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Simpleware Ltd simpleware scanip data
Simpleware Scanip Data, supplied by Simpleware Ltd, used in various techniques. Bioz Stars score: 86/100, based on 1 PubMed citations. ZERO BIAS - scores, article reviews, protocol conditions and more
https://www.bioz.com/product/image+processing+software+simpleware+scanip/scanip+simpleware/pm41565910-252-20-20
Average 86 stars, based on 1 article reviews
simpleware scanip data - by Bioz Stars, 2026-09
86/100 stars

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Related Articles

Polymer:

Article Title: Scalable DICOM 3D-printed phantoms mimicking marine mammal bone and soft tissue.
Article Snippet: AR TIC LE IN PR ES S ARTICLE IN PRESS 21/2 6 hydrogels with additive conductors (carbon nanotubes, polyaniline, etc.) and ionic polymer-metal composites (IPMCs) are novel candidates for phantom electroactive platforms36–40. .. Inspired by Hunt et al.’s incorporation of coiled polymer actuators into a biomimetic harbor porpoise pectoral flipper, similar methodologies using Simpleware ScanIP data may be applied to further electroactive polymer biomimicry41. ..

Article Title: Scalable DICOM 3D-printed phantoms mimicking marine mammal bone and soft tissue
Article Snippet: Electroactive polymers (EAPs) such as polyvinyl chloride (PVC) gels, and hydrogels with additive conductors (carbon nanotubes, polyaniline, etc.) and ionic polymer-metal composites (IPMCs) are novel candidates for phantom electroactive platforms – . .. Inspired by Hunt et al.’s incorporation of coiled polymer actuators into a biomimetic harbor porpoise pectoral flipper, similar methodologies using Simpleware ScanIP data may be applied to further electroactive polymer biomimicry . ..

Software:

Article Title: Patient-Specific Lattice Implants for Segmental Femoral and Tibial Reconstruction (Part 2): CT-Based Personalization, Design Workflows and Validation-A Review.
Article Snippet: .. Year, Ref [n] Lattice UC (mm; X × Y × Z) T (mm) PS (μm) RD/ Porosity (%) SA/VR (mm−1) Gradient (Type) Gradient Driver Design Objective(s) CAD Software 2019, [69] Honeycomb scaffold (square/triangular pores) Scaffold block: 32 × 25.5 × 13.5 0.2032 1250 (square/triangular pores) ≈68–83 (designed layer blocks); ≈82 (femur middiaphysis scaffold) NR None (uniform porearchitecture per pattern) N/A Design ABS FDM scaffolds with controlled pore size and porosity to achieve cortical bone-like stiffness and strength in a femur mid-diaphysis segment; study influence of FDM process parameters on structural modulus and compressive strength CATIA and Insight (Stratasys Fortus 360mc) 2019, [2] Patient-specific truss-type titanium cage (additively manufactured) Anatomical cage spanning femoral segmental defect; truss microarchitecture not specified NR NR NR (highly porous cage intended for large-volume bone graft packing) NR None (no explicit porosity or stiffness gradient; geometry matched to defect) N/A Custom 3D-printed titanium cage used with the Masquelet technique to reconstruct massive segmental femoral defects, restore alignment/length, provide immediate mechanical stability, and create a contained space for large volumes of bone graft within an induced membrane Manufacturerspecific tools (exact CAD software NR) 2020, [9] TPMS gyroid (GP); hybrid: gyroid + cortical-like outer shell (GPRC) 0.81 (equivalent unit cell) 0.18–0.23 (outer shell); internal NR 430 (freemoving sphere) GP: 60; GPRC: 43 NR None (GP); morphology hybrid (shell and lattice) (GPRC) Rule-based (fixed shell; not CT-guided gradient) Fit 3 mm rat femoral defect; target pore for ingrowth (430 μm); add shell to boost handling/strength (HA) ScanIP (Simpleware, UK) 2020, [3] Grid mesh + solid-shell lattice (patient-specific) 10 × 10 with 1.5 mm thickness: surface mesh 1.5 NR NR NR None Rule-based (rounded angle mesh; patient-specific shell fit) Lightweight, reduce stress shielding, promote osseointegration, protect graft, minimize stress concentrations Creo Parametric v5.0 (PTC, Needham, MA, USA) 2021, [14] Strut (simple cubic infill; hollow REVs) NR (REV-based) ≥0.5(variable) NR Variable (derived; NR exact) NR RD/wall-thicknessgradient CT-guided HU-E E-match; SS-reduce; osseointegrationfriendly Mimics version 17 2021, [6] TPMS-gyroid(sheet) 3 × 3 × 3; 6 × 6 × 6 0.30; 0.60 739; 1076 CAD 70; μCT 62.8–70.8 NR None - Bone ingrowth; interface stability; pore-size effect; BMP2 carrier NR https://doi.org/10.3390/biomimetics11020145 Table 2. ..

