Technique for Automated Recognition of Sunspots on Full-Disk Solar Images
Методика автоматического распознавания солнечных пятен на полнодисковых изображениях Солнца
2005-09-14
SCID: 54.1/ce4k6ftf
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SOHO/MDIautomated sunspot recognitionedge detectionfull-disk solar imageswatershed segmentation
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Abstract (AI)
A new robust technique is presented for automated identification of sunspots on full-disk white-light (WL) solar images obtained from SOHO/MDI instrument and Ca II K1 line images from the Meudon Observatory. Edge-detection methods are applied to find sunspot candidates followed by local thresholding using statistical properties of the region around sunspots. Possible initial oversegmentation of images is remedied with a median filter. The features are smoothed by using morphological closing operations and filled by applying watershed, followed by dilation operator to define regions of interest containing sunspots. A number of physical and geometrical parameters of detected sunspot features are extracted and stored in a relational database along with umbra-penumbra information in the form of pixel run-length data within a bounding rectangle. The detection results reveal very good agreement with the manual synoptic maps and a very high correlation with those produced manually by NOAA Observatory, USA.
Key Findings
1
A robust automated technique identifies sunspots in full-disk SOHO/MDI white-light and Meudon Observatory Ca II K1 solar images.
2
Detected sunspot features are characterized using physical and geometrical parameters, with umbra-penumbra information stored as pixel run-length data in a relational database.
3
Detection results show very good agreement with manual synoptic maps and very high correlation with NOAA Observatory's manual sunspot identifications.
4
The method combines edge detection, locally adaptive statistical thresholding, median filtering, morphological closing, watershed filling, and dilation to define sunspot regions.
Research Object
Sunspots on full-disk white-light and Ca II K1 solar images
Research Subject
Automated recognition and characterization of sunspots, including detection accuracy and extraction of physical and geometrical features with umbra–penumbra information
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2005-09-14
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