{"id":2441,"date":"2024-05-03T16:40:09","date_gmt":"2024-05-03T16:40:09","guid":{"rendered":"https:\/\/labs.cs.queensu.ca\/perklab\/members\/adam-rankin\/"},"modified":"2024-05-03T16:40:09","modified_gmt":"2024-05-03T16:40:09","slug":"adam-rankin","status":"publish","type":"qsc_member","link":"https:\/\/labs.cs.queensu.ca\/perklab\/members\/adam-rankin\/","title":{"rendered":"Adam Rankin"},"content":{"rendered":"<div class=\"wp-block-columns is-layout-flex wp-block-columns-is-layout-flex qsc-member-single-core-info-container\">\n<div class=\"wp-block-column is-layout-flow wp-block-column-is-layout-flow qsc-member-single-photo-column\">\n\t\t<img decoding=\"async\" src=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/plugins\/qsc-members\/\/images\/missing-image-placeholder.png\" class=\"qsc-member-single-photo\"\/>\n\t<\/div>\n<div class=\"wp-block-column is-layout-flow wp-block-column-is-layout-flow qsc-member-single-info-column\">\n<div class=\"qsc-member-name\">\n<h1>Adam Rankin<\/h1>\n<\/div>\n<div class=\"qsc-member-position\">PhD Student<\/div>\n<div class=\"qsc-member-department\"><\/div>\n<div class=\"qsc-member-organization\">Western University<\/div>\n<div class=\"qsc-member-date-range\">Member from <em>2012<\/em> to <em>present<\/em><\/div>\n<div class=\"qsc-member-contact\">\n<div class=\"qsc-member-socials\">\n\t\t\t<\/div>\n<\/p><\/div>\n<\/p><\/div>\n<\/div>\n<div class=\"qsc-member-bio\">\n<section id=\"block-views-user-display-block-4\" class=\"block block-views even block-count-3 block-region-content-aside block-user-display-block-4\">\n<div class=\"block-inner clearfix\">\n<div class=\"block-content content\">\n<div class=\"view view-user-display view-id-user_display view-display-id-block_4 view-dom-id-e820146a98348fcc233a2a20e9062f25\">\n<div class=\"view-content\">\n<div class=\"views-row views-row-1 views-row-odd views-row-first views-row-last Contact Information\">\n<div class=\"views-field views-field-field-short-biography\">\n<div class=\"field-content\">\n<p>Adam worked with the Perk Lab at Queen&#8217;s as staff engineer for 2 years before he started PhD at Western University.<\/p>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/div>\n<\/section>\n<section id=\"block-views-user-display-block-1\" class=\"block block-views odd block-count-4 block-region-content-aside block-user-display-block-1\">\n<div class=\"block-inner clearfix\"><\/div>\n<\/section>\n<div class=\"teachpress_pub_list\"><form name=\"tppublistform\" method=\"get\"><a name=\"tppubs\" id=\"tppubs\"><\/a><\/form><div class=\"teachpress_publication_list\"><div class=\"tp_publication tp_publication_conference\"><div class=\"tp_pub_info\"><p class=\"tp_pub_author\"> Schumacher, Mark;  Lasso, Andras;  Cumming, Ian;  Rankin, Adam;  Falkson, Conrad;  Schreiner, John;  Joshi, C. P.;  Fichtinger, Gabor<\/p><p class=\"tp_pub_title\"><a class=\"tp_title_link\" href=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Schumacher2015-manuscript.pdf\" title=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Schumacher2015-manuscript.pdf\" target=\"blank\">3D-printed surface mould applicator for high-dose-rate brachytherapy<\/a> <span class=\"tp_pub_type tp_  conference\">Conference<\/span> <\/p><p class=\"tp_pub_additional\"><span class=\"tp_pub_additional_booktitle\">SPIE Medical Imaging 2015, <\/span><span class=\"tp_pub_additional_volume\">vol. 9415, <\/span><span class=\"tp_pub_additional_year\">2015<\/span>.<\/p><p class=\"tp_pub_menu\"><span class=\"tp_abstract_link\"><a id=\"tp_abstract_sh_180\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('180','tp_abstract')\" title=\"Show abstract\" style=\"cursor:pointer;\">Abstract<\/a><\/span> | <span class=\"tp_resource_link\"><a id=\"tp_links_sh_180\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('180','tp_links')\" title=\"Show links and resources\" style=\"cursor:pointer;\">Links<\/a><\/span> | <span class=\"tp_bibtex_link\"><a id=\"tp_bibtex_sh_180\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('180','tp_bibtex')\" title=\"Show BibTeX entry\" style=\"cursor:pointer;\">BibTeX<\/a><\/span><\/p><div class=\"tp_bibtex\" id=\"tp_bibtex_180\" style=\"display:none;\"><div class=\"tp_bibtex_entry\"><pre>@conference{Schumacher2015,<br \/>\r\ntitle = {3D-printed surface mould applicator for high-dose-rate brachytherapy},<br \/>\r\nauthor = {Mark Schumacher and Andras Lasso and Ian Cumming and Adam Rankin and Conrad Falkson and John Schreiner and C. P. Joshi and Gabor Fichtinger},<br \/>\r\nurl = {https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Schumacher2015-manuscript.pdf<br \/>\r\nhttps:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Schumacher2015-poster.pdf},<br \/>\r\nyear  = {2015},<br \/>\r\ndate = {2015-01-01},<br \/>\r\nurldate = {2015-01-01},<br \/>\r\nbooktitle = {SPIE Medical Imaging 2015},<br \/>\r\nvolume = {9415},<br \/>\r\nabstract = {&lt;p&gt;&lt;strong&gt;ABSTRACT&lt;\/strong&gt;&lt;\/p&gt; <br \/>\r\n&lt;p&gt;PURPOSE: In contemporary high-dose-rate brachytherapy treatment of superficial tumors, catheters are placed in a wax mould. The creation of current wax models is a difficult and time consuming proces.The irradiation plan can only be computed post-construction and requires a second CT scan. In case no satisfactory dose plan can be created, the mould is discarded and the process is repeated. The objective of this work was to develop an automated method to replace suboptimal wax moulding. METHODS: We developed a method to design and manufacture moulds that guarantee to yield satisfactory dosimetry. A 3D-printed mould with channels for the catheters designed from the patient\u2019s CT and mounted on a patient-specific thermoplastic mesh mask. The mould planner was implemented as an open-source module in the 3D Slicer platform. RESULTS: Series of test moulds were created to accommodate standard brachytherapy catheters of 1.70mm diameter. A calibration object was used to conclude that tunnels with a diameter of 2.25mm, minimum 12mm radius of curvature, and 1.0mm open channel gave the best fit for this printer\/catheter combination. Moulds were created from the CT scan of thermoplastic mesh masks of actual patients. The patient-specific moulds have been visually verified to fit on the thermoplastic meshes. CONCLUSION: The masks were visually shown to fit onto the thermoplastic meshes, next the resulting dosimetry will have to be compared with treatment plans and dosimetry achieved with conventional wax moulds in order to validate our 3D printed moulds.&lt;\/p&gt;},<br \/>\r\nkeywords = {},<br \/>\r\npubstate = {published},<br \/>\r\ntppubtype = {conference}<br \/>\r\n}<br \/>\r\n<\/pre><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('180','tp_bibtex')\">Close<\/a><\/p><\/div><div class=\"tp_abstract\" id=\"tp_abstract_180\" style=\"display:none;\"><div class=\"tp_abstract_entry\">&lt;p&gt;&lt;strong&gt;ABSTRACT&lt;\/strong&gt;&lt;\/p&gt; <br \/>\r\n&lt;p&gt;PURPOSE: In contemporary high-dose-rate brachytherapy treatment of superficial tumors, catheters are placed in a wax mould. The creation of current wax models is a difficult and time consuming proces.The irradiation plan can only be computed post-construction and requires a second CT scan. In case no satisfactory dose plan can be created, the mould is discarded and the process is repeated. The objective of this work was to develop an automated method to replace suboptimal wax moulding. METHODS: We developed a method to design and manufacture moulds that guarantee to yield satisfactory dosimetry. A 3D-printed mould with channels for the catheters designed from the patient\u2019s CT and mounted on a patient-specific thermoplastic mesh mask. The mould planner was implemented as an open-source module in the 3D Slicer platform. RESULTS: Series of test moulds were created to accommodate standard brachytherapy catheters of 1.70mm diameter. A calibration object was used to conclude that tunnels with a diameter of 2.25mm, minimum 12mm radius of curvature, and 1.0mm open channel gave the best fit for this printer\/catheter combination. Moulds were created from the CT scan of thermoplastic mesh masks of actual patients. The patient-specific moulds have been visually verified to fit on the thermoplastic meshes. CONCLUSION: The masks were visually shown to fit onto the thermoplastic meshes, next the resulting dosimetry will have to be compared with treatment plans and dosimetry achieved with conventional wax moulds in order to validate our 3D printed moulds.&lt;\/p&gt;<\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('180','tp_abstract')\">Close<\/a><\/p><\/div><div class=\"tp_links\" id=\"tp_links_180\" style=\"display:none;\"><div class=\"tp_links_entry\"><ul class=\"tp_pub_list\"><li><i class=\"fas fa-file-pdf\"><\/i><a class=\"tp_pub_list\" href=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Schumacher2015-manuscript.pdf\" title=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Schumacher[...]