Cited 13 times in
Commissioning of a fluoroscopic-based real-time markerless tumor tracking system in a superconducting rotating gantry for carbon-ion pencil beam scanning treatment
DC Field | Value | Language |
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dc.contributor.author | 금웅섭 | - |
dc.date.accessioned | 2019-07-23T06:59:09Z | - |
dc.date.available | 2019-07-23T06:59:09Z | - |
dc.date.issued | 2019 | - |
dc.identifier.issn | 0094-2405 | - |
dc.identifier.uri | https://ir.ymlib.yonsei.ac.kr/handle/22282913/170408 | - |
dc.description.abstract | PURPOSE: To perform the final quality assurance of our fluoroscopic-based markerless tumor tracking for gated carbon-ion pencil beam scanning (C-PBS) radiotherapy using a rotating gantry system, we evaluated the geometrical accuracy and tumor tracking accuracy using a moving chest phantom with simulated respiration. METHODS: The positions of the dynamic flat panel detector (DFPD) and x-ray tube are subject to changes due to gantry sag. To compensate for this, we generated a geometrical calibration table (gantry flex map) in 15° gantry angle steps by the bundle adjustment method. We evaluated five metrics: (a) Geometrical calibration was evaluated by calculating chest phantom positional error using 2D/3D registration software for each 5° step of the gantry angle. (b) Moving phantom displacement accuracy was measured (±10 mm in 1-mm steps) with a laser sensor. (c) Tracking accuracy was evaluated with machine learning (ML) and multi-template matching (MTM) algorithms, which used fluoroscopic images and digitally reconstructed radiographic (DRR) images as training data. The chest phantom was continuously moved ±10 mm in a sinusoidal path with a moving cycle of 4 s and respiration was simulated with ±5 mm expansion/contraction with a cycle of 2 s. This was performed with the gantry angle set at 0°, 45°, 120°, and 240°. (d) Four types of interlock function were evaluated: tumor velocity, DFPD image brightness variation, tracking anomaly detection, and tracking positional inconsistency in between the two corresponding rays. (e) Gate on/off latency, gating control system latency, and beam irradiation latency were measured using a laser sensor and an oscilloscope. RESULTS: By applying the gantry flex map, phantom positional accuracy was improved from 1.03 mm/0.33° to <0.45 mm/0.27° for all gantry angles. The moving phantom displacement error was 0.1 mm. Due to long computation time, the tracking accuracy achieved with ML was <0.49 mm (=95% confidence interval [CI]) for imaging rates of 15 and 7.5 fps; those at 30 fps were decreased to 1.84 mm (95% CI: 1.79 mm-1.92 mm). The tracking positional accuracy with MTM was <0.52 mm (=95% CI) for all gantry angles and imaging frame rates. The tumor velocity interlock signal delay time was 44.7 ms (=1.3 frame). DFPD image brightness interlock latency was 34 ms (=1.0 frame). The tracking positional error was improved from 2.27 ± 2.67 mm to 0.25 ± 0.24 mm by the tracking anomaly detection interlock function. Tracking positional inconsistency interlock signal was output within 5.0 ms. The gate on/off latency was <82.7 ± 7.6 ms. The gating control system latency was <3.1 ± 1.0 ms. The beam irradiation latency was <8.7 ± 1.2 ms. CONCLUSIONS: Our markerless tracking system is now ready for clinical use. We hope to shorten the computation time needed by the ML algorithm at 30 fps in the future. | - |
dc.description.statementOfResponsibility | restriction | - |
dc.language | English | - |
dc.publisher | Published for the American Assn. of Physicists in Medicine by the American Institute of Physics. | - |
dc.relation.isPartOf | MEDICAL PHYSICS | - |
dc.rights | CC BY-NC-ND 2.0 KR | - |
dc.rights | https://creativecommons.org/licenses/by-nc-nd/2.0/kr/ | - |
dc.title | Commissioning of a fluoroscopic-based real-time markerless tumor tracking system in a superconducting rotating gantry for carbon-ion pencil beam scanning treatment | - |
dc.type | Article | - |
dc.contributor.college | College of Medicine (의과대학) | - |
dc.contributor.department | Dept. of Radiation Oncology (방사선종양학교실) | - |
dc.contributor.googleauthor | Shinichiro Mori | - |
dc.contributor.googleauthor | Yukinobu Sakata | - |
dc.contributor.googleauthor | Ryusuke Hirai | - |
dc.contributor.googleauthor | Wataru Furuichi | - |
dc.contributor.googleauthor | Kazuki Shimabukuro | - |
dc.contributor.googleauthor | Ryosuke Kohno | - |
dc.contributor.googleauthor | Woong Sub Koom | - |
dc.contributor.googleauthor | Shigeru Kasai | - |
dc.contributor.googleauthor | Keiko Okaya | - |
dc.contributor.googleauthor | Yasushi Iseki | - |
dc.identifier.doi | 10.1002/mp.13403 | - |
dc.contributor.localId | A00273 | - |
dc.relation.journalcode | J02206 | - |
dc.identifier.eissn | 2473-4209 | - |
dc.identifier.pmid | 30689205 | - |
dc.identifier.url | https://aapm.onlinelibrary.wiley.com/doi/full/10.1002/mp.13403 | - |
dc.subject.keyword | image guidance | - |
dc.subject.keyword | machine learning | - |
dc.subject.keyword | markerless tracking | - |
dc.subject.keyword | real-time image processing | - |
dc.subject.keyword | rotating gantry | - |
dc.subject.keyword | scanned carbon-ion beam | - |
dc.contributor.alternativeName | Koom, Woong Sub | - |
dc.contributor.affiliatedAuthor | 금웅섭 | - |
dc.citation.volume | 46 | - |
dc.citation.number | 4 | - |
dc.citation.startPage | 1561 | - |
dc.citation.endPage | 1574 | - |
dc.identifier.bibliographicCitation | MEDICAL PHYSICS, Vol.46(4) : 1561-1574, 2019 | - |
dc.identifier.rimsid | 62275 | - |
dc.type.rims | ART | - |
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