navigation software Search Results


90
Axion BioSystems axis navigator software
Axis Navigator Software, supplied by Axion BioSystems, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/navigation+software/axis+navigator+software/bio_rxiv__2025__04__01__646648-170-47-50
Average 90 stars, based on 1 article reviews
axis navigator software - by Bioz Stars, 2026-09
90/100 stars
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90
Brainlab AG navigation software iplan 3.0.5
CAD/CAM of registration splint. Steps 1 to 7 are displayed as described in the text in detail, beginning with the intraoral scan of the upper and lower dentition ( A ). The second step of semi-automatic matching through the software IPS Case Designer is displayed ( B ). Next, an intermediate splint is generated following the mandible-first protocol with a high degree of mandibular autorotation of >10° ( C ). Modification of the splint design through Boolean subtraction is depicted using the freeware Autodesk Meshmixer ( D ). Final splint design ( E ) can be manufactured via 3D-printing using transparent surgical guide resin in orange color ( F ). For surgical <t>navigation,</t> the STL of the registration splint is imported into the Brainlab software iPlan 3.0.5 along with the DICOM data, and four virtual registration landmarks (red) can be positioned at the bottom of the indentations of the vestibular surface of the splint (yellow), perfectly aligning with the upper dentition ( G ).
Navigation Software Iplan 3.0.5, supplied by Brainlab AG, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/navigation+software/navigation+software+iplan+2+6+cranial/pmc11396243-116-13-17
Average 90 stars, based on 1 article reviews
navigation software iplan 3.0.5 - by Bioz Stars, 2026-09
90/100 stars
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90
Canon inc mx navigator software
CAD/CAM of registration splint. Steps 1 to 7 are displayed as described in the text in detail, beginning with the intraoral scan of the upper and lower dentition ( A ). The second step of semi-automatic matching through the software IPS Case Designer is displayed ( B ). Next, an intermediate splint is generated following the mandible-first protocol with a high degree of mandibular autorotation of >10° ( C ). Modification of the splint design through Boolean subtraction is depicted using the freeware Autodesk Meshmixer ( D ). Final splint design ( E ) can be manufactured via 3D-printing using transparent surgical guide resin in orange color ( F ). For surgical <t>navigation,</t> the STL of the registration splint is imported into the Brainlab software iPlan 3.0.5 along with the DICOM data, and four virtual registration landmarks (red) can be positioned at the bottom of the indentations of the vestibular surface of the splint (yellow), perfectly aligning with the upper dentition ( G ).
Mx Navigator Software, supplied by Canon inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/navigation+software/mx+navigator+software/pmc06176578-459-7-10
Average 90 stars, based on 1 article reviews
mx navigator software - by Bioz Stars, 2026-09
90/100 stars
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90
MeVIS Research GmbH navigation software
CAD/CAM of registration splint. Steps 1 to 7 are displayed as described in the text in detail, beginning with the intraoral scan of the upper and lower dentition ( A ). The second step of semi-automatic matching through the software IPS Case Designer is displayed ( B ). Next, an intermediate splint is generated following the mandible-first protocol with a high degree of mandibular autorotation of >10° ( C ). Modification of the splint design through Boolean subtraction is depicted using the freeware Autodesk Meshmixer ( D ). Final splint design ( E ) can be manufactured via 3D-printing using transparent surgical guide resin in orange color ( F ). For surgical <t>navigation,</t> the STL of the registration splint is imported into the Brainlab software iPlan 3.0.5 along with the DICOM data, and four virtual registration landmarks (red) can be positioned at the bottom of the indentations of the vestibular surface of the splint (yellow), perfectly aligning with the upper dentition ( G ).
Navigation Software, supplied by MeVIS Research GmbH, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/navigation+software/navigation+software/pm34414495-47-1-6
Average 90 stars, based on 1 article reviews
navigation software - by Bioz Stars, 2026-09
90/100 stars
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90
Siemens AG real-time workstation interactive front end
CAD/CAM of registration splint. Steps 1 to 7 are displayed as described in the text in detail, beginning with the intraoral scan of the upper and lower dentition ( A ). The second step of semi-automatic matching through the software IPS Case Designer is displayed ( B ). Next, an intermediate splint is generated following the mandible-first protocol with a high degree of mandibular autorotation of >10° ( C ). Modification of the splint design through Boolean subtraction is depicted using the freeware Autodesk Meshmixer ( D ). Final splint design ( E ) can be manufactured via 3D-printing using transparent surgical guide resin in orange color ( F ). For surgical <t>navigation,</t> the STL of the registration splint is imported into the Brainlab software iPlan 3.0.5 along with the DICOM data, and four virtual registration landmarks (red) can be positioned at the bottom of the indentations of the vestibular surface of the splint (yellow), perfectly aligning with the upper dentition ( G ).