\" target=\"_blank\">https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Schumacher[...]<\/a><\/li><li><i class=\"fas fa-file-pdf\"><\/i><a class=\"tp_pub_list\" href=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Schumacher2015-poster.pdf\" title=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Schumacher[...]\" target=\"_blank\">https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Schumacher[...]<\/a><\/li><\/ul><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('180','tp_links')\">Close<\/a><\/p><\/div><\/div><\/div><div class=\"tp_publication tp_publication_article\"><div class=\"tp_pub_info\"><p class=\"tp_pub_author\"> Lasso, Andras;  Heffter, Tamas;  Rankin, Adam;  Pinter, Csaba;  Ungi, Tamas;  Fichtinger, Gabor<\/p><p class=\"tp_pub_title\"><a class=\"tp_title_link\" href=\"https:\/\/dx.doi.org\/10.1109\/TBME.2014.2322864\" title=\"PLUS: Open-source toolkit for ultrasound-guided intervention systems\" target=\"blank\">PLUS: Open-source toolkit for ultrasound-guided intervention systems<\/a> <span class=\"tp_pub_type tp_  article\">Journal Article<\/span> <\/p><p class=\"tp_pub_additional\"><span class=\"tp_pub_additional_in\">In: <\/span><span class=\"tp_pub_additional_journal\">IEEE Transactions on Biomedical Engineering, <\/span><span class=\"tp_pub_additional_volume\">vol. 61, <\/span><span class=\"tp_pub_additional_number\">no. 10, <\/span><span class=\"tp_pub_additional_pages\">pp. 2527-2537, <\/span><span class=\"tp_pub_additional_year\">2014<\/span>, <span class=\"tp_pub_additional_issn\">ISSN: 0018-9294<\/span>.<\/p><p class=\"tp_pub_menu\"><span class=\"tp_resource_link\"><a id=\"tp_links_sh_240\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('240','tp_links')\" title=\"Show links and resources\" style=\"cursor:pointer;\">Links<\/a><\/span> | <span class=\"tp_bibtex_link\"><a id=\"tp_bibtex_sh_240\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('240','tp_bibtex')\" title=\"Show BibTeX entry\" style=\"cursor:pointer;\">BibTeX<\/a><\/span><\/p><div class=\"tp_bibtex\" id=\"tp_bibtex_240\" style=\"display:none;\"><div class=\"tp_bibtex_entry\"><pre>@article{Lasso2014a,<br \/>\r\ntitle = {PLUS: Open-source toolkit for ultrasound-guided intervention systems},<br \/>\r\nauthor = {Andras Lasso and Tamas Heffter and Adam Rankin and Csaba Pinter and Tamas Ungi and Gabor Fichtinger},<br \/>\r\nurl = {https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Lasso2014a-manuscript.pdf},<br \/>\r\ndoi = {10.1109\/TBME.2014.2322864},<br \/>\r\nissn = {0018-9294},<br \/>\r\nyear  = {2014},<br \/>\r\ndate = {2014-10-01},<br \/>\r\nurldate = {2014-10-01},<br \/>\r\njournal = {IEEE Transactions on Biomedical Engineering},<br \/>\r\nvolume = {61},<br \/>\r\nnumber = {10},<br \/>\r\npages = {2527-2537},<br \/>\r\nkeywords = {},<br \/>\r\npubstate = {published},<br \/>\r\ntppubtype = {article}<br \/>\r\n}<br \/>\r\n<\/pre><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('240','tp_bibtex')\">Close<\/a><\/p><\/div><div class=\"tp_links\" id=\"tp_links_240\" style=\"display:none;\"><div class=\"tp_links_entry\"><ul class=\"tp_pub_list\"><li><i class=\"fas fa-file-pdf\"><\/i><a class=\"tp_pub_list\" href=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Lasso2014a-manuscript.pdf\" title=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Lasso2014a[...]\" target=\"_blank\">https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Lasso2014a[...]<\/a><\/li><li><i class=\"ai ai-doi\"><\/i><a class=\"tp_pub_list\" href=\"https:\/\/dx.doi.org\/10.1109\/TBME.2014.2322864\" title=\"Follow DOI:10.1109\/TBME.2014.2322864\" target=\"_blank\">doi:10.1109\/TBME.2014.2322864<\/a><\/li><\/ul><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('240','tp_links')\">Close<\/a><\/p><\/div><\/div><\/div><div class=\"tp_publication tp_publication_conference\"><div class=\"tp_pub_info\"><p class=\"tp_pub_author\"> Cumming, Ian;  Joshi, C. P.;  Lasso, Andras;  Rankin, Adam;  Falkson, Conrad;  Schreiner, John;  Fichtinger, Gabor<\/p><p class=\"tp_pub_title\"><a class=\"tp_title_link\" href=\"https:\/\/dx.doi.org\/http:\/\/dx.doi.org\/10.1118\/1.4888333\" title=\"3D Printed Patient-Specific Surface Mould Applicators for Brachytherapy Treatment of Superficial Lesions\" target=\"blank\">3D Printed Patient-Specific Surface Mould Applicators for Brachytherapy Treatment of Superficial Lesions<\/a> <span class=\"tp_pub_type tp_  conference\">Conference<\/span> <\/p><p class=\"tp_pub_additional\"><span class=\"tp_pub_additional_booktitle\">American Association Physicists in Medicine (AAPM), <\/span><span class=\"tp_pub_additional_volume\">vol. 41 (abstract in Medical Physics), <\/span><span class=\"tp_pub_additional_number\">no. 222, <\/span><span class=\"tp_pub_additional_year\">2014<\/span>.<\/p><p class=\"tp_pub_menu\"><span class=\"tp_abstract_link\"><a id=\"tp_abstract_sh_212\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('212','tp_abstract')\" title=\"Show abstract\" style=\"cursor:pointer;\">Abstract<\/a><\/span> | <span class=\"tp_resource_link\"><a id=\"tp_links_sh_212\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('212','tp_links')\" title=\"Show links and resources\" style=\"cursor:pointer;\">Links<\/a><\/span> | <span class=\"tp_bibtex_link\"><a id=\"tp_bibtex_sh_212\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('212','tp_bibtex')\" title=\"Show BibTeX entry\" style=\"cursor:pointer;\">BibTeX<\/a><\/span><\/p><div class=\"tp_bibtex\" id=\"tp_bibtex_212\" style=\"display:none;\"><div class=\"tp_bibtex_entry\"><pre>@conference{Cumming2014,<br \/>\r\ntitle = {3D Printed Patient-Specific Surface Mould Applicators for Brachytherapy Treatment of Superficial Lesions},<br \/>\r\nauthor = {Ian Cumming and C. P. Joshi and Andras Lasso and Adam Rankin and Conrad Falkson and John Schreiner and Gabor Fichtinger},<br \/>\r\nurl = {https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Cumming2014.pdf},<br \/>\r\ndoi = {http:\/\/dx.doi.org\/10.1118\/1.4888333},<br \/>\r\nyear  = {2014},<br \/>\r\ndate = {2014-06-01},<br \/>\r\nurldate = {2014-06-01},<br \/>\r\nbooktitle = {American Association Physicists in Medicine (AAPM)},<br \/>\r\nvolume = {41 (abstract in Medical Physics)},<br \/>\r\nnumber = {222},<br \/>\r\nabstract = {&lt;p&gt;Purpose:&lt;br \/&gt; <br \/>\r\nEvaluate the feasibility of constructing 3D-printed patient-specific surface mould applicators for HDR brachytherapy treatment of superficial lesions.&lt;br \/&gt; <br \/>\r\n&lt;br \/&gt; <br \/>\r\nMethods:&lt;br \/&gt; <br \/>\r\nWe propose using computer-aided design software to create 3D printed surface mould applicators for brachytherapy. A mould generation module was developed in the open-source 3D Slicer (www.slicer.org) medical image analysis platform. The system extracts the skin surface from CT images, and generates smooth catheter paths over the region of interest based on user-defined start and end points at a specified stand-off distance from the skin surface. The catheter paths are radially extended to create catheter channels that are sufficiently wide to ensure smooth insertion of catheters for a safe source travel. An outer mould surface is generated to encompass the channels. The mould is also equipped with fiducial markers to ensure its reproducible placement.&lt;br \/&gt; <br \/>\r\n&lt;br \/&gt; <br \/>\r\nA surface mould applicator with eight parallel catheter channels of 4mm diameters was fabricated for the nose region of a head phantom; flexible plastic catheters of 2mm diameter were threaded through these channels maintaining 10mm catheter separations and a 5mm stand-off distance from the skin surface. The apparatus yielded 3mm thickness of mould material between channels and the skin. The mould design was exported as a stereolithography file to a Dimension SST1200es 3D printer and printed using ABS Plus plastic material.&lt;br \/&gt; <br \/>\r\n&lt;br \/&gt; <br \/>\r\nResults:&lt;br \/&gt; <br \/>\r\nThe applicator closely matched its design and was found to be sufficiently rigid without deformation during repeated application on the head phantom. Catheters were easily threaded into channels carved along catheter paths. Further tests are required to evaluate feasibility of channel diameters smaller than 4mm.&lt;br \/&gt; <br \/>\r\n&lt;br \/&gt; <br \/>\r\nConclusion:&lt;br \/&gt; <br \/>\r\nConstruction of 3D-printed mould applicators show promise for use in patient specific brachytherapy of superficial lesions. Further evaluation of 3D printing techniques and materials is required for constructing sufficiently thin, rigid and durable surface moulds suitable for clinical deployment.