Blocking Assay:

Article Title: Patient-Specific Lattice Implants for Segmental Femoral and Tibial Reconstruction (Part 2): CT-Based Personalization, Design Workflows and Validation-A Review.
Article Snippet: .. Year, Ref [n] Lattice UC (mm; X × Y × Z) T (mm) PS (μm) RD/ Porosity (%) SA/VR (mm−1) Gradient (Type) Gradient Driver Design Objective(s) CAD Software 2019, [69] Honeycomb scaffold (square/triangular pores) Scaffold block: 32 × 25.5 × 13.5 0.2032 1250 (square/triangular pores) ≈68–83 (designed layer blocks); ≈82 (femur middiaphysis scaffold) NR None (uniform porearchitecture per pattern) N/A Design ABS FDM scaffolds with controlled pore size and porosity to achieve cortical bone-like stiffness and strength in a femur mid-diaphysis segment; study influence of FDM process parameters on structural modulus and compressive strength CATIA and Insight (Stratasys Fortus 360mc) 2019, [2] Patient-specific truss-type titanium cage (additively manufactured) Anatomical cage spanning femoral segmental defect; truss microarchitecture not specified NR NR NR (highly porous cage intended for large-volume bone graft packing) NR None (no explicit porosity or stiffness gradient; geometry matched to defect) N/A Custom 3D-printed titanium cage used with the Masquelet technique to reconstruct massive segmental femoral defects, restore alignment/length, provide immediate mechanical stability, and create a contained space for large volumes of bone graft within an induced membrane Manufacturerspecific tools (exact CAD software NR) 2020, [9] TPMS gyroid (GP); hybrid: gyroid + cortical-like outer shell (GPRC) 0.81 (equivalent unit cell) 0.18–0.23 (outer shell); internal NR 430 (freemoving sphere) GP: 60; GPRC: 43 NR None (GP); morphology hybrid (shell and lattice) (GPRC) Rule-based (fixed shell; not CT-guided gradient) Fit 3 mm rat femoral defect; target pore for ingrowth (430 μm); add shell to boost handling/strength (HA) ScanIP (Simpleware, UK) 2020, [3] Grid mesh + solid-shell lattice (patient-specific) 10 × 10 with 1.5 mm thickness: surface mesh 1.5 NR NR NR None Rule-based (rounded angle mesh; patient-specific shell fit) Lightweight, reduce stress shielding, promote osseointegration, protect graft, minimize stress concentrations Creo Parametric v5.0 (PTC, Needham, MA, USA) 2021, [14] Strut (simple cubic infill; hollow REVs) NR (REV-based) ≥0.5(variable) NR Variable (derived; NR exact) NR RD/wall-thicknessgradient CT-guided HU-E E-match; SS-reduce; osseointegrationfriendly Mimics version 17 2021, [6] TPMS-gyroid(sheet) 3 × 3 × 3; 6 × 6 × 6 0.30; 0.60 739; 1076 CAD 70; μCT 62.8–70.8 NR None - Bone ingrowth; interface stability; pore-size effect; BMP2 carrier NR https://doi.org/10.3390/biomimetics11020145 Table 2. ..

Pore Size:

