Literature DB >> 7820402

Ultrasound quantitation of respiratory organ motion in the upper abdomen.

S C Davies1, A L Hill, R B Holmes, M Halliwell, P C Jackson.   

Abstract

Organ motion can cause artefacts in abdominal imaging particularly with magnetic resonance imaging (MRI), and may often limit the diagnostic quality of an image. If spatial resolution and image quality are to improve in MRI and other imaging techniques, a more detailed understanding of organ motion is required. Despite the importance of organ motion little quantitative information is available to date. This study was the continuation of work instigated to investigate and quantify respiratory movements of upper abdominal organs for a group of healthy volunteers in order to provide the design criteria for a motion test object for use in MRI. A previous phase of the project allowed construction of a test object but refinements were needed to represent respiratory motion more closely as a consequence of the data presented in this paper. Improvements in the scanning technique and the recording procedure have revealed that, contrary to our initial findings, motion of the diaphragm and liver is predominantly in the superior-inferior (SI) direction with an average displacement (+/- SD) (quiet respiration) of 12 +/- 7 mm (range 7-28 mm) and 10 +/- 8 mm (range 5-17 mm), respectively. For some volunteers, motion of the kidneys can be complex, especially during deep inspiration. New data have been provided by this phase of the motion study on the displacement, velocity and acceleration of abdominal organs as a function of time. These data show that MRI motion artefact reduction techniques which assume that either organ displacement, velocity or acceleration are constant are only applicable during certain phases of the respiratory cycle.

Mesh:

Year:  1994        PMID: 7820402     DOI: 10.1259/0007-1285-67-803-1096

Source DB:  PubMed          Journal:  Br J Radiol        ISSN: 0007-1285            Impact factor:   3.039


  46 in total

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4.  Evaluation of respiratory liver and kidney movements for MRI navigator gating.

Authors:  Ruitian Song; Aaryani Tipirneni; Perry Johnson; Ralf B Loeffler; Claudia M Hillenbrand
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5.  CAPTURE: Consistently Acquired Projections for Tuned and Robust Estimation: A Self-Navigated Respiratory Motion Correction Approach.

Authors:  Cihat Eldeniz; Tyler Fraum; Amber Salter; Yasheng Chen; H Michael Gach; Parag J Parikh; Kathryn J Fowler; Hongyu An
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6.  Correlation between respiration-induced thoracic expansion and a shift of central structures.

Authors:  M Weckesser; L Stegger; K U Juergens; D Wormanns; W Heindel; O Schober
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7.  Estimating nonrigid motion from inconsistent intensity with robust shape features.

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Journal:  Med Phys       Date:  2013-12       Impact factor: 4.071

8.  A heuristic model of stone comminution in shock wave lithotripsy.

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9.  Lung tumor tracking in fluoroscopic video based on optical flow.

Authors:  Qianyi Xu; Russell J Hamilton; Robert A Schowengerdt; Brian Alexander; Steve B Jiang
Journal:  Med Phys       Date:  2008-12       Impact factor: 4.071

10.  Determination of reproducibility of end-exhaled breath-holding in stereotactic body radiation therapy.

Authors:  Motoharu Sasaki; Hitoshi Ikushima; Kanako Sakuragawa; Michihiro Yokoishi; Akira Tsuzuki; Wataru Sugimoto
Journal:  J Radiat Res       Date:  2020-11-16       Impact factor: 2.724

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