&lt;br \/&gt; <br \/>\r\n &lt;\/p&gt;},<br \/>\r\nkeywords = {},<br \/>\r\npubstate = {published},<br \/>\r\ntppubtype = {conference}<br \/>\r\n}<br \/>\r\n<\/pre><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('212','tp_bibtex')\">Close<\/a><\/p><\/div><div class=\"tp_abstract\" id=\"tp_abstract_212\" style=\"display:none;\"><div class=\"tp_abstract_entry\">&lt;p&gt;Purpose:&lt;br \/&gt; <br \/>\r\nEvaluate the feasibility of constructing 3D-printed patient-specific surface mould applicators for HDR brachytherapy treatment of superficial lesions.&lt;br \/&gt; <br \/>\r\n&lt;br \/&gt; <br \/>\r\nMethods:&lt;br \/&gt; <br \/>\r\nWe propose using computer-aided design software to create 3D printed surface mould applicators for brachytherapy. A mould generation module was developed in the open-source 3D Slicer (www.slicer.org) medical image analysis platform. The system extracts the skin surface from CT images, and generates smooth catheter paths over the region of interest based on user-defined start and end points at a specified stand-off distance from the skin surface. The catheter paths are radially extended to create catheter channels that are sufficiently wide to ensure smooth insertion of catheters for a safe source travel. An outer mould surface is generated to encompass the channels. The mould is also equipped with fiducial markers to ensure its reproducible placement.&lt;br \/&gt; <br \/>\r\n&lt;br \/&gt; <br \/>\r\nA surface mould applicator with eight parallel catheter channels of 4mm diameters was fabricated for the nose region of a head phantom; flexible plastic catheters of 2mm diameter were threaded through these channels maintaining 10mm catheter separations and a 5mm stand-off distance from the skin surface. The apparatus yielded 3mm thickness of mould material between channels and the skin. The mould design was exported as a stereolithography file to a Dimension SST1200es 3D printer and printed using ABS Plus plastic material.&lt;br \/&gt; <br \/>\r\n&lt;br \/&gt; <br \/>\r\nResults:&lt;br \/&gt; <br \/>\r\nThe applicator closely matched its design and was found to be sufficiently rigid without deformation during repeated application on the head phantom. Catheters were easily threaded into channels carved along catheter paths. Further tests are required to evaluate feasibility of channel diameters smaller than 4mm.&lt;br \/&gt; <br \/>\r\n&lt;br \/&gt; <br \/>\r\nConclusion:&lt;br \/&gt; <br \/>\r\nConstruction of 3D-printed mould applicators show promise for use in patient specific brachytherapy of superficial lesions. Further evaluation of 3D printing techniques and materials is required for constructing sufficiently thin, rigid and durable surface moulds suitable for clinical deployment.&lt;br \/&gt; <br \/>\r\n&amp;nbsp;&lt;\/p&gt;<\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('212','tp_abstract')\">Close<\/a><\/p><\/div><div class=\"tp_links\" id=\"tp_links_212\" style=\"display:none;\"><div class=\"tp_links_entry\"><ul class=\"tp_pub_list\"><li><i class=\"fas fa-file-pdf\"><\/i><a class=\"tp_pub_list\" href=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Cumming2014.pdf\" title=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Cumming201[...]\" target=\"_blank\">https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Cumming201[...]<\/a><\/li><li><i class=\"ai ai-doi\"><\/i><a class=\"tp_pub_list\" href=\"https:\/\/dx.doi.org\/http:\/\/dx.doi.org\/10.1118\/1.4888333\" title=\"Follow DOI:http:\/\/dx.doi.org\/10.1118\/1.4888333\" target=\"_blank\">doi:http:\/\/dx.doi.org\/10.1118\/1.4888333<\/a><\/li><\/ul><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('212','tp_links')\">Close<\/a><\/p><\/div><\/div><\/div><div class=\"tp_publication tp_publication_conference\"><div class=\"tp_pub_info\"><p class=\"tp_pub_author\"> Soehl, Marie;  Walsh, Ryan;  Rankin, Adam;  Lasso, Andras;  Fichtinger, Gabor<\/p><p class=\"tp_pub_title\"><a class=\"tp_title_link\" href=\"https:\/\/dx.doi.org\/10.1117\/12.2044121\" title=\"Tracked ultrasound calibration studies with a phantom made of LEGO(r) bricks\" target=\"blank\">Tracked ultrasound calibration studies with a phantom made of LEGO(r) bricks<\/a> <span class=\"tp_pub_type tp_  conference\">Conference<\/span> <\/p><p class=\"tp_pub_additional\"><span class=\"tp_pub_additional_booktitle\">SPIE Medical Imaging 2014, <\/span><span class=\"tp_pub_additional_volume\">vol. 9036, <\/span><span class=\"tp_pub_additional_address\">San Diego, United States, March 12, 2014, <\/span><span class=\"tp_pub_additional_year\">2014<\/span>.<\/p><p class=\"tp_pub_menu\"><span class=\"tp_resource_link\"><a id=\"tp_links_sh_253\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('253','tp_links')\" title=\"Show links and resources\" style=\"cursor:pointer;\">Links<\/a><\/span> | <span class=\"tp_bibtex_link\"><a id=\"tp_bibtex_sh_253\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('253','tp_bibtex')\" title=\"Show BibTeX entry\" style=\"cursor:pointer;\">BibTeX<\/a><\/span><\/p><div class=\"tp_bibtex\" id=\"tp_bibtex_253\" style=\"display:none;\"><div class=\"tp_bibtex_entry\"><pre>@conference{Soehl2014,<br \/>\r\ntitle = {Tracked ultrasound calibration studies with a phantom made of LEGO(r) bricks},<br \/>\r\nauthor = {Marie Soehl and Ryan Walsh and Adam Rankin and Andras Lasso and Gabor Fichtinger},<br \/>\r\nurl = {https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Soehl2014-manuscript.pdf},<br \/>\r\ndoi = {10.1117\/12.2044121},<br \/>\r\nyear  = {2014},<br \/>\r\ndate = {2014-03-01},<br \/>\r\nurldate = {2014-03-01},<br \/>\r\nbooktitle = {SPIE Medical Imaging 2014},<br \/>\r\nvolume = {9036},<br \/>\r\npages = {90362R},<br \/>\r\naddress = {San Diego, United States, March 12, 2014},<br \/>\r\nkeywords = {},<br \/>\r\npubstate = {published},<br \/>\r\ntppubtype = {conference}<br \/>\r\n}<br \/>\r\n<\/pre><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('253','tp_bibtex')\">Close<\/a><\/p><\/div><div class=\"tp_links\" id=\"tp_links_253\" style=\"display:none;\"><div class=\"tp_links_entry\"><ul class=\"tp_pub_list\"><li><i class=\"fas fa-file-pdf\"><\/i><a class=\"tp_pub_list\" href=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Soehl2014-manuscript.pdf\" title=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Soehl2014-[...]\" target=\"_blank\">https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Soehl2014-[...]<\/a><\/li><li><i class=\"ai ai-doi\"><\/i><a class=\"tp_pub_list\" href=\"https:\/\/dx.doi.org\/10.1117\/12.2044121\" title=\"Follow DOI:10.1117\/12.2044121\" target=\"_blank\">doi:10.1117\/12.2044121<\/a><\/li><\/ul><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('253','tp_links')\">Close<\/a><\/p><\/div><\/div><\/div><div class=\"tp_publication tp_publication_conference\"><div class=\"tp_pub_info\"><p class=\"tp_pub_author\"> Walsh, Ryan;  Soehl, Marie;  Rankin, Adam;  Lasso, Andras;  Fichtinger, Gabor<\/p><p class=\"tp_pub_title\"><a class=\"tp_title_link\" href=\"https:\/\/dx.doi.org\/10.1117\/12.2043533\" title=\"Design of a tracked ultrasound calibration phantom made of LEGO bricks\" target=\"blank\">Design of a tracked ultrasound calibration phantom made of LEGO bricks<\/a> <span class=\"tp_pub_type tp_  conference\">Conference<\/span> <\/p><p class=\"tp_pub_additional\"><span class=\"tp_pub_additional_booktitle\">SPIE Medical ImagingMedical Imaging 2014: Image-Guided Procedures, Robotic Interventions, and Modeling, <\/span><span class=\"tp_pub_additional_volume\">vol. 9036, <\/span><span class=\"tp_pub_additional_organization\">SPIE <\/span><span class=\"tp_pub_additional_publisher\">SPIE, <\/span><span class=\"tp_pub_additional_address\">San Diego, California, USA, <\/span><span class=\"tp_pub_additional_year\">2014<\/span>.<\/p><p class=\"tp_pub_menu\"><span class=\"tp_resource_link\"><a id=\"tp_links_sh_218\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('218','tp_links')\" title=\"Show links and resources\" style=\"cursor:pointer;\">Links<\/a><\/span> | <span class=\"tp_bibtex_link\"><a id=\"tp_bibtex_sh_218\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('218','tp_bibtex')\" title=\"Show BibTeX entry\" style=\"cursor:pointer;\">BibTeX<\/a><\/span><\/p><div class=\"tp_bibtex\" id=\"tp_bibtex_218\" style=\"display:none;\"><div class=\"tp_bibtex_entry\"><pre>@conference{Walsh2014,<br \/>\r\ntitle = {Design of a tracked ultrasound calibration phantom made of LEGO bricks},<br \/>\r\nauthor = {Ryan Walsh and Marie Soehl and Adam Rankin and Andras Lasso and Gabor Fichtinger},<br \/>\r\ndoi = {10.1117\/12.2043533},<br \/>\r\nyear  = {2014},<br \/>\r\ndate = {2014-03-01},<br \/>\r\nurldate = {2014-03-01},<br \/>\r\nbooktitle = {SPIE Medical ImagingMedical Imaging 2014: Image-Guided Procedures, Robotic Interventions, and Modeling},<br \/>\r\nvolume = {9036},<br \/>\r\npages = {90362C},<br \/>\r\npublisher = {SPIE},<br \/>\r\naddress = {San Diego, California, USA},<br \/>\r\norganization = {SPIE},<br \/>\r\nkeywords = {},<br \/>\r\npubstate = {published},<br \/>\r\ntppubtype = {conference}<br \/>\r\n}<br \/>\r\n<\/pre><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('218','tp_bibtex')\">Close<\/a><\/p><\/div><div class=\"tp_links\" id=\"tp_links_218\" style=\"display:none;\"><div class=\"tp_links_entry\"><ul class=\"tp_pub_list\"><li><i class=\"ai ai-doi\"><\/i><a class=\"tp_pub_list\" href=\"https:\/\/dx.doi.org\/10.1117\/12.2043533\" title=\"Follow DOI:10.1117\/12.2043533\" target=\"_blank\">doi:10.1117\/12.2043533<\/a><\/li><\/ul><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('218','tp_links')\">Close<\/a><\/p><\/div><\/div><\/div><div class=\"tp_publication tp_publication_conference\"><div class=\"tp_pub_info\"><p class=\"tp_pub_author\"> Soehl, Marie;  Walsh, Ryan;  Rankin, Adam;  Lasso, Andras;  Fichtinger, Gabor<\/p><p class=\"tp_pub_title\"><a class=\"tp_title_link\" href=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Soehl2014a-manuscript.pdf\" title=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Soehl2014a-manuscript.pdf\" target=\"blank\">Tracked ultrasound calibration studies with a phantom made of LEGO\u00ae bricks<\/a> <span class=\"tp_pub_type tp_  conference\">Conference<\/span> <\/p><p class=\"tp_pub_additional\"><span class=\"tp_pub_additional_booktitle\">12th Annual Imaging Network Ontario Symposium, <\/span><span class=\"tp_pub_additional_address\">Toronto, Canada, March 24-25, 2014, <\/span><span class=\"tp_pub_additional_year\">2014<\/span>.