Article Title: Patient-Specific Lattice Implants for Segmental Femoral and Tibial Reconstruction (Part 2): CT-Based Personalization, Design Workflows and Validation-A Review.
Article Snippet: .. Year, Ref [n] Lattice UC (mm; X × Y × Z) T (mm) PS (μm) RD/ Porosity (%) SA/VR (mm−1) Gradient (Type) Gradient Driver Design Objective(s) CAD Software 2019, [69] Honeycomb scaffold (square/triangular pores) Scaffold block: 32 × 25.5 × 13.5 0.2032 1250 (square/triangular pores) ≈68–83 (designed layer blocks); ≈82 (femur middiaphysis scaffold) NR None (uniform porearchitecture per pattern) N/A Design ABS FDM scaffolds with controlled pore size and porosity to achieve cortical bone-like stiffness and strength in a femur mid-diaphysis segment; study influence of FDM process parameters on structural modulus and compressive strength CATIA and Insight (Stratasys Fortus 360mc) 2019, [2] Patient-specific truss-type titanium cage (additively manufactured) Anatomical cage spanning femoral segmental defect; truss microarchitecture not specified NR NR NR (highly porous cage intended for large-volume bone graft packing) NR None (no explicit porosity or stiffness gradient; geometry matched to defect) N/A Custom 3D-printed titanium cage used with the Masquelet technique to reconstruct massive segmental femoral defects, restore alignment/length, provide immediate mechanical stability, and create a contained space for large volumes of bone graft within an induced membrane Manufacturerspecific tools (exact CAD software NR) 2020, [9] TPMS gyroid (GP); hybrid: gyroid + cortical-like outer shell (GPRC) 0.81 (equivalent unit cell) 0.18–0.23 (outer shell); internal NR 430 (freemoving sphere) GP: 60; GPRC: 43 NR None (GP); morphology hybrid (shell and lattice) (GPRC) Rule-based (fixed shell; not CT-guided gradient) Fit 3 mm rat femoral defect; target pore for ingrowth (430 μm); add shell to boost handling/strength (HA) ScanIP (Simpleware, UK) 2020, [3] Grid mesh + solid-shell lattice (patient-specific) 10 × 10 with 1.5 mm thickness: surface mesh 1.5 NR NR NR None Rule-based (rounded angle mesh; patient-specific shell fit) Lightweight, reduce stress shielding, promote osseointegration, protect graft, minimize stress concentrations Creo Parametric v5.0 (PTC, Needham, MA, USA) 2021, [14] Strut (simple cubic infill; hollow REVs) NR (REV-based) ≥0.5(variable) NR Variable (derived; NR exact) NR RD/wall-thicknessgradient CT-guided HU-E E-match; SS-reduce; osseointegrationfriendly Mimics version 17 2021, [6] TPMS-gyroid(sheet) 3 × 3 × 3; 6 × 6 × 6 0.30; 0.60 739; 1076 CAD 70; μCT 62.8–70.8 NR None - Bone ingrowth; interface stability; pore-size effect; BMP2 carrier NR https://doi.org/10.3390/biomimetics11020145 Table 2. ..

Membrane:

Article Title: Patient-Specific Lattice Implants for Segmental Femoral and Tibial Reconstruction (Part 2): CT-Based Personalization, Design Workflows and Validation-A Review.
Article Snippet: .. Year, Ref [n] Lattice UC (mm; X × Y × Z) T (mm) PS (μm) RD/ Porosity (%) SA/VR (mm−1) Gradient (Type) Gradient Driver Design Objective(s) CAD Software 2019, [69] Honeycomb scaffold (square/triangular pores) Scaffold block: 32 × 25.5 × 13.5 0.2032 1250 (square/triangular pores) ≈68–83 (designed layer blocks); ≈82 (femur middiaphysis scaffold) NR None (uniform porearchitecture per pattern) N/A Design ABS FDM scaffolds with controlled pore size and porosity to achieve cortical bone-like stiffness and strength in a femur mid-diaphysis segment; study influence of FDM process parameters on structural modulus and compressive strength CATIA and Insight (Stratasys Fortus 360mc) 2019, [2] Patient-specific truss-type titanium cage (additively manufactured) Anatomical cage spanning femoral segmental defect; truss microarchitecture not specified NR NR NR (highly porous cage intended for large-volume bone graft packing) NR None (no explicit porosity or stiffness gradient; geometry matched to defect) N/A Custom 3D-printed titanium cage used with the Masquelet technique to reconstruct massive segmental femoral defects, restore alignment/length, provide immediate mechanical stability, and create a contained space for large volumes of bone graft within an induced membrane Manufacturerspecific tools (exact CAD software NR) 2020, [9] TPMS gyroid (GP); hybrid: gyroid + cortical-like outer shell (GPRC) 0.81 (equivalent unit cell) 0.18–0.23 (outer shell); internal NR 430 (freemoving sphere) GP: 60; GPRC: 43 NR None (GP); morphology hybrid (shell and lattice) (GPRC) Rule-based (fixed shell; not CT-guided gradient) Fit 3 mm rat femoral defect; target pore for ingrowth (430 μm); add shell to boost handling/strength (HA) ScanIP (Simpleware, UK) 2020, [3] Grid mesh + solid-shell lattice (patient-specific) 10 × 10 with 1.5 mm thickness: surface mesh 1.5 NR NR NR None Rule-based (rounded angle mesh; patient-specific shell fit) Lightweight, reduce stress shielding, promote osseointegration, protect graft, minimize stress concentrations Creo Parametric v5.0 (PTC, Needham, MA, USA) 2021, [14] Strut (simple cubic infill; hollow REVs) NR (REV-based) ≥0.5(variable) NR Variable (derived; NR exact) NR RD/wall-thicknessgradient CT-guided HU-E E-match; SS-reduce; osseointegrationfriendly Mimics version 17 2021, [6] TPMS-gyroid(sheet) 3 × 3 × 3; 6 × 6 × 6 0.30; 0.60 739; 1076 CAD 70; μCT 62.8–70.8 NR None - Bone ingrowth; interface stability; pore-size effect; BMP2 carrier NR https://doi.org/10.3390/biomimetics11020145 Table 2. ..

