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Experimental study of working area of an endosurgical instrument

Authors: Gabuzov G.G.
Published in issue: #7(36)/2019
DOI: 10.18698/2541-8009-2019-7-499


Category: Medical sciences | Chapter: Medical equipment and devices

Keywords: surgery, endosurgery, laparoscopy, surgical instruments, working area of a surgical instrument, visualization of movements of a surgical instrument, gyroscope, Arduino
Published: 30.07.2019

This article presents the study of working areas of surgical instruments, the results of which will help to formulate the basic requirements for the endosurgical manipulator. A review of existing methods for solving this problem was made. A new system was developed for determining the working area of an endosurgical instrument. The system was tested on a medical robot in order to check its efficiency and compare experimental and actual data. An experimental study was conducted to compare the working areas of two surgical instruments on a laparoscopic simulator when performing a virtual cholecystectomy. The article contains the results of processing the experimental data obtained during the experiment. The efficiency of the developed system was confirmed.


References

[1] Pappas T.N., Harnisch M., Pryor A.D., eds. Atlas of laparoscopic surgery. Current Medicine Group, 2007. (Russ. ed.: Laparoskopicheskaya khirurgiya. Atlas. Moscow, GEOTAR-Media Publ., 2012.)

[2] Shevchenko Yu.L., Karpov O.E., Vetshev P.S., et al. Robotics in surgery: foundation, reality, new promises. Vestnik NMKhTs im. N.I. Pirogova [Bulletin of Pirogov National Medical & Surgical Center], 2008, vol. 3, no. 2, pp. 72–76 (in Russ.).

[3] Finaev V.I., Sinyavskaya E.D., Shestova E.A., et al. Design of the positioning method of the robotic holder of laparoscope basing on computational geometry. Izvestiya YuFU. Tekhnicheskie nauki [Izvestiya SFedU. Engineering Sciences], 2016, no. 2, pp. 80–89 (in Russ.).

[4] Shestova E.A., Sinyavskaya E.D., Finaev V.I., et al. Design of the method of positioning and tracking the surgical instruments by the fulfillment of the laparoscopic operations. Izvestiya YuFU. Tekhnicheskie nauki [Izvestiya SFedU. Engineering Sciences], 2016, no. 5, pp. 30–40 (in Russ.).

[5] Polaris Spectra and Vicra. ndigital.com: website. URL: https://www.ndigital.com/medical/products/polaris-family/ (accessed: 12.05.2019).

[6] Siti Nor Zawani A., Eileen L.M.S., Yeong Ch.F., et al. Assessment methods for surgical skill. ICMIBE, 2011. URL: http://eprints.utm.my/id/eprint/45614/ (accessed: 12.05.2019).

[7] Ob’’ektivnaya otsenka znaniy i umeniy, poluchennykh pri ispol’zovanii obrazovatel’nykh simulyatsionnykh tekhnologiy v khirurgii [Objective evaluation of knowledge and skills achieved by educational simulation technologies in surgery]. rosomed.ru: website (in Russ.). URL: https://rosomed.ru/ckeditor_assets/attachments/49/2014-7b-04.pdf (accessed: 12.05.2019).

[8] Patriot. est-kl.com: website. URL: https://est-kl.com/images/PDF/Polhemus/PATRIOT_Brochure.pdf (accessed: 12.05.2019).

[9] Shamsil A.M. Metrics for evaluating surgical microscope usage during myringotomy. URL: https://ir.lib.uwo.ca/etd/764 (accessed: 12.05.2019).

[10] Reiter A., Allen P.K., Zhao T. Feature classification for tracking articulated surgical tools. MICCAI, 2012, pp. 592–600. DOI: 10.1007/978-3-642-33418-4_73 URL: https://link.springer.com/chapter/10.1007/978-3-642-33418-4_73

[11] Groeger M., Arbter K., Hirzinger G. Motion tracking for minimally invasive robotic surgery. In: Medical Robotics. IntechOpen, 2008, pp. 117–148.

[12] Kinect — kak ustroen i rabotaet [Kinect – how it is organized and how it works]. aver.ru: website (in Russ.). URL: http://aver.ru/interesno/kinect-kinekt-kak-ustroen-i-rabotaet/ (accessed: 12.05.2019).

[13] Ren Z., Yuan J., Zhang Z. Robust hand gesture recognition based on nger-earth mover’s distance with a commodity depth camera. ACM MM, 2011, pp. 1093–1096. DOI: 10.1145/2072298.2071946 URL: https://dl.acm.org/citation.cfm?doid=2072298.2071946

[14] Sterrad NX. septo.net: website. URL: https://septo.net/product/sterrad-nx-2/ (accessed: 12.05.2019).

[15] Batanov A.F., Savrasov G.V., Bashlay A.P., et al. Multifunctional surgeon assistance manipulator. Biomeditsinskaya radioelektronika [Biomedical Radioelectronics], 2014, no. 10, pp. 21–29 (in Russ.).

[16] LapSim, khirurgicheskiy virtual’nyy simulyator [LapSim, surgery virtual simulator]. intermedica.biz: website (in Russ.) URL: https://intermedica.biz/catalog/virtualnaa-medicina/hirurgia/otkrytaa-i-endoskopiceskaa-hirurgia-urologia-ginekologia-1 (accessed: 12.05.2019).