<\/p><p class=\"tp_pub_menu\"><span class=\"tp_resource_link\"><a id=\"tp_links_sh_254\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('254','tp_links')\" title=\"Show links and resources\" style=\"cursor:pointer;\">Links<\/a><\/span> | <span class=\"tp_bibtex_link\"><a id=\"tp_bibtex_sh_254\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('254','tp_bibtex')\" title=\"Show BibTeX entry\" style=\"cursor:pointer;\">BibTeX<\/a><\/span><\/p><div class=\"tp_bibtex\" id=\"tp_bibtex_254\" style=\"display:none;\"><div class=\"tp_bibtex_entry\"><pre>@conference{Soehl2014a,<br \/>\r\ntitle = {Tracked ultrasound calibration studies with a phantom made of LEGO\u00ae bricks},<br \/>\r\nauthor = {Marie Soehl and Ryan Walsh and Adam Rankin and Andras Lasso and Gabor Fichtinger},<br \/>\r\nurl = {https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Soehl2014a-manuscript.pdf},<br \/>\r\nyear  = {2014},<br \/>\r\ndate = {2014-01-01},<br \/>\r\nurldate = {2014-01-01},<br \/>\r\nbooktitle = {12th Annual Imaging Network Ontario Symposium},<br \/>\r\naddress = {Toronto, Canada, March 24-25, 2014},<br \/>\r\nkeywords = {},<br \/>\r\npubstate = {published},<br \/>\r\ntppubtype = {conference}<br \/>\r\n}<br \/>\r\n<\/pre><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('254','tp_bibtex')\">Close<\/a><\/p><\/div><div class=\"tp_links\" id=\"tp_links_254\" style=\"display:none;\"><div class=\"tp_links_entry\"><ul class=\"tp_pub_list\"><li><i class=\"fas fa-file-pdf\"><\/i><a class=\"tp_pub_list\" href=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Soehl2014a-manuscript.pdf\" title=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Soehl2014a[...]\" target=\"_blank\">https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Soehl2014a[...]<\/a><\/li><\/ul><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('254','tp_links')\">Close<\/a><\/p><\/div><\/div><\/div><div class=\"tp_publication tp_publication_article\"><div class=\"tp_pub_info\"><p class=\"tp_pub_author\"> Lasso, Andras;  Heffter, Tamas;  Rankin, Adam;  Pinter, Csaba;  Ungi, Tamas;  Fichtinger, Gabor<\/p><p class=\"tp_pub_title\"><a class=\"tp_title_link\" href=\"https:\/\/ieeexplore.ieee.org\/abstract\/document\/6813647\/\" title=\"https:\/\/ieeexplore.ieee.org\/abstract\/document\/6813647\/\" target=\"blank\">PLUS: open-source toolkit for ultrasound-guided intervention systems<\/a> <span class=\"tp_pub_type tp_  article\">Journal Article<\/span> <\/p><p class=\"tp_pub_additional\"><span class=\"tp_pub_additional_in\">In: <\/span><span class=\"tp_pub_additional_journal\">IEEE transactions on biomedical engineering, <\/span><span class=\"tp_pub_additional_volume\">vol. 61, <\/span><span class=\"tp_pub_additional_issue\">iss. 10, <\/span><span class=\"tp_pub_additional_pages\">pp. 2527-2537, <\/span><span class=\"tp_pub_additional_year\">2014<\/span>.<\/p><p class=\"tp_pub_menu\"><span class=\"tp_abstract_link\"><a id=\"tp_abstract_sh_670\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('670','tp_abstract')\" title=\"Show abstract\" style=\"cursor:pointer;\">Abstract<\/a><\/span> | <span class=\"tp_resource_link\"><a id=\"tp_links_sh_670\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('670','tp_links')\" title=\"Show links and resources\" style=\"cursor:pointer;\">Links<\/a><\/span> | <span class=\"tp_bibtex_link\"><a id=\"tp_bibtex_sh_670\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('670','tp_bibtex')\" title=\"Show BibTeX entry\" style=\"cursor:pointer;\">BibTeX<\/a><\/span><\/p><div class=\"tp_bibtex\" id=\"tp_bibtex_670\" style=\"display:none;\"><div class=\"tp_bibtex_entry\"><pre>@article{fichtinger2014,<br \/>\r\ntitle = {PLUS: open-source toolkit for ultrasound-guided intervention systems},<br \/>\r\nauthor = {Andras Lasso and Tamas Heffter and Adam Rankin and Csaba Pinter and Tamas Ungi and Gabor Fichtinger},<br \/>\r\nurl = {https:\/\/ieeexplore.ieee.org\/abstract\/document\/6813647\/},<br \/>\r\nyear  = {2014},<br \/>\r\ndate = {2014-01-01},<br \/>\r\njournal = {IEEE transactions on biomedical engineering},<br \/>\r\nvolume = {61},<br \/>\r\nissue = {10},<br \/>\r\npages = {2527-2537},<br \/>\r\npublisher = {IEEE},<br \/>\r\nabstract = {A variety of advanced image analysis methods have been under the development for ultrasound-guided interventions. Unfortunately, the transition from an image analysis algorithm to clinical feasibility trials as part of an intervention system requires integration of many components, such as imaging and tracking devices, data processing algorithms, and visualization software. The objective of our paper is to provide a freely available open-source software platform\u2014PLUS: Public software Library for Ultrasound\u2014to facilitate rapid prototyping of ultrasound-guided intervention systems for translational clinical research. PLUS provides a variety of methods for interventional tool pose and ultrasound image acquisition from a wide range of tracking and imaging devices, spatial and temporal calibration, volume reconstruction, simulated image generation, and recording and live streaming of the acquired data. This paper \u2026},<br \/>\r\nkeywords = {},<br \/>\r\npubstate = {published},<br \/>\r\ntppubtype = {article}<br \/>\r\n}<br \/>\r\n<\/pre><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('670','tp_bibtex')\">Close<\/a><\/p><\/div><div class=\"tp_abstract\" id=\"tp_abstract_670\" style=\"display:none;\"><div class=\"tp_abstract_entry\">A variety of advanced image analysis methods have been under the development for ultrasound-guided interventions. Unfortunately, the transition from an image analysis algorithm to clinical feasibility trials as part of an intervention system requires integration of many components, such as imaging and tracking devices, data processing algorithms, and visualization software. The objective of our paper is to provide a freely available open-source software platform\u2014PLUS: Public software Library for Ultrasound\u2014to facilitate rapid prototyping of ultrasound-guided intervention systems for translational clinical research. PLUS provides a variety of methods for interventional tool pose and ultrasound image acquisition from a wide range of tracking and imaging devices, spatial and temporal calibration, volume reconstruction, simulated image generation, and recording and live streaming of the acquired data. This paper \u2026<\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('670','tp_abstract')\">Close<\/a><\/p><\/div><div class=\"tp_links\" id=\"tp_links_670\" style=\"display:none;\"><div class=\"tp_links_entry\"><ul class=\"tp_pub_list\"><li><i class=\"fas fa-globe\"><\/i><a class=\"tp_pub_list\" href=\"https:\/\/ieeexplore.ieee.org\/abstract\/document\/6813647\/\" title=\"https:\/\/ieeexplore.ieee.org\/abstract\/document\/6813647\/\" target=\"_blank\">https:\/\/ieeexplore.ieee.org\/abstract\/document\/6813647\/<\/a><\/li><\/ul><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('670','tp_links')\">Close<\/a><\/p><\/div><\/div><\/div><div class=\"tp_publication tp_publication_article\"><div class=\"tp_pub_info\"><p class=\"tp_pub_author\"> Walsh, Ryan;  Soehl, Marie;  Rankin, Adam;  Lasso, Andras;  Fichtinger, Gabor<\/p><p class=\"tp_pub_title\"><a class=\"tp_title_link\" href=\"https:\/\/www.spiedigitallibrary.org\/conference-proceedings-of-spie\/9036\/90362C\/Design-of-a-tracked-ultrasound-calibration-phantom-made-of-LEGO\/10.1117\/12.2043533.short\" title=\"https:\/\/www.spiedigitallibrary.org\/conference-proceedings-of-spie\/9036\/90362C\/Design-of-a-tracked-ultrasound-calibration-phantom-made-of-LEGO\/10.1117\/12.2043533.short\" target=\"blank\">Design of a tracked ultrasound calibration phantom made of lego bricks<\/a> <span class=\"tp_pub_type tp_  article\">Journal Article<\/span> <\/p><p class=\"tp_pub_additional\"><span class=\"tp_pub_additional_in\">In: <\/span><span class=\"tp_pub_additional_volume\">vol. 9036, <\/span><span class=\"tp_pub_additional_pages\">pp. 606-612, <\/span><span class=\"tp_pub_additional_year\">2014<\/span>.