Real Time Workstation Interactive Front End, supplied by Siemens AG, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/navigation+software/interactive+front+end+navigation+software/pmc03292659-116-9-16
Average 90 stars, based on 1 article reviews
real-time workstation interactive front end - by Bioz Stars, 2026-09
90/100 stars
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90
Canon inc software mp navigator ex
CAD/CAM of registration splint. Steps 1 to 7 are displayed as described in the text in detail, beginning with the intraoral scan of the upper and lower dentition ( A ). The second step of semi-automatic matching through the software IPS Case Designer is displayed ( B ). Next, an intermediate splint is generated following the mandible-first protocol with a high degree of mandibular autorotation of >10° ( C ). Modification of the splint design through Boolean subtraction is depicted using the freeware Autodesk Meshmixer ( D ). Final splint design ( E ) can be manufactured via 3D-printing using transparent surgical guide resin in orange color ( F ). For surgical <t>navigation,</t> the STL of the registration splint is imported into the Brainlab software iPlan 3.0.5 along with the DICOM data, and four virtual registration landmarks (red) can be positioned at the bottom of the indentations of the vestibular surface of the splint (yellow), perfectly aligning with the upper dentition ( G ).
Software Mp Navigator Ex, supplied by Canon inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/navigation+software/mp+navigator+ex+software/pmc05334214-115-20-13
Average 90 stars, based on 1 article reviews
software mp navigator ex - by Bioz Stars, 2026-09
90/100 stars
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90
Axion BioSystems axis navigator axis metric plotting software
CAD/CAM of registration splint. Steps 1 to 7 are displayed as described in the text in detail, beginning with the intraoral scan of the upper and lower dentition ( A ). The second step of semi-automatic matching through the software IPS Case Designer is displayed ( B ). Next, an intermediate splint is generated following the mandible-first protocol with a high degree of mandibular autorotation of >10° ( C ). Modification of the splint design through Boolean subtraction is depicted using the freeware Autodesk Meshmixer ( D ). Final splint design ( E ) can be manufactured via 3D-printing using transparent surgical guide resin in orange color ( F ). For surgical <t>navigation,</t> the STL of the registration splint is imported into the Brainlab software iPlan 3.0.5 along with the DICOM data, and four virtual registration landmarks (red) can be positioned at the bottom of the indentations of the vestibular surface of the splint (yellow), perfectly aligning with the upper dentition ( G ).
Axis Navigator Axis Metric Plotting Software, supplied by Axion BioSystems, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/navigation+software/axis+navigator+axis+metric+plotting+software/bio_rxiv__2020__06__01__127613-154-8-15
Average 90 stars, based on 1 article reviews
axis navigator axis metric plotting software - by Bioz Stars, 2026-09
90/100 stars
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90
KEYENCE keyence lj-navigator software
CAD/CAM of registration splint. Steps 1 to 7 are displayed as described in the text in detail, beginning with the intraoral scan of the upper and lower dentition ( A ). The second step of semi-automatic matching through the software IPS Case Designer is displayed ( B ). Next, an intermediate splint is generated following the mandible-first protocol with a high degree of mandibular autorotation of >10° ( C ). Modification of the splint design through Boolean subtraction is depicted using the freeware Autodesk Meshmixer ( D ). Final splint design ( E ) can be manufactured via 3D-printing using transparent surgical guide resin in orange color ( F ). For surgical <t>navigation,</t> the STL of the registration splint is imported into the Brainlab software iPlan 3.0.5 along with the DICOM data, and four virtual registration landmarks (red) can be positioned at the bottom of the indentations of the vestibular surface of the splint (yellow), perfectly aligning with the upper dentition ( G ).
Keyence Lj Navigator Software, supplied by KEYENCE, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/navigation+software/keyence+lj+navigator+software/pm32407683-65-39-44
Average 90 stars, based on 1 article reviews
keyence lj-navigator software - by Bioz Stars, 2026-09
90/100 stars
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90
Maptech Inc terrain navigator