Derivative Assay:

Article Title: Patient-Specific Lattice Implants for Segmental Femoral and Tibial Reconstruction (Part 2): CT-Based Personalization, Design Workflows and Validation-A Review.
Article Snippet: .. Year, Ref [n] Lattice UC (mm; X × Y × Z) T (mm) PS (μm) RD/ Porosity (%) SA/VR (mm−1) Gradient (Type) Gradient Driver Design Objective(s) CAD Software 2019, [69] Honeycomb scaffold (square/triangular pores) Scaffold block: 32 × 25.5 × 13.5 0.2032 1250 (square/triangular pores) ≈68–83 (designed layer blocks); ≈82 (femur middiaphysis scaffold) NR None (uniform porearchitecture per pattern) N/A Design ABS FDM scaffolds with controlled pore size and porosity to achieve cortical bone-like stiffness and strength in a femur mid-diaphysis segment; study influence of FDM process parameters on structural modulus and compressive strength CATIA and Insight (Stratasys Fortus 360mc) 2019, [2] Patient-specific truss-type titanium cage (additively manufactured) Anatomical cage spanning femoral segmental defect; truss microarchitecture not specified NR NR NR (highly porous cage intended for large-volume bone graft packing) NR None (no explicit porosity or stiffness gradient; geometry matched to defect) N/A Custom 3D-printed titanium cage used with the Masquelet technique to reconstruct massive segmental femoral defects, restore alignment/length, provide immediate mechanical stability, and create a contained space for large volumes of bone graft within an induced membrane Manufacturerspecific tools (exact CAD software NR) 2020, [9] TPMS gyroid (GP); hybrid: gyroid + cortical-like outer shell (GPRC) 0.81 (equivalent unit cell) 0.18–0.23 (outer shell); internal NR 430 (freemoving sphere) GP: 60; GPRC: 43 NR None (GP); morphology hybrid (shell and lattice) (GPRC) Rule-based (fixed shell; not CT-guided gradient) Fit 3 mm rat femoral defect; target pore for ingrowth (430 μm); add shell to boost handling/strength (HA) ScanIP (Simpleware, UK) 2020, [3] Grid mesh + solid-shell lattice (patient-specific) 10 × 10 with 1.5 mm thickness: surface mesh 1.5 NR NR NR None Rule-based (rounded angle mesh; patient-specific shell fit) Lightweight, reduce stress shielding, promote osseointegration, protect graft, minimize stress concentrations Creo Parametric v5.0 (PTC, Needham, MA, USA) 2021, [14] Strut (simple cubic infill; hollow REVs) NR (REV-based) ≥0.5(variable) NR Variable (derived; NR exact) NR RD/wall-thicknessgradient CT-guided HU-E E-match; SS-reduce; osseointegrationfriendly Mimics version 17 2021, [6] TPMS-gyroid(sheet) 3 × 3 × 3; 6 × 6 × 6 0.30; 0.60 739; 1076 CAD 70; μCT 62.8–70.8 NR None - Bone ingrowth; interface stability; pore-size effect; BMP2 carrier NR https://doi.org/10.3390/biomimetics11020145 Table 2. ..

other:

Article Title: Impacts of mixing techniques and vacuum levels on the structural and mechanical properties of PMMA bone cement: A comparative study.
Article Snippet: The three-dimensional distribution of pores was visualised using Simpleware ScanIP, with representative examples from each test group shown in Figure 1.

Article Title: Impacts of mixing techniques and vacuum levels on the structural and mechanical properties of PMMA bone cement: A comparative study
Article Snippet: The three-dimensional distribution of pores was visualised using Simpleware ScanIP, with representative examples from each test group shown in .

Article Title: Scalable DICOM 3D-printed phantoms mimicking marine mammal bone and soft tissue.
Article Snippet: Estimated material volumes for each modeled tissue layer based on Simpleware ScanIP segmentation.



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Image Search Results


A pathway describing the process used to manually segment the VS tumors from MRI images using the imaging processing software Simpleware ScanIP.

Journal: Scientific Reports

Article Title: The development of an artificial intelligence auto-segmentation tool for 3D volumetric analysis of vestibular schwannomas

doi: 10.1038/s41598-025-88589-x

Figure Lengend Snippet: A pathway describing the process used to manually segment the VS tumors from MRI images using the imaging processing software Simpleware ScanIP.

Article Snippet: 3D tumor masks were created for vestibular schwannomas (unilateral or bilateral) as follows (Fig. ): Fig. 2 A pathway describing the process used to manually segment the VS tumors from MRI images using the imaging processing software Simpleware ScanIP.

Techniques: Imaging, Software