<\/p><p class=\"tp_pub_menu\"><span class=\"tp_abstract_link\"><a id=\"tp_abstract_sh_826\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('826','tp_abstract')\" title=\"Show abstract\" style=\"cursor:pointer;\">Abstract<\/a><\/span> | <span class=\"tp_resource_link\"><a id=\"tp_links_sh_826\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('826','tp_links')\" title=\"Show links and resources\" style=\"cursor:pointer;\">Links<\/a><\/span> | <span class=\"tp_bibtex_link\"><a id=\"tp_bibtex_sh_826\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('826','tp_bibtex')\" title=\"Show BibTeX entry\" style=\"cursor:pointer;\">BibTeX<\/a><\/span><\/p><div class=\"tp_bibtex\" id=\"tp_bibtex_826\" style=\"display:none;\"><div class=\"tp_bibtex_entry\"><pre>@article{fichtinger2014i,<br \/>\r\ntitle = {Design of a tracked ultrasound calibration phantom made of lego bricks},<br \/>\r\nauthor = {Ryan Walsh and Marie Soehl and Adam Rankin and Andras Lasso and Gabor Fichtinger},<br \/>\r\nurl = {https:\/\/www.spiedigitallibrary.org\/conference-proceedings-of-spie\/9036\/90362C\/Design-of-a-tracked-ultrasound-calibration-phantom-made-of-LEGO\/10.1117\/12.2043533.short},<br \/>\r\nyear  = {2014},<br \/>\r\ndate = {2014-01-01},<br \/>\r\nvolume = {9036},<br \/>\r\npages = {606-612},<br \/>\r\npublisher = {SPIE},<br \/>\r\nabstract = {PURPOSE: Spatial calibration of tracked ultrasound systems is commonly performed using precisely fabricated phantoms. Machining or 3D printing has relatively high cost and not easily available. Moreover, the possibilities for modifying the phantoms are very limited. Our goal was to find a method to construct a calibration phantom from affordable, widely available components, which can be built in short time, can be easily modified, and provides comparable accuracy to the existing solutions. METHODS: We designed an N-wire calibration phantom made of LEGO\u00ae bricks. To affirm the phantom\u2019s reproducibility and build time, ten builds were done by first-time users. The phantoms were used for a tracked ultrasound calibration by an experienced user. The success of each user\u2019s build was determined by the lowest root mean square (RMS) wire reprojection error of three calibrations. The accuracy and variance of \u2026},<br \/>\r\nkeywords = {},<br \/>\r\npubstate = {published},<br \/>\r\ntppubtype = {article}<br \/>\r\n}<br \/>\r\n<\/pre><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('826','tp_bibtex')\">Close<\/a><\/p><\/div><div class=\"tp_abstract\" id=\"tp_abstract_826\" style=\"display:none;\"><div class=\"tp_abstract_entry\">PURPOSE: Spatial calibration of tracked ultrasound systems is commonly performed using precisely fabricated phantoms. Machining or 3D printing has relatively high cost and not easily available. Moreover, the possibilities for modifying the phantoms are very limited. Our goal was to find a method to construct a calibration phantom from affordable, widely available components, which can be built in short time, can be easily modified, and provides comparable accuracy to the existing solutions. METHODS: We designed an N-wire calibration phantom made of LEGO\u00ae bricks. To affirm the phantom\u2019s reproducibility and build time, ten builds were done by first-time users. The phantoms were used for a tracked ultrasound calibration by an experienced user. The success of each user\u2019s build was determined by the lowest root mean square (RMS) wire reprojection error of three calibrations. The accuracy and variance of \u2026<\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('826','tp_abstract')\">Close<\/a><\/p><\/div><div class=\"tp_links\" id=\"tp_links_826\" style=\"display:none;\"><div class=\"tp_links_entry\"><ul class=\"tp_pub_list\"><li><i class=\"fas fa-globe\"><\/i><a class=\"tp_pub_list\" href=\"https:\/\/www.spiedigitallibrary.org\/conference-proceedings-of-spie\/9036\/90362C\/Design-of-a-tracked-ultrasound-calibration-phantom-made-of-LEGO\/10.1117\/12.2043533.short\" title=\"https:\/\/www.spiedigitallibrary.org\/conference-proceedings-of-spie\/9036\/90362C\/De[...]\" target=\"_blank\">https:\/\/www.spiedigitallibrary.org\/conference-proceedings-of-spie\/9036\/90362C\/De[...]<\/a><\/li><\/ul><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('826','tp_links')\">Close<\/a><\/p><\/div><\/div><\/div><div class=\"tp_publication tp_publication_article\"><div class=\"tp_pub_info\"><p class=\"tp_pub_author\"> Cumming, Ian;  Joshi, Chandra;  Lasso, Andras;  Rankin, Adam;  Falkson, Conrad;  Schreiner, L John;  Fichtinger, Gabor<\/p><p class=\"tp_pub_title\"><a class=\"tp_title_link\" href=\"http:\/\/perk.cs.queensu.ca\/sites\/perkd7.cs.queensu.ca\/files\/Cumming2014.pdf\" title=\"http:\/\/perk.cs.queensu.ca\/sites\/perkd7.cs.queensu.ca\/files\/Cumming2014.pdf\" target=\"blank\">SU-ET-04: 3D printed patient-specific surface mould applicators for brachytherapy treatment of superficial lesions<\/a> <span class=\"tp_pub_type tp_  article\">Journal Article<\/span> <\/p><p class=\"tp_pub_additional\"><span class=\"tp_pub_additional_in\">In: <\/span><span class=\"tp_pub_additional_journal\">Med Phys, <\/span><span class=\"tp_pub_additional_volume\">vol. 41, <\/span><span class=\"tp_pub_additional_issue\">iss. 6 part 11, <\/span><span class=\"tp_pub_additional_pages\">pp. 222, <\/span><span class=\"tp_pub_additional_year\">2014<\/span>.<\/p><p class=\"tp_pub_menu\"><span class=\"tp_abstract_link\"><a id=\"tp_abstract_sh_842\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('842','tp_abstract')\" title=\"Show abstract\" style=\"cursor:pointer;\">Abstract<\/a><\/span> | <span class=\"tp_resource_link\"><a id=\"tp_links_sh_842\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('842','tp_links')\" title=\"Show links and resources\" style=\"cursor:pointer;\">Links<\/a><\/span> | <span class=\"tp_bibtex_link\"><a id=\"tp_bibtex_sh_842\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('842','tp_bibtex')\" title=\"Show BibTeX entry\" style=\"cursor:pointer;\">BibTeX<\/a><\/span><\/p><div class=\"tp_bibtex\" id=\"tp_bibtex_842\" style=\"display:none;\"><div class=\"tp_bibtex_entry\"><pre>@article{fichtinger2014k,<br \/>\r\ntitle = {SU-ET-04: 3D printed patient-specific surface mould applicators for brachytherapy treatment of superficial lesions},<br \/>\r\nauthor = {Ian Cumming and Chandra Joshi and Andras Lasso and Adam Rankin and Conrad Falkson and L John Schreiner and Gabor Fichtinger},<br \/>\r\nurl = {http:\/\/perk.cs.queensu.ca\/sites\/perkd7.cs.queensu.ca\/files\/Cumming2014.pdf},<br \/>\r\nyear  = {2014},<br \/>\r\ndate = {2014-01-01},<br \/>\r\njournal = {Med Phys},<br \/>\r\nvolume = {41},<br \/>\r\nissue = {6 part 11},<br \/>\r\npages = {222},<br \/>\r\nabstract = {Purpose: Evaluate the feasibility of constructing 3D-printed patient-specific surface mould applicators for HDR brachytherapy treatment of superficial lesions. <br \/>\r\nMethods: We propose using computer-aided design software to create 3D-printed surface mould applicators for brachytherapy. A mould generation module was developed in the opensource 3D Slicer (www. slicer. org) medical image analysis platform. The system extracts the skin surface from CT images, and generates smooth catheter paths over the region of interest based on user-defined start and end points at a specified stand-off distance from the skin surface. The catheter paths are radially extended to create catheter channels that are sufficiently wide to ensure smooth insertion of catheters for a safe source travel. An outer mould surface is generated to encompass the channels. The mould is also equipped with fiducial markers to ensure its reproducible placement.},<br \/>\r\nkeywords = {},<br \/>\r\npubstate = {published},<br \/>\r\ntppubtype = {article}<br \/>\r\n}<br \/>\r\n<\/pre><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('842','tp_bibtex')\">Close<\/a><\/p><\/div><div class=\"tp_abstract\" id=\"tp_abstract_842\" style=\"display:none;\"><div class=\"tp_abstract_entry\">Purpose: Evaluate the feasibility of constructing 3D-printed patient-specific surface mould applicators for HDR brachytherapy treatment of superficial lesions. <br \/>\r\nMethods: We propose using computer-aided design software to create 3D-printed surface mould applicators for brachytherapy. A mould generation module was developed in the opensource 3D Slicer (www. slicer. org) medical image analysis platform. The system extracts the skin surface from CT images, and generates smooth catheter paths over the region of interest based on user-defined start and end points at a specified stand-off distance from the skin surface. The catheter paths are radially extended to create catheter channels that are sufficiently wide to ensure smooth insertion of catheters for a safe source travel. An outer mould surface is generated to encompass the channels. The mould is also equipped with fiducial markers to ensure its reproducible placement.