CAD/CAM of registration splint. Steps 1 to 7 are displayed as described in the text in detail, beginning with the intraoral scan of the upper and lower dentition ( A ). The second step of semi-automatic matching through the software IPS Case Designer is displayed ( B ). Next, an intermediate splint is generated following the mandible-first protocol with a high degree of mandibular autorotation of >10° ( C ). Modification of the splint design through Boolean subtraction is depicted using the freeware Autodesk Meshmixer ( D ). Final splint design ( E ) can be manufactured via 3D-printing using transparent surgical guide resin in orange color ( F ). For surgical <t>navigation,</t> the STL of the registration splint is imported into the Brainlab software iPlan 3.0.5 along with the DICOM data, and four virtual registration landmarks (red) can be positioned at the bottom of the indentations of the vestibular surface of the splint (yellow), perfectly aligning with the upper dentition ( G ).
Terrain Navigator, supplied by Maptech Inc, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/navigation+software/terrain+navigator+software/pmc02946734-45-22-25
Average 90 stars, based on 1 article reviews
terrain navigator - by Bioz Stars, 2026-09
90/100 stars
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90
Trimble Navigation trimble business center 2.5 software
CAD/CAM of registration splint. Steps 1 to 7 are displayed as described in the text in detail, beginning with the intraoral scan of the upper and lower dentition ( A ). The second step of semi-automatic matching through the software IPS Case Designer is displayed ( B ). Next, an intermediate splint is generated following the mandible-first protocol with a high degree of mandibular autorotation of >10° ( C ). Modification of the splint design through Boolean subtraction is depicted using the freeware Autodesk Meshmixer ( D ). Final splint design ( E ) can be manufactured via 3D-printing using transparent surgical guide resin in orange color ( F ). For surgical <t>navigation,</t> the STL of the registration splint is imported into the Brainlab software iPlan 3.0.5 along with the DICOM data, and four virtual registration landmarks (red) can be positioned at the bottom of the indentations of the vestibular surface of the splint (yellow), perfectly aligning with the upper dentition ( G ).
Trimble Business Center 2.5 Software, supplied by Trimble Navigation, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/navigation+software/trimble+business+center+2+5+software/pmc07442328-121-61-69
Average 90 stars, based on 1 article reviews
trimble business center 2.5 software - by Bioz Stars, 2026-09
90/100 stars
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90
Axion BioSystems navigator 2.0 software
CAD/CAM of registration splint. Steps 1 to 7 are displayed as described in the text in detail, beginning with the intraoral scan of the upper and lower dentition ( A ). The second step of semi-automatic matching through the software IPS Case Designer is displayed ( B ). Next, an intermediate splint is generated following the mandible-first protocol with a high degree of mandibular autorotation of >10° ( C ). Modification of the splint design through Boolean subtraction is depicted using the freeware Autodesk Meshmixer ( D ). Final splint design ( E ) can be manufactured via 3D-printing using transparent surgical guide resin in orange color ( F ). For surgical <t>navigation,</t> the STL of the registration splint is imported into the Brainlab software iPlan 3.0.5 along with the DICOM data, and four virtual registration landmarks (red) can be positioned at the bottom of the indentations of the vestibular surface of the splint (yellow), perfectly aligning with the upper dentition ( G ).
Navigator 2.0 Software, supplied by Axion BioSystems, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/navigation+software/navigator+2+0+software/pm39617169-78-28-31
Average 90 stars, based on 1 article reviews
navigator 2.0 software - by Bioz Stars, 2026-09
90/100 stars
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90
Autonavi Software Co Ltd autonavi navigation hd
CAD/CAM of registration splint. Steps 1 to 7 are displayed as described in the text in detail, beginning with the intraoral scan of the upper and lower dentition ( A ). The second step of semi-automatic matching through the software IPS Case Designer is displayed ( B ). Next, an intermediate splint is generated following the mandible-first protocol with a high degree of mandibular autorotation of >10° ( C ). Modification of the splint design through Boolean subtraction is depicted using the freeware Autodesk Meshmixer ( D ). Final splint design ( E ) can be manufactured via 3D-printing using transparent surgical guide resin in orange color ( F ). For surgical <t>navigation,</t> the STL of the registration splint is imported into the Brainlab software iPlan 3.0.5 along with the DICOM data, and four virtual registration landmarks (red) can be positioned at the bottom of the indentations of the vestibular surface of the splint (yellow), perfectly aligning with the upper dentition ( G ).
Autonavi Navigation Hd, supplied by Autonavi Software Co Ltd, used in various techniques. Bioz Stars score: 90/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/navigation+software/autonavi+navigation+data/10__1016_slash_j__fmre__2024__01__006-850-0-1
Average 90 stars, based on 1 article reviews
autonavi navigation hd - by Bioz Stars, 2026-09
90/100 stars
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Image Search Results


