Digital planning of orthodontic dental treatment: A literature review
Samvel V. Apresyan , Alexandr G. Stepanov , Oksana O. Moskovec , Ellina A. Malieva
Russian Journal of Dentistry ›› 2024, Vol. 28 ›› Issue (6) : 601 -611.
Digital planning of orthodontic dental treatment: A literature review
This paper presents data on the incidence of malocclusion. It discusses the advantages of digital impressions over analog impressions in dental practice. The literature on software, digital planning methods, and the features of modern orthodontic treatment devices used in dentistry is reviewed. Comparative characteristics of each proposed method are provided. Furthermore, the potential applications of combination planning approaches, such as cone beam computed tomography and intraoral scanning, are discussed.
The review describes in detail the most common digital solutions used by dentists during orthodontic treatment planning, as well as their advantages and disadvantages.
computer simulation in dentistry / intraoral scanner / digital impression / orthodontic treatment / virtual articulator / axiograph
| [1] |
Tsvetkova MA, Aksamit LA. Orthodontics and pathology of the oral mucosa. Moscow: MEDpress-inform; 2023. 96 p. (In Russ.) ISBN: 978-5-907632-84-4 |
| [2] |
Цветкова М.А., Аксамит Л.А. Ортодонтия и патология слизистой оболочки рта. Москва: МЕДпресс-информ, 2023. 96 с. ISBN: 978-5-907632-84-4 |
| [3] |
Persin LS. Orthodontics. National guidelines: Treatment of dental anomalies: in 2 volumes. Vol. 2. Moscow: GEOTAR-Media; 2020. 376 p. (In Russ.) doi: 10.33029/9704-5409-1-2-ONRD-2020-1-376 |
| [4] |
Персина Л.С. Ортодонтия. Национальное руководство: лечение зубочелюстных аномалий. В 2 т. Т. 2. Москва: ГЭОТАР-Медиа, 2020. 376 с. doi: 10.33029/9704-5409-1-2-ONRD-2020-1-376 |
| [5] |
Laganà G, Venza N, Borzabadi-Farahani A, et al. Dental anomalies: prevalence and associations between them in a large sample of non-orthodontic subjects, a cross-sectional study. BMC Oral Health. 2017;17(1):62. doi: 10.1186/s12903-017-0352-y |
| [6] |
Laganà G., Venza N., Borzabadi-Farahani A., et al. Dental anomalies: prevalence and associations between them in a large sample of non-orthodontic subjects, a cross-sectional study // BMC Oral Health. 2017. Vol. 17, N. 1. P. 62. doi: 10.1186/s12903-017-0352-y |
| [7] |
Kuroedova VD, Makarova AN. The prevalence of dental anomalies in adults and the proportion of asymmetric forms among them. Svit medicini ta biologii. 2012;8(4):031–035. (In Russ.) EDN: PONXAT |
| [8] |
Куроедова В.Д., Макарова А.Н. Распространенность зубочелюстных аномалий у взрослых и доля асимметричных форм среди них // Свiт медицини та бiологii. 2012. Т. 8, № 4. С. 031–035. EDN: PONXAT |
| [9] |
Lepilin AV, Dmitrienko SV, Domenyuk DA, et al. Dependence of stress strain of dental hard tissues and periodont on horizontal deformation degree. Archive Euromedica. 2019;9(1):173–194. EDN: VMYAFR doi: 10.35630/2199-885X/2019/9/1/173 |
| [10] |
Lepilin A.V., Dmitrienko S.V., Domenyuk D.A., et al. Dependence of stress strain of dental hard tissues and periodont on horizontal deformation degree // Archiv EuroMedica. 2019. Vol. 9, N. 1. P. 173–174. EDN: VMYAFR doi: 10.35630/2199-885X/2019/9/1/173 |
| [11] |
Yuzbasioglu E, Kurt H, Turunc R, Bilir H. Comparison of digital and conventional impression techniques: evaluation of patients’ perception, treatment comfort, effectiveness and clinical outcomes. BMC Oral Health. 2014;14:10. doi: 10.1186/1472-6831-14-10 |
| [12] |
