Rotational Detector Based on the UAT/UPC Frameworks

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MPMiguel Angel Percudani

Key Points

  • This work aims to analyze the scalar saturation limit using LIGO-Virgo data under UAT and UPC frameworks.
  • Developed a core analysis pipeline to download and analyze LIGO-Virgo data.
  • Applied a peak-normalised RMS statistic over 1-second windows to identify events.
  • Performed SVD triangulation to determine the best-fit direction of astrophysical sources.
  • Identified 78 events with the epoch-corrected attractor present in over 50% of windows.
  • Achieved a best-fit direction of RA = 124.78°, Dec = +7.85° with an RMS error of 0.458.
  • Control tests on noise-only segments demonstrated 0.0% false positives.

Abstract

This repository contains the analysis pipeline, control scripts, and companion manuscript for a systematic search of the scalar saturation limit predicted by the Universal Applicable Time (UAT) and Unified Principle of Causality (UPC) frameworks in publicly available LIGO-Virgo data. The core pipeline (pipelineᵤnifiedᵣmsₛvd. py) downloads the GWTC event catalog and strain from GWOSC, applies a peak-normalised RMS statistic over 1-second windows with the predicted secular drift of the attractor (0. 046 Hz/day), identifies 78 events where the epoch-corrected attractor is present in >50% of windows, and performs SVD triangulation of the maximum-sensitivity vectors, yielding a best-fit direction of RA = 124. 78°, Dec = +7. 85° (Cancer) with an RMS error of 0. 458. Control tests on noise-only segments return 0. 0% false positives. Auxiliary scripts document methodological integrity: nullₕypothesisᵣandomₚhase. py shows that an earlier 8-virtual-channel method produced an artefactual Γ-value, and integritycheckₕash. py confirms the discrepancy between locally stored HDF5 files and official GWOSC data that motivated the exclusive use of direct downloads. The package also includes a LaTeX manuscript (searchₛcalarₐttractor. tex) describing the methodology, results, and discussion, as well as a README with usage instructions. Related DOIs: 10. 5281/zenodo. 18446712, 10. 5281/zenodo. 17729221, 10. 5281/zenodo. 18210808.

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Cite This Study

Miguel Angel Percudani (2026) studied this question.

synapsesocial.com/papers/69f19fd5edf4b468248067d1https://doi.org/10.5281/zenodo.19827731
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Pipeline and Data Validation for the Detection of a Directional Scalar Attractor in Public LIGO-Virgo Strain Data2026
  2. 2Complete Validation Suite for the RMS Attractor Search in LIGO–Virgo Data: Unified Pipeline, Stress Tests, Data‑Integrity Controls, and Technical Report2026
  3. 3Longitudinal Analysis of Scalar Causal Attractors in LIGO-Virgo Data (2015–2024): Empirical Validation of UAT/UPC Frameworks through 219 Gravitational Events2026
  4. 4UAT/UPC Final Analysis Suite – Optimised 172–260 Hz Window with Power‑Line Notches and Full Stress Tests (01 May 2026)2026
  5. 5UAT-VASCO Final Audit Report: Geomagnetic Dipole Coupling Confirmation, H1 Desynchronisation Resolution, and Falsifiable Predictions of the Universal Applied Time Framework2026