CAD/CAM of registration splint. Steps 1 to 7 are displayed as described in the text in detail, beginning with the intraoral scan of the upper and lower dentition ( A ). The second step of semi-automatic matching through the software IPS Case Designer is displayed ( B ). Next, an intermediate splint is generated following the mandible-first protocol with a high degree of mandibular autorotation of >10° ( C ). Modification of the splint design through Boolean subtraction is depicted using the freeware Autodesk Meshmixer ( D ). Final splint design ( E ) can be manufactured via 3D-printing using transparent surgical guide resin in orange color ( F ). For surgical navigation, the STL of the registration splint is imported into the Brainlab software iPlan 3.0.5 along with the DICOM data, and four virtual registration landmarks (red) can be positioned at the bottom of the indentations of the vestibular surface of the splint (yellow), perfectly aligning with the upper dentition ( G ).

Journal: Journal of Clinical Medicine

Article Title: Intraoral Scanning Enables Virtual-Splint-Based Non-Invasive Registration Protocol for Maxillofacial Surgical Navigation

doi: 10.3390/jcm13175196

Figure Lengend Snippet: CAD/CAM of registration splint. Steps 1 to 7 are displayed as described in the text in detail, beginning with the intraoral scan of the upper and lower dentition ( A ). The second step of semi-automatic matching through the software IPS Case Designer is displayed ( B ). Next, an intermediate splint is generated following the mandible-first protocol with a high degree of mandibular autorotation of >10° ( C ). Modification of the splint design through Boolean subtraction is depicted using the freeware Autodesk Meshmixer ( D ). Final splint design ( E ) can be manufactured via 3D-printing using transparent surgical guide resin in orange color ( F ). For surgical navigation, the STL of the registration splint is imported into the Brainlab software iPlan 3.0.5 along with the DICOM data, and four virtual registration landmarks (red) can be positioned at the bottom of the indentations of the vestibular surface of the splint (yellow), perfectly aligning with the upper dentition ( G ).

Article Snippet: The obtained data were processed for experimental navigation on a 3D-printed skull using navigation software (iPlan 3.0.5, Brainlab AG, Feldkirchen, Germany).