<\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('842','tp_abstract')\">Close<\/a><\/p><\/div><div class=\"tp_links\" id=\"tp_links_842\" style=\"display:none;\"><div class=\"tp_links_entry\"><ul class=\"tp_pub_list\"><li><i class=\"fas fa-file-pdf\"><\/i><a class=\"tp_pub_list\" href=\"http:\/\/perk.cs.queensu.ca\/sites\/perkd7.cs.queensu.ca\/files\/Cumming2014.pdf\" title=\"http:\/\/perk.cs.queensu.ca\/sites\/perkd7.cs.queensu.ca\/files\/Cumming2014.pdf\" target=\"_blank\">http:\/\/perk.cs.queensu.ca\/sites\/perkd7.cs.queensu.ca\/files\/Cumming2014.pdf<\/a><\/li><\/ul><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('842','tp_links')\">Close<\/a><\/p><\/div><\/div><\/div><div class=\"tp_publication tp_publication_article\"><div class=\"tp_pub_info\"><p class=\"tp_pub_author\"> Soehl, Marie;  Walsh, Ryan;  Rankin, Adam;  Lasso, Andras;  Fichtinger, Gabor<\/p><p class=\"tp_pub_title\"><a class=\"tp_title_link\" href=\"https:\/\/www.spiedigitallibrary.org\/conference-proceedings-of-spie\/9036\/90362R\/Tracked-ultrasound-calibration-studies-with-a-phantom-made-of-LEGO\/10.1117\/12.2044121.short\" title=\"https:\/\/www.spiedigitallibrary.org\/conference-proceedings-of-spie\/9036\/90362R\/Tracked-ultrasound-calibration-studies-with-a-phantom-made-of-LEGO\/10.1117\/12.2044121.short\" target=\"blank\">Tracked ultrasound calibration studies with a phantom made of LEGO bricks<\/a> <span class=\"tp_pub_type tp_  article\">Journal Article<\/span> <\/p><p class=\"tp_pub_additional\"><span class=\"tp_pub_additional_in\">In: <\/span><span class=\"tp_pub_additional_volume\">vol. 9036, <\/span><span class=\"tp_pub_additional_pages\">pp. 725-732, <\/span><span class=\"tp_pub_additional_year\">2014<\/span>.<\/p><p class=\"tp_pub_menu\"><span class=\"tp_abstract_link\"><a id=\"tp_abstract_sh_861\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('861','tp_abstract')\" title=\"Show abstract\" style=\"cursor:pointer;\">Abstract<\/a><\/span> | <span class=\"tp_resource_link\"><a id=\"tp_links_sh_861\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('861','tp_links')\" title=\"Show links and resources\" style=\"cursor:pointer;\">Links<\/a><\/span> | <span class=\"tp_bibtex_link\"><a id=\"tp_bibtex_sh_861\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('861','tp_bibtex')\" title=\"Show BibTeX entry\" style=\"cursor:pointer;\">BibTeX<\/a><\/span><\/p><div class=\"tp_bibtex\" id=\"tp_bibtex_861\" style=\"display:none;\"><div class=\"tp_bibtex_entry\"><pre>@article{fichtinger2014l,<br \/>\r\ntitle = {Tracked ultrasound calibration studies with a phantom made of LEGO bricks},<br \/>\r\nauthor = {Marie Soehl and Ryan Walsh and Adam Rankin and Andras Lasso and Gabor Fichtinger},<br \/>\r\nurl = {https:\/\/www.spiedigitallibrary.org\/conference-proceedings-of-spie\/9036\/90362R\/Tracked-ultrasound-calibration-studies-with-a-phantom-made-of-LEGO\/10.1117\/12.2044121.short},<br \/>\r\nyear  = {2014},<br \/>\r\ndate = {2014-01-01},<br \/>\r\nvolume = {9036},<br \/>\r\npages = {725-732},<br \/>\r\npublisher = {SPIE},<br \/>\r\nabstract = {In this study, spatial calibration of tracked ultrasound was compared by using a calibration phantom made of LEGO\u00ae bricks and two 3-D printed N-wire phantoms. <br \/>\r\nMETHODS <br \/>\r\nThe accuracy and variance of calibrations were compared under a variety of operating conditions. Twenty trials were performed using an electromagnetic tracking device with a linear probe and three trials were performed using varied probes, varied tracking devices and the three aforementioned phantoms. The accuracy and variance of spatial calibrations found through the standard deviation and error of the 3-D image reprojection were used to compare the calibrations produced from the phantoms. <br \/>\r\nRESULTS <br \/>\r\nThis study found no significant difference between the measured variables of the calibrations. The average standard deviation of multiple 3-D image reprojections with the highest performing printed phantom and those from the phantom \u2026},<br \/>\r\nkeywords = {},<br \/>\r\npubstate = {published},<br \/>\r\ntppubtype = {article}<br \/>\r\n}<br \/>\r\n<\/pre><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('861','tp_bibtex')\">Close<\/a><\/p><\/div><div class=\"tp_abstract\" id=\"tp_abstract_861\" style=\"display:none;\"><div class=\"tp_abstract_entry\">In this study, spatial calibration of tracked ultrasound was compared by using a calibration phantom made of LEGO\u00ae bricks and two 3-D printed N-wire phantoms. <br \/>\r\nMETHODS <br \/>\r\nThe accuracy and variance of calibrations were compared under a variety of operating conditions. Twenty trials were performed using an electromagnetic tracking device with a linear probe and three trials were performed using varied probes, varied tracking devices and the three aforementioned phantoms. The accuracy and variance of spatial calibrations found through the standard deviation and error of the 3-D image reprojection were used to compare the calibrations produced from the phantoms. <br \/>\r\nRESULTS <br \/>\r\nThis study found no significant difference between the measured variables of the calibrations. The average standard deviation of multiple 3-D image reprojections with the highest performing printed phantom and those from the phantom \u2026<\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('861','tp_abstract')\">Close<\/a><\/p><\/div><div class=\"tp_links\" id=\"tp_links_861\" style=\"display:none;\"><div class=\"tp_links_entry\"><ul class=\"tp_pub_list\"><li><i class=\"fas fa-globe\"><\/i><a class=\"tp_pub_list\" href=\"https:\/\/www.spiedigitallibrary.org\/conference-proceedings-of-spie\/9036\/90362R\/Tracked-ultrasound-calibration-studies-with-a-phantom-made-of-LEGO\/10.1117\/12.2044121.short\" title=\"https:\/\/www.spiedigitallibrary.org\/conference-proceedings-of-spie\/9036\/90362R\/Tr[...]\" target=\"_blank\">https:\/\/www.spiedigitallibrary.org\/conference-proceedings-of-spie\/9036\/90362R\/Tr[...]<\/a><\/li><\/ul><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('861','tp_links')\">Close<\/a><\/p><\/div><\/div><\/div><div class=\"tp_publication tp_publication_article\"><div class=\"tp_pub_info\"><p class=\"tp_pub_author\"> Ungi, Tamas;  Tokuda, Junichi;  Rankin, Adam;  Lasso, Andras;  Fichtinger, Gabor<\/p><p class=\"tp_pub_title\"><a class=\"tp_title_link\" href=\"http:\/\/www.spl.harvard.edu\/publications\/item\/view\/2334\" title=\"http:\/\/www.spl.harvard.edu\/publications\/item\/view\/2334\" target=\"blank\">Prototyping image-guided therapy applications using the SlicerIGT platform<\/a> <span class=\"tp_pub_type tp_  article\">Journal Article<\/span> <\/p><p class=\"tp_pub_additional\"><span class=\"tp_pub_additional_in\">In: <\/span><span class=\"tp_pub_additional_volume\">vol. 6, <\/span><span class=\"tp_pub_additional_pages\">pp. 61, <\/span><span class=\"tp_pub_additional_year\">2013<\/span>.<\/p><p class=\"tp_pub_menu\"><span class=\"tp_resource_link\"><a id=\"tp_links_sh_626\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('626','tp_links')\" title=\"Show links and resources\" style=\"cursor:pointer;\">Links<\/a><\/span> | <span class=\"tp_bibtex_link\"><a id=\"tp_bibtex_sh_626\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('626','tp_bibtex')\" title=\"Show BibTeX entry\" style=\"cursor:pointer;\">BibTeX<\/a><\/span><\/p><div class=\"tp_bibtex\" id=\"tp_bibtex_626\" style=\"display:none;\"><div class=\"tp_bibtex_entry\"><pre>@article{Ungi2013cb,<br \/>\r\ntitle = {Prototyping image-guided therapy applications using the SlicerIGT platform},<br \/>\r\nauthor = {Tamas Ungi and Junichi Tokuda and Adam Rankin and Andras Lasso and Gabor Fichtinger},<br \/>\r\nurl = {http:\/\/www.spl.harvard.edu\/publications\/item\/view\/2334},<br \/>\r\nyear  = {2013},<br \/>\r\ndate = {2013-03-01},<br \/>\r\nvolume = {6},<br \/>\r\npages = {61},<br \/>\r\naddress = {Crystal City, VA, USA},<br \/>\r\nkeywords = {},<br \/>\r\npubstate = {published},<br \/>\r\ntppubtype = {article}<br \/>\r\n}<br \/>\r\n<\/pre><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('626','tp_bibtex')\">Close<\/a><\/p><\/div><div class=\"tp_links\" id=\"tp_links_626\" style=\"display:none;\"><div class=\"tp_links_entry\"><ul class=\"tp_pub_list\"><li><i class=\"fas fa-globe\"><\/i><a class=\"tp_pub_list\" href=\"http:\/\/www.spl.harvard.edu\/publications\/item\/view\/2334\" title=\"http:\/\/www.spl.harvard.edu\/publications\/item\/view\/2334\" target=\"_blank\">http:\/\/www.spl.harvard.edu\/publications\/item\/view\/2334<\/a><\/li><\/ul><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('626','tp_links')\">Close<\/a><\/p><\/div><\/div><\/div><div class=\"tp_publication tp_publication_article\"><div class=\"tp_pub_info\"><p class=\"tp_pub_author\"> Ungi, Tamas;  Tokuda, Junichi;  Rankin, Adam;  Lasso, Andras;  Fichtinger, Gabor<\/p><p class=\"tp_pub_title\"><a class=\"tp_title_link\" href=\"http:\/\/www.spl.harvard.edu\/publications\/item\/view\/2334\" title=\"http:\/\/www.spl.harvard.edu\/publications\/item\/view\/2334\" target=\"blank\">Prototyping image-guided therapy applications using the SlicerIGT platform<\/a> <span class=\"tp_pub_type tp_  article\">Journal Article<\/span> <\/p><p class=\"tp_pub_additional\"><span class=\"tp_pub_additional_in\">In: <\/span><span class=\"tp_pub_additional_volume\">vol. 6, <\/span><span class=\"tp_pub_additional_pages\">pp. 61, <\/span><span class=\"tp_pub_additional_year\">2013<\/span>.