Literature DB >> 12512727

Verification of multileaf collimator leaf positions using an electronic portal imaging device.

Sanjiv S Samant1, Wei Zheng, Nestor Andres Parra, Jason Chandler, Arun Gopal, Jian Wu, Jinesh Jain, Yunping Zhu, Marc Sontag.   

Abstract

An automated method is presented for determining individual leaf positions of the Siemens dual focus multileaf collimator (MLC) using the Siemens BEAMVIEW(PLUS) electronic portal imaging device (EPID). Leaf positions are computed with an error of 0.6 mm at one standard deviation (sigma) using separate computations of pixel dimensions, image distortion, and radiation center. The pixel dimensions are calculated by superimposing the film image of a graticule with the corresponding EPID image. A spatial correction is used to compensate for the optical distortions of the EPID, reducing the mean distortion from 3.5 pixels (uncorrected) per localized x-ray marker to 2 pixels (1 mm) for a rigid rotation and 1 pixel for a third degree polynomial warp. A correction for a nonuniform dosimetric response across the field of view of the EPID images is not necessary due to the sharp intensity gradients across leaf edges. The radiation center, calculated from the average of the geometric centers of a square field at 0 degrees and 180 degrees collimator angles, is independent of graticule placement error. Its measured location on the EPID image was stable to within 1 pixel based on 3 weeks of repeated extensions/retractions of the EPID. The MLC leaf positions determined from the EPID images agreed to within a pixel of the corresponding values measured using film and ionization chamber. Several edge detection algorithms were tested: contour, Sobel, Roberts, Prewitt, Laplace, morphological, and Canny. These agreed with each other to within < or = 1.2 pixels for the in-air EPID images. Using a test pattern, individual MLC leaves were found to be typically within 1 mm of the corresponding record-and-verify values, with a maximum difference of 1.8 mm, and standard deviations of <0.3 mm in the daily reproducibility. This method presents a fast, automatic, and accurate alternative to using film or a light field for the verification and calibration of the MLC.

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Year:  2002        PMID: 12512727     DOI: 10.1118/1.1515760

Source DB:  PubMed          Journal:  Med Phys        ISSN: 0094-2405            Impact factor:   4.071


  5 in total

1.  Verification of MLC based real-time tumor tracking using an electronic portal imaging device.

Authors:  Sarah Han-Oh; Byong Yong Yi; Fritz Lerma; Barry L Berman; Minzhi Gui; Cedric Yu
Journal:  Med Phys       Date:  2010-06       Impact factor: 4.071

2.  Clinical commissioning and use of the Novalis Tx linear accelerator for SRS and SBRT.

Authors:  Jinkoo Kim; Ning Wen; Jian-Yue Jin; Nicole Walls; Sangroh Kim; Haisen Li; Lei Ren; Yimei Huang; Anthony Doemer; Kathleen Faber; Tina Kunkel; Ahssan Balawi; Kimberly Garbarino; Kenneth Levin; Samir Patel; Munther Ajlouni; Brett Miller; Teamor Nurushev; Calvin Huntzinger; Raymond Schulz; Indrin J Chetty; Benjamin Movsas; Samuel Ryu
Journal:  J Appl Clin Med Phys       Date:  2012-05-10       Impact factor: 2.102

3.  Multi-parametric Improvements in the CCD Camera-based EPID for Portal Dosimetry.

Authors:  Vahideh Nazari; Seied R Mahdavi; Ahmad Mostaar; Hassan Nedaei; Mohammad A Mosleh Shirazi; Alireza Nikoofar; Golbarg Esmailie
Journal:  J Med Signals Sens       Date:  2017 Jan-Mar

4.  On the sensitivity of patient-specific IMRT QA to MLC positioning errors.

Authors:  Guanghua Yan; Chihray Liu; Thomas A Simon; Lee-Cheng Peng; Christopher Fox; Jonathan G Li
Journal:  J Appl Clin Med Phys       Date:  2009-02-05       Impact factor: 2.102

5.  Detector system dose verification comparisons for arc therapy: couch vs. gantry mount.

Authors:  Arjunan Manikandan; Biplab Sarkar; Maitreyee Nandy; Chandra Sekaran Sureka; Michael S Gossman; Nadendla Sujatha; Vivek Thirupathur Rajendran
Journal:  J Appl Clin Med Phys       Date:  2014-05-08       Impact factor: 2.102

  5 in total

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