Techniques: Software, Generated, Modification

Target registration error verification in three steps. ( A ) Firstly, one of four registration methods was chosen (M1: bone-anchored screws, M2: dental vacuum-splint with screws, M3: dental CAD/CAM splint, M4: dental landmarks). ( B ) For each run-through, the registration process for one method (here, the method M3 is shown as an example) was performed. The setup is illustrated on the left, featuring the navigation system’s infrared camera and monitor in the background. The detailed view in the middle image shows the 3D-printed skull with the skull reference array attached to the temporal bone and the upper dentition covered by the CAD/CAM registration splint. As the observer points to the four indentations on the registration splint, the system tracks the registration. Successful registration is confirmed by checking alignment at the monitor, either by pointing to the registration landmarks or anatomical landmarks. ( C ) Following successful registration, the mandible was secured with wires to the MMF screws in habitual occlusion. Using the navigation probe, the observer pointed perpendicularly to the camera view axis at each gutta-percha point. The system then displayed the estimated distance between the probe tip and the gutta-percha point, defined as the target registration error (TRE) value. TRE values were recorded twice for each of the 64 guttapercha points (32 green targets in the midface and 32 blue targets in the mandible), with the process repeated three times for each registration method—twice by the first observer and once by a second observer.

Journal: Journal of Clinical Medicine

Article Title: Intraoral Scanning Enables Virtual-Splint-Based Non-Invasive Registration Protocol for Maxillofacial Surgical Navigation

doi: 10.3390/jcm13175196

Figure Lengend Snippet: Target registration error verification in three steps. ( A ) Firstly, one of four registration methods was chosen (M1: bone-anchored screws, M2: dental vacuum-splint with screws, M3: dental CAD/CAM splint, M4: dental landmarks). ( B ) For each run-through, the registration process for one method (here, the method M3 is shown as an example) was performed. The setup is illustrated on the left, featuring the navigation system’s infrared camera and monitor in the background. The detailed view in the middle image shows the 3D-printed skull with the skull reference array attached to the temporal bone and the upper dentition covered by the CAD/CAM registration splint. As the observer points to the four indentations on the registration splint, the system tracks the registration. Successful registration is confirmed by checking alignment at the monitor, either by pointing to the registration landmarks or anatomical landmarks. ( C ) Following successful registration, the mandible was secured with wires to the MMF screws in habitual occlusion. Using the navigation probe, the observer pointed perpendicularly to the camera view axis at each gutta-percha point. The system then displayed the estimated distance between the probe tip and the gutta-percha point, defined as the target registration error (TRE) value. TRE values were recorded twice for each of the 64 guttapercha points (32 green targets in the midface and 32 blue targets in the mandible), with the process repeated three times for each registration method—twice by the first observer and once by a second observer.

Article Snippet: The obtained data were processed for experimental navigation on a 3D-printed skull using navigation software (iPlan 3.0.5, Brainlab AG, Feldkirchen, Germany).

Techniques:

Case 1—Secondary repair of misplaced zygoma and orbital floor reconstruction. ( A ) Comparison of pre- and postoperative face scans shows that the asymmetry of the eyelids due to the hypoglobus and enophthalmos of the atrophic eyeball could be corrected. ( B ) Laser-sintered, color-coded patient-specific implants with corresponding drilling and cutting guides. ( C ) Although the guides could not be correctly positioned due to pseudarthrosis, the reconstruction results regarding the repositioned zygoma and the orbital implant placements were successful with accurate positioning due to intraoperative surgical navigation, which was proved by post-surgical analysis via the matching of the postoperative CBCT scan to the planning data shown in multi-planar view.

Journal: Journal of Clinical Medicine

Article Title: Intraoral Scanning Enables Virtual-Splint-Based Non-Invasive Registration Protocol for Maxillofacial Surgical Navigation

doi: 10.3390/jcm13175196

Figure Lengend Snippet: Case 1—Secondary repair of misplaced zygoma and orbital floor reconstruction. ( A ) Comparison of pre- and postoperative face scans shows that the asymmetry of the eyelids due to the hypoglobus and enophthalmos of the atrophic eyeball could be corrected. ( B ) Laser-sintered, color-coded patient-specific implants with corresponding drilling and cutting guides. ( C ) Although the guides could not be correctly positioned due to pseudarthrosis, the reconstruction results regarding the repositioned zygoma and the orbital implant placements were successful with accurate positioning due to intraoperative surgical navigation, which was proved by post-surgical analysis via the matching of the postoperative CBCT scan to the planning data shown in multi-planar view.