<\/p><p class=\"tp_pub_menu\"><span class=\"tp_resource_link\"><a id=\"tp_links_sh_627\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('627','tp_links')\" title=\"Show links and resources\" style=\"cursor:pointer;\">Links<\/a><\/span> | <span class=\"tp_bibtex_link\"><a id=\"tp_bibtex_sh_627\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('627','tp_bibtex')\" title=\"Show BibTeX entry\" style=\"cursor:pointer;\">BibTeX<\/a><\/span><\/p><div class=\"tp_bibtex\" id=\"tp_bibtex_627\" style=\"display:none;\"><div class=\"tp_bibtex_entry\"><pre>@article{Ungi2013cc,<br \/>\r\ntitle = {Prototyping image-guided therapy applications using the SlicerIGT platform},<br \/>\r\nauthor = {Tamas Ungi and Junichi Tokuda and Adam Rankin and Andras Lasso and Gabor Fichtinger},<br \/>\r\nurl = {http:\/\/www.spl.harvard.edu\/publications\/item\/view\/2334},<br \/>\r\nyear  = {2013},<br \/>\r\ndate = {2013-03-01},<br \/>\r\nvolume = {6},<br \/>\r\npages = {61},<br \/>\r\naddress = {Crystal City, VA, USA},<br \/>\r\nkeywords = {},<br \/>\r\npubstate = {published},<br \/>\r\ntppubtype = {article}<br \/>\r\n}<br \/>\r\n<\/pre><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('627','tp_bibtex')\">Close<\/a><\/p><\/div><div class=\"tp_links\" id=\"tp_links_627\" style=\"display:none;\"><div class=\"tp_links_entry\"><ul class=\"tp_pub_list\"><li><i class=\"fas fa-globe\"><\/i><a class=\"tp_pub_list\" href=\"http:\/\/www.spl.harvard.edu\/publications\/item\/view\/2334\" title=\"http:\/\/www.spl.harvard.edu\/publications\/item\/view\/2334\" target=\"_blank\">http:\/\/www.spl.harvard.edu\/publications\/item\/view\/2334<\/a><\/li><\/ul><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('627','tp_links')\">Close<\/a><\/p><\/div><\/div><\/div><div class=\"tp_publication tp_publication_conference\"><div class=\"tp_pub_info\"><p class=\"tp_pub_author\"> Lasso, Andras;  Ungi, Tamas;  Pinter, Csaba;  Heffter, Tamas;  Rankin, Adam;  Fichtinger, Gabor<\/p><p class=\"tp_pub_title\"><a class=\"tp_title_link\" href=\"http:\/\/www.ncigt.org\/publications\/item\/view\/2334\" title=\"http:\/\/www.ncigt.org\/publications\/item\/view\/2334\" target=\"blank\">Prototyping Clinical Applications with the Public Library for Ultrasound (PLUS) Toolkit and 3D Slicer<\/a> <span class=\"tp_pub_type tp_  conference\">Conference<\/span> <\/p><p class=\"tp_pub_additional\"><span class=\"tp_pub_additional_booktitle\">6th Image Guided Therapy Workshop, <\/span><span class=\"tp_pub_additional_volume\">vol. 6, <\/span><span class=\"tp_pub_additional_address\">Crystal City, VA, USA, <\/span><span class=\"tp_pub_additional_year\">2013<\/span>.<\/p><p class=\"tp_pub_menu\"><span class=\"tp_resource_link\"><a id=\"tp_links_sh_623\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('623','tp_links')\" title=\"Show links and resources\" style=\"cursor:pointer;\">Links<\/a><\/span> | <span class=\"tp_bibtex_link\"><a id=\"tp_bibtex_sh_623\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('623','tp_bibtex')\" title=\"Show BibTeX entry\" style=\"cursor:pointer;\">BibTeX<\/a><\/span><\/p><div class=\"tp_bibtex\" id=\"tp_bibtex_623\" style=\"display:none;\"><div class=\"tp_bibtex_entry\"><pre>@conference{Lasso2013a,<br \/>\r\ntitle = {Prototyping Clinical Applications with the Public Library for Ultrasound (PLUS) Toolkit and 3D Slicer},<br \/>\r\nauthor = {Andras Lasso and Tamas Ungi and Csaba Pinter and Tamas Heffter and Adam Rankin and Gabor Fichtinger},<br \/>\r\nurl = {http:\/\/www.ncigt.org\/publications\/item\/view\/2334<br \/>\r\nhttps:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Lasso2013a.pdf},<br \/>\r\nyear  = {2013},<br \/>\r\ndate = {2013-03-01},<br \/>\r\nurldate = {2013-03-01},<br \/>\r\nbooktitle = {6th Image Guided Therapy Workshop},<br \/>\r\nvolume = {6},<br \/>\r\npages = {34},<br \/>\r\naddress = {Crystal City, VA, USA},<br \/>\r\nkeywords = {},<br \/>\r\npubstate = {published},<br \/>\r\ntppubtype = {conference}<br \/>\r\n}<br \/>\r\n<\/pre><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('623','tp_bibtex')\">Close<\/a><\/p><\/div><div class=\"tp_links\" id=\"tp_links_623\" style=\"display:none;\"><div class=\"tp_links_entry\"><ul class=\"tp_pub_list\"><li><i class=\"fas fa-globe\"><\/i><a class=\"tp_pub_list\" href=\"http:\/\/www.ncigt.org\/publications\/item\/view\/2334\" title=\"http:\/\/www.ncigt.org\/publications\/item\/view\/2334\" target=\"_blank\">http:\/\/www.ncigt.org\/publications\/item\/view\/2334<\/a><\/li><li><i class=\"fas fa-file-pdf\"><\/i><a class=\"tp_pub_list\" href=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Lasso2013a.pdf\" title=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Lasso2013a[...]\" target=\"_blank\">https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Lasso2013a[...]<\/a><\/li><\/ul><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('623','tp_links')\">Close<\/a><\/p><\/div><\/div><\/div><div class=\"tp_publication tp_publication_conference\"><div class=\"tp_pub_info\"><p class=\"tp_pub_author\"> Ungi, Tamas;  Tokuda, Junichi;  Rankin, Adam;  Lasso, Andras;  Fichtinger, Gabor<\/p><p class=\"tp_pub_title\"><a class=\"tp_title_link\" href=\"http:\/\/www.spl.harvard.edu\/publications\/item\/view\/2334\" title=\"http:\/\/www.spl.harvard.edu\/publications\/item\/view\/2334\" target=\"blank\">Prototyping image-guided therapy applications using the SlicerIGT platform<\/a> <span class=\"tp_pub_type tp_  conference\">Conference<\/span> <\/p><p class=\"tp_pub_additional\"><span class=\"tp_pub_additional_booktitle\">6th Image Guided Therapy Workshop, <\/span><span class=\"tp_pub_additional_volume\">vol. 6, <\/span><span class=\"tp_pub_additional_address\">Crystal City, VA, USA, <\/span><span class=\"tp_pub_additional_year\">2013<\/span>.<\/p><p class=\"tp_pub_menu\"><span class=\"tp_resource_link\"><a id=\"tp_links_sh_625\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('625','tp_links')\" title=\"Show links and resources\" style=\"cursor:pointer;\">Links<\/a><\/span> | <span class=\"tp_bibtex_link\"><a id=\"tp_bibtex_sh_625\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('625','tp_bibtex')\" title=\"Show BibTeX entry\" style=\"cursor:pointer;\">BibTeX<\/a><\/span><\/p><div class=\"tp_bibtex\" id=\"tp_bibtex_625\" style=\"display:none;\"><div class=\"tp_bibtex_entry\"><pre>@conference{Ungi2013c,<br \/>\r\ntitle = {Prototyping image-guided therapy applications using the SlicerIGT platform},<br \/>\r\nauthor = {Tamas Ungi and Junichi Tokuda and Adam Rankin and Andras Lasso and Gabor Fichtinger},<br \/>\r\nurl = {http:\/\/www.spl.harvard.edu\/publications\/item\/view\/2334<br \/>\r\nhttps:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Ungi2013c.pdf},<br \/>\r\nyear  = {2013},<br \/>\r\ndate = {2013-03-01},<br \/>\r\nurldate = {2013-03-01},<br \/>\r\nbooktitle = {6th Image Guided Therapy Workshop},<br \/>\r\nvolume = {6},<br \/>\r\npages = {61},<br \/>\r\naddress = {Crystal City, VA, USA},<br \/>\r\nkeywords = {},<br \/>\r\npubstate = {published},<br \/>\r\ntppubtype = {conference}<br \/>\r\n}<br \/>\r\n<\/pre><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('625','tp_bibtex')\">Close<\/a><\/p><\/div><div class=\"tp_links\" id=\"tp_links_625\" style=\"display:none;\"><div class=\"tp_links_entry\"><ul class=\"tp_pub_list\"><li><i class=\"fas fa-globe\"><\/i><a class=\"tp_pub_list\" href=\"http:\/\/www.spl.harvard.edu\/publications\/item\/view\/2334\" title=\"http:\/\/www.spl.harvard.edu\/publications\/item\/view\/2334\" target=\"_blank\">http:\/\/www.spl.harvard.edu\/publications\/item\/view\/2334<\/a><\/li><li><i class=\"fas fa-file-pdf\"><\/i><a class=\"tp_pub_list\" href=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Ungi2013c.pdf\" title=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Ungi2013c.[...]\" target=\"_blank\">https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Ungi2013c.[...]