Yuzbasioglu E., Kurt H., Turunc R., Bilir H. Comparison of digital and conventional impression techniques: evaluation of patients’ perception, treatment comfort, effectiveness and clinical outcomes // BMC Oral Health. 2014. Vol. 14. P. 10. doi: 10.1186/1472-6831-14-10 |
| [13] |
Mangano F, Gandolfi A, Luongo G, Logozzo S. Intraoral scanners in dentistry: a review of the current literature. BMC Oral Health. 2017;17(1):149. doi: 10.1186/s12903-017-0442-x |
| [14] |
Mangano F., Gandolfi A., Luongo G., Logozzo S. Intraoral scanners in dentistry: a review of the current literature // BMC Oral Health. 2017. Vol. 17, N. 1. P. 149. doi: 10.1186/s12903-017-0442-x |
| [15] |
Saccomanno S, Saran S, Vanella V, et al. The potential of digital impression in orthodontics. Dent J (Basel). 2022;10(8):147. doi: 10.3390/dj10080147 |
| [16] |
Saccomanno S., Saran S., Vanella V., et al. The potential of digital impression in orthodontics // Dent J (Basel). 2022. Vol. 10, N. 8. Р. 147. doi: 10.3390/dj10080147 |
| [17] |
Pahuja N, Doneria D, Mathur S. Comparative evaluation of accuracy of intraoral scanners vs conventional method in establishing dental measurements in mixed dentition. World J Dent. 2023;14 (5):419–424. doi: 10.5005/jp-journals-10015-2231 |
| [18] |
Pahuja N., Doneria D., Mathur S. Comparative evaluation of accuracy of intraoral scanners vs conventional method in establishing dental measurements in mixed dentition // World J Dent. 2023. Vol. 14, N. 5. Р. 419–424. doi: 10.5005/jp-journals-10015-2231 |
| [19] |
Arsenina OI, Komarova AV, Popova NV. Digital technologies for treatment of class ii patients with musculo-articular dysfunction. Ortodontija. 2022;99(3):28–33. EDN: GQFKPP |
| [20] |
Арсенина О.И., Комарова А.В., Попова Н.В. Цифровые технологии для эффективного лечения пациентов с дистальной окклюзией и мышечно-суставной дисфункцией // Ортодонтия. 2022. № 3. С. 28–33. EDN: GQFKPP |
| [21] |
Ivanov SYu, Dmitrienko SV, Domenyuk DA, et al. Variability of morphometric parameters of dental arches and bone structures of the temporomandibular joint in physiological variants of occlusive relationships. The Dental Institute. 2021;(3):44–47. EDN: JWFDUL |
| [22] |
Иванов С.Ю., Дмитриенко С.В., Доменюк Д.А., и др. Вариабельность морфометрических параметров зубных дуг и костных структур височно-нижнечелюстного сустава при физиологических вариантах окклюзионных взаимоотношений // Институт стоматологии. 2021. № 3. С. 44–47. EDN: JWFDUL |
| [23] |
Hadadpour S, Noruzian M, Abdi AH, et al. Can 3D imaging and digital software increase the ability to predict dental arch form after orthodontic treatment? Am J Orthod Dentofacial Orthop. 2019;156(6):870–877. doi: 10.1016/j.ajodo.2019.07.009 |
| [24] |
Hadadpour S., Noruzian M., Abdi A.H., et al. Can 3D imaging and digital software increase the ability to predict dental arch form after orthodontic treatment? // Am J Orthod Dentofacial Orthop. 2019. Vol. 156, N. 6 P. 870–877. doi: 10.1016/j.ajodo.2019.07.009 |
| [25] |
Ermakov AV, Losev AV. Intraoral scanners in orthodontics review. Russian Journal of Stomatology. 2023;16(3):44–48. EDN: XNCKJQ doi: 10.17116/rosstomat20231603144 |
| [26] |
Ермаков А.В., Лосев А.В. Сравнительный обзор интраоральных сканеров для врачей-ортодонтов // Российская стоматология. 2023. Т. 16, № 3. С. 44–48. EDN: XNCKJQ doi: 10.17116/rosstomat20231603144 |
| [27] |
Lee KM. Comparison of two intraoral scanners based on three-dimensional surface analysis. Prog Orthod. 2018;19(1):6. doi: 10.1186/s40510-018-0205-5 |
| [28] |
Lee K.M. Comparison of two intraoral scanners based on three-dimensional surface analysis // Prog Orthod. 2018. Vol. 19, N. 1. P