Article Snippet: The obtained data were processed for experimental navigation on a 3D-printed skull using navigation software (iPlan 3.0.5, Brainlab AG, Feldkirchen, Germany).

Techniques: Comparison

Case 1—Secondary repair of misplaced zygoma and orbital floor reconstruction. Facilitated by pointer-based surgical navigation utilizing the non-invasive registration protocol involving the CAD/CAM registration splint ( A ), an intraoperative assessment of zygoma repositioning was possible ( B ) before proceeding with the next step of orbital implant placement for orbital floor reconstruction, which could again be checked for accurate positioning via surgical navigation ( C ). Note the fixation of the skull reference array on the contralateral side of the affected zygoma visible in ( A ).

Journal: Journal of Clinical Medicine

Article Title: Intraoral Scanning Enables Virtual-Splint-Based Non-Invasive Registration Protocol for Maxillofacial Surgical Navigation

doi: 10.3390/jcm13175196

Figure Lengend Snippet: Case 1—Secondary repair of misplaced zygoma and orbital floor reconstruction. Facilitated by pointer-based surgical navigation utilizing the non-invasive registration protocol involving the CAD/CAM registration splint ( A ), an intraoperative assessment of zygoma repositioning was possible ( B ) before proceeding with the next step of orbital implant placement for orbital floor reconstruction, which could again be checked for accurate positioning via surgical navigation ( C ). Note the fixation of the skull reference array on the contralateral side of the affected zygoma visible in ( A ).

Article Snippet: The obtained data were processed for experimental navigation on a 3D-printed skull using navigation software (iPlan 3.0.5, Brainlab AG, Feldkirchen, Germany).

Techniques:

Case 2—Mandibular Recontouring in a case of benign central osteoma. Utilizing the TRIOS 3 from 3Shape ( A ) an intraoralscan was taken ( B ). This could be matched to the DICOM data along with virtual splint design, all made possible through the orthognathic planning software IPS Case designer from KLS Martin (not depicted, please refer to ). The virtual splint (yellow) can be loaded into the navigation software iPlan from Brainlab ( C ) to mark the registration landmarks in the splint‘s indentation (red). At the beginning of the surgery, the splint is put on to the upper dentition and registration landmarks are pointed at ( D ) until the system accepts the registration. After successful registration, results can be verified by checking the monitor ( E ) while pointing at anatomical landmarks ( F ). During the surgery, closing the mandible in habitual occlusion allowed for the use of navigation in the mandible ( G ), enabling the intraoperative verification of whether the virtually planned outcome had been achieved after recontouring ( H ).

Journal: Journal of Clinical Medicine

Article Title: Intraoral Scanning Enables Virtual-Splint-Based Non-Invasive Registration Protocol for Maxillofacial Surgical Navigation

doi: 10.3390/jcm13175196

Figure Lengend Snippet: Case 2—Mandibular Recontouring in a case of benign central osteoma. Utilizing the TRIOS 3 from 3Shape ( A ) an intraoralscan was taken ( B ). This could be matched to the DICOM data along with virtual splint design, all made possible through the orthognathic planning software IPS Case designer from KLS Martin (not depicted, please refer to ). The virtual splint (yellow) can be loaded into the navigation software iPlan from Brainlab ( C ) to mark the registration landmarks in the splint‘s indentation (red). At the beginning of the surgery, the splint is put on to the upper dentition and registration landmarks are pointed at ( D ) until the system accepts the registration. After successful registration, results can be verified by checking the monitor ( E ) while pointing at anatomical landmarks ( F ). During the surgery, closing the mandible in habitual occlusion allowed for the use of navigation in the mandible ( G ), enabling the intraoperative verification of whether the virtually planned outcome had been achieved after recontouring ( H ).

Article Snippet: The obtained data were processed for experimental navigation on a 3D-printed skull using navigation software (iPlan 3.0.5, Brainlab AG, Feldkirchen, Germany).

Techniques: Software