A simulation-based training system for surgical wound debridement.
Identifieur interne : 001851 ( PubMed/Corpus ); précédent : 001850; suivant : 001852A simulation-based training system for surgical wound debridement.
Auteurs : Jennifer Seevinck ; Mark W. Scerbo ; Lee A. Belfore ; Leonard J. Weireter ; Jessica R. Crouch ; Yuzhong Shen ; Frederick D. Mckenzie ; Hector M. Garcia ; Sylva Girtelschmid ; Emre Baydogan ; Elizabeth A. SchmidtSource :
- Studies in health technology and informatics [ 0926-9630 ] ; 2006.
English descriptors
- KwdEn :
- MESH :
- geographic : United States.
- education : Debridement.
- surgery : Wounds and Injuries.
- Computer Simulation, Education, Medical, Humans.
Abstract
A simulation-based training system for surgical wound debridement was developed and comprises a multimedia introduction, a surgical simulator (tutorial component), and an assessment component. The simulator includes two PCs, a haptic device, and mirrored display. Debridement is performed on a virtual leg model with a shallow laceration wound superimposed. Trainees are instructed to remove debris with forceps, scrub with a brush, and rinse with saline solution to maintain sterility. Research and development issues currently under investigation include tissue deformation models using mass-spring system and finite element methods; tissue cutting using a high-resolution volumetric mesh and dynamic topology; and accurate collision detection, cutting, and soft-body haptic rendering for two devices within the same haptic space.
PubMed: 16404106
Links to Exploration step
pubmed:16404106Le document en format XML
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<author><name sortKey="Shen, Yuzhong" sort="Shen, Yuzhong" uniqKey="Shen Y" first="Yuzhong" last="Shen">Yuzhong Shen</name>
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<author><name sortKey="Mckenzie, Frederick D" sort="Mckenzie, Frederick D" uniqKey="Mckenzie F" first="Frederick D" last="Mckenzie">Frederick D. Mckenzie</name>
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<author><name sortKey="Garcia, Hector M" sort="Garcia, Hector M" uniqKey="Garcia H" first="Hector M" last="Garcia">Hector M. Garcia</name>
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<author><name sortKey="Girtelschmid, Sylva" sort="Girtelschmid, Sylva" uniqKey="Girtelschmid S" first="Sylva" last="Girtelschmid">Sylva Girtelschmid</name>
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<author><name sortKey="Baydogan, Emre" sort="Baydogan, Emre" uniqKey="Baydogan E" first="Emre" last="Baydogan">Emre Baydogan</name>
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<series><title level="j">Studies in health technology and informatics</title>
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<front><div type="abstract" xml:lang="en">A simulation-based training system for surgical wound debridement was developed and comprises a multimedia introduction, a surgical simulator (tutorial component), and an assessment component. The simulator includes two PCs, a haptic device, and mirrored display. Debridement is performed on a virtual leg model with a shallow laceration wound superimposed. Trainees are instructed to remove debris with forceps, scrub with a brush, and rinse with saline solution to maintain sterility. Research and development issues currently under investigation include tissue deformation models using mass-spring system and finite element methods; tissue cutting using a high-resolution volumetric mesh and dynamic topology; and accurate collision detection, cutting, and soft-body haptic rendering for two devices within the same haptic space.</div>
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<Title>Studies in health technology and informatics</Title>
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<ArticleTitle>A simulation-based training system for surgical wound debridement.</ArticleTitle>
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<Abstract><AbstractText>A simulation-based training system for surgical wound debridement was developed and comprises a multimedia introduction, a surgical simulator (tutorial component), and an assessment component. The simulator includes two PCs, a haptic device, and mirrored display. Debridement is performed on a virtual leg model with a shallow laceration wound superimposed. Trainees are instructed to remove debris with forceps, scrub with a brush, and rinse with saline solution to maintain sterility. Research and development issues currently under investigation include tissue deformation models using mass-spring system and finite element methods; tissue cutting using a high-resolution volumetric mesh and dynamic topology; and accurate collision detection, cutting, and soft-body haptic rendering for two devices within the same haptic space.</AbstractText>
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<AuthorList CompleteYN="Y"><Author ValidYN="Y"><LastName>Seevinck</LastName>
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