Title of article :
An object detection and recognition system for weld bead extraction from digital radiographs
Author/Authors :
Felisberto، نويسنده , , Marcelo Kleber and Lopes، نويسنده , , Heitor Silvério and Centeno، نويسنده , , Tania Mezzadri and de Arruda، نويسنده , , Lْcia Valéria Ramos، نويسنده ,
Issue Information :
روزنامه با شماره پیاپی سال 2006
Pages :
12
From page :
238
To page :
249
Abstract :
With base in object detection and recognition techniques, we developed and implemented a new methodology to perform the first head-function of a weld quality interpretation system: the weld bead extraction from a digital radiograph. The proposed methodology uses a genetic algorithm to manage the search for suitable parameters values (position, width, length, and angle) that best defines a window, in the radiographic image, matching with the model image of a weld bead sample. The search results are verified in a classification process that recognize true detections using image matching parameters also proposed in this work. To test the proposed methodology, two groups of images were used; one consisting of 110 radiographs from pipelines welded joints and the other containing 6 images with different numbers of radiographs per image. The tests results showed that, besides automatically check the number of weld beads per image, the proposed methodology is also able to supply the respective position, width, length, and angle of each weld bead, with an accurate rate of 94.4%. As a result, the detected weld beads are correctly extracted from the original image and made available to be inspected through others algorithms for failure detection and classification.
Keywords :
Object detection , image matching , image segmentation , Radiographic weld inspection , Genetic algorithms
Journal title :
Computer Vision and Image Understanding
Serial Year :
2006
Journal title :
Computer Vision and Image Understanding
Record number :
1694861
Link To Document :
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