<\/a><\/li><\/ul><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('625','tp_links')\">Close<\/a><\/p><\/div><\/div><\/div><div class=\"tp_publication tp_publication_conference\"><div class=\"tp_pub_info\"><p class=\"tp_pub_author\"> Ogilvie, Colleen;  Martin, Cara;  Law, Trevor;  Vandersleen, Philip;  Pinter, Csaba;  Rankin, Adam;  Fichtinger, Gabor<\/p><p class=\"tp_pub_title\"><a class=\"tp_title_link\" href=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Ogilvie2013.pdf\" title=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Ogilvie2013.pdf\" target=\"blank\">Automated Brachytherapy Calibration: System and Phantom Design<\/a> <span class=\"tp_pub_type tp_  conference\">Conference<\/span> <\/p><p class=\"tp_pub_additional\"><span class=\"tp_pub_additional_booktitle\">ImNO2013 - Imaging Network Ontario Symposium, <\/span><span class=\"tp_pub_additional_address\">Toronto, Canada, February 4th-5th 2013, <\/span><span class=\"tp_pub_additional_year\">2013<\/span>.<\/p><p class=\"tp_pub_menu\"><span class=\"tp_resource_link\"><a id=\"tp_links_sh_261\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('261','tp_links')\" title=\"Show links and resources\" style=\"cursor:pointer;\">Links<\/a><\/span> | <span class=\"tp_bibtex_link\"><a id=\"tp_bibtex_sh_261\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('261','tp_bibtex')\" title=\"Show BibTeX entry\" style=\"cursor:pointer;\">BibTeX<\/a><\/span><\/p><div class=\"tp_bibtex\" id=\"tp_bibtex_261\" style=\"display:none;\"><div class=\"tp_bibtex_entry\"><pre>@conference{Ogilvie2013,<br \/>\r\ntitle = {Automated Brachytherapy Calibration: System and Phantom Design},<br \/>\r\nauthor = {Colleen Ogilvie and Cara Martin and Trevor Law and Philip Vandersleen and Csaba Pinter and Adam Rankin and Gabor Fichtinger},<br \/>\r\nurl = {https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Ogilvie2013.pdf<br \/>\r\nhttps:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Ogilvie2013-poster.pdf},<br \/>\r\nyear  = {2013},<br \/>\r\ndate = {2013-02-01},<br \/>\r\nurldate = {2013-02-01},<br \/>\r\nbooktitle = {ImNO2013 - Imaging Network Ontario Symposium},<br \/>\r\naddress = {Toronto, Canada, February 4th-5th 2013},<br \/>\r\nkeywords = {},<br \/>\r\npubstate = {published},<br \/>\r\ntppubtype = {conference}<br \/>\r\n}<br \/>\r\n<\/pre><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('261','tp_bibtex')\">Close<\/a><\/p><\/div><div class=\"tp_links\" id=\"tp_links_261\" style=\"display:none;\"><div class=\"tp_links_entry\"><ul class=\"tp_pub_list\"><li><i class=\"fas fa-file-pdf\"><\/i><a class=\"tp_pub_list\" href=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Ogilvie2013.pdf\" title=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Ogilvie201[...]\" target=\"_blank\">https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Ogilvie201[...]<\/a><\/li><li><i class=\"fas fa-file-pdf\"><\/i><a class=\"tp_pub_list\" href=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Ogilvie2013-poster.pdf\" title=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Ogilvie201[...]\" target=\"_blank\">https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Ogilvie201[...]<\/a><\/li><\/ul><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('261','tp_links')\">Close<\/a><\/p><\/div><\/div><\/div><div class=\"tp_publication tp_publication_conference\"><div class=\"tp_pub_info\"><p class=\"tp_pub_author\"> Ungi, Tamas;  Lasso, Andras;  Pinter, Csaba;  Rankin, Adam;  Fichtinger, Gabor<\/p><p class=\"tp_pub_title\"><a class=\"tp_title_link\" href=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Ungi2013a.pdf\" title=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Ungi2013a.pdf\" target=\"blank\">SlicerIGT: Open-source platform for image-guided needle interventions<\/a> <span class=\"tp_pub_type tp_  conference\">Conference<\/span> <\/p><p class=\"tp_pub_additional\"><span class=\"tp_pub_additional_booktitle\">ImNO2013 - Imaging Network Ontario Symposium, <\/span><span class=\"tp_pub_additional_address\">Toronto, ON, Canada, <\/span><span class=\"tp_pub_additional_year\">2013<\/span>.<\/p><p class=\"tp_pub_menu\"><span class=\"tp_resource_link\"><a id=\"tp_links_sh_630\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('630','tp_links')\" title=\"Show links and resources\" style=\"cursor:pointer;\">Links<\/a><\/span> | <span class=\"tp_bibtex_link\"><a id=\"tp_bibtex_sh_630\" class=\"tp_show\" onclick=\"teachpress_pub_showhide('630','tp_bibtex')\" title=\"Show BibTeX entry\" style=\"cursor:pointer;\">BibTeX<\/a><\/span><\/p><div class=\"tp_bibtex\" id=\"tp_bibtex_630\" style=\"display:none;\"><div class=\"tp_bibtex_entry\"><pre>@conference{Ungi2013a,<br \/>\r\ntitle = {SlicerIGT: Open-source platform for image-guided needle interventions},<br \/>\r\nauthor = {Tamas Ungi and Andras Lasso and Csaba Pinter and Adam Rankin and Gabor Fichtinger},<br \/>\r\nurl = {https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Ungi2013a.pdf},<br \/>\r\nyear  = {2013},<br \/>\r\ndate = {2013-02-01},<br \/>\r\nurldate = {2013-02-01},<br \/>\r\nbooktitle = {ImNO2013 - Imaging Network Ontario Symposium},<br \/>\r\naddress = {Toronto, ON, Canada},<br \/>\r\nkeywords = {},<br \/>\r\npubstate = {published},<br \/>\r\ntppubtype = {conference}<br \/>\r\n}<br \/>\r\n<\/pre><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('630','tp_bibtex')\">Close<\/a><\/p><\/div><div class=\"tp_links\" id=\"tp_links_630\" style=\"display:none;\"><div class=\"tp_links_entry\"><ul class=\"tp_pub_list\"><li><i class=\"fas fa-file-pdf\"><\/i><a class=\"tp_pub_list\" href=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Ungi2013a.pdf\" title=\"https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Ungi2013a.[...]\" target=\"_blank\">https:\/\/labs.cs.queensu.ca\/perklab\/wp-content\/uploads\/sites\/3\/2024\/02\/Ungi2013a.[...]<\/a><\/li><\/ul><\/div><p class=\"tp_close_menu\"><a class=\"tp_close\" onclick=\"teachpress_pub_showhide('630','tp_links')\">Close<\/a><\/p><\/div><\/div><\/div><\/div><\/div><\/div>\n","protected":false},"featured_media":0,"template":"","meta":{"_acf_changed":false,"_uag_custom_page_level_css":"","site-sidebar-layout":"default","site-content-layout":"","ast-site-content-layout":"default","site-content-style":"default","site-sidebar-style":"default","ast-global-header-display":"","ast-banner-title-visibility":"","ast-main-header-display":"","ast-hfb-above-header-display":"","ast-hfb-below-header-display":"","ast-hfb-mobile-header-display":"","site-post-title":"","ast-breadcrumbs-content":"","ast-featured-img":"","footer-sml-layout":"","ast-disable-related-posts":"","theme-transparent-header-meta":"","adv-header-id-meta":"","stick-header-meta":"","header-above-stick-meta":"","header-main-stick-meta":"","header-below-stick-meta":"","astra-migrate-meta-layouts":"default","ast-page-background-enabled":"default","ast-page-background-meta":{"desktop":{"background-color":"var(--ast-global-color-4)","background-image":"","background-repeat":"repeat","background-position":"center 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!important}@media (max-width: 976px){.uag-blocks-common-selector{z-index:var(--z-index-tablet) !important}}@media (max-width: 767px){.uag-blocks-common-selector{z-index:var(--z-index-mobile) !important}}\n\";s:2:\"js\";s:0:\"\";s:18:\"current_block_list\";a:7:{i:0;s:11:\"core\/search\";i:1;s:10:\"core\/group\";i:2;s:12:\"core\/heading\";i:3;s:17:\"core\/latest-posts\";i:4;s:20:\"core\/latest-comments\";i:5;s:13:\"core\/archives\";i:6;s:15:\"core\/categories\";}s:8:\"uag_flag\";b:0;s:11:\"uag_version\";s:10:\"1771033544\";s:6:\"gfonts\";a:0:{}s:10:\"gfonts_url\";s:0:\"\";s:12:\"gfonts_files\";a:0:{}s:14:\"uag_faq_layout\";b:0;}"]},"uagb_featured_image_src":{"full":false,"thumbnail":false,"medium":false,"medium_large":false,"large":false,"1536x1536":false,"2048x2048":false},"uagb_author_info":{"display_name":"Doug Martin","author_link":"https:\/\/labs.cs.queensu.ca\/perklab\/author\/"},"uagb_comment_info":0,"uagb_excerpt":"Adam Rankin PhD Student Western University Member from 2012 to present Adam worked with the Perk Lab at Queen&#8217;s as staff engineer for 2 years before he started PhD at Western University. Schumacher, Mark; Lasso, Andras; Cumming, Ian; Rankin, Adam; Falkson, Conrad; Schreiner, John; Joshi, C. P.; Fichtinger, Gabor3D-printed surface mould applicator for high-dose-rate brachytherapy&hellip;","_links":{"self":[{"href":"https:\/\/labs.cs.queensu.ca\/perklab\/wp-json\/wp\/v2\/qsc_member\/2441","targetHints":{"allow":["GET"]}}],"collection":[{"href":"https:\/\/labs.cs.queensu.ca\/perklab\/wp-json\/wp\/v2\/qsc_member"}],"about":[{"href":"https:\/\/labs.cs.queensu.ca\/perklab\/wp-json\/wp\/v2\/types\/qsc_member"}],"version-history":[{"count":0,"href":"https:\/\/labs.cs.queensu.ca\/perklab\/wp-json\/wp\/v2\/qsc_member\/2441\/revisions"}],"wp:attachment":[{"href":"https:\/\/labs.cs.queensu.ca\/perklab\/wp-json\/wp\/v2\/media?parent=2441"}],"curies":[{"name":"wp","href":"https:\/\/api.w.org\/{rel}","templated":true}]}}