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Automated detection of coronal mass ejections in three-dimensions using multi-viewpoint observations

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arxiv 1612.04560 v1 pith:NALJFK6N submitted 2016-12-14 physics.space-ph astro-ph.SR

classification physics.space-phastro-ph.SR
keywords cmesmethodthreeautomatedcoronalmassresultsangular
verification ladder T0 review T1 audit T2 compute T3 formal
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A new, automated method of detecting coronal mass ejections (CMEs) in three dimensions for the LASCO C2 and STEREO COR2 coronagraphs is presented. By triangulating isolated CME signal from the three coronagraphs over a sliding window of five hours, the most likely region through which CMEs pass at 5 solar radii is identified. The centre and size of the region gives the most likely direction of propagation and approximate angular extent. The Automated CME Triangulation (ACT) method is tested extensively using a series of synthetic CME images created using a wireframe flux rope density model, and on a sample of real coronagraph data; including halo CMEs. The accuracy of the angular difference between the detection and true input of the synthetic CMEs is 7.14 degrees, and remains acceptable for a broad range of CME positions relative to the observer, the relative separation of the three observers and even through the loss of one coronagraph. For real data, the method gives results that compare well with the distribution of low coronal sources and results from another instrument and technique made further from the Sun. The true three dimension (3D)-corrected kinematics and mass/density are discussed. The results of the new method will be incorporated into the CORIMP database in the near future, enabling improved space weather diagnostics and forecasting.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Multi-Instrument Observations and Tracking of a Coronal Mass Ejection Front From Low to Middle Corona

    astro-ph.SR 2025-08 conditional novelty 6.0 of 10

    A single CME observed in sequence by AIA, K-Cor, and LASCO shows the same dome-shaped front in EUV and white light, identified as a pile-up compression region behind a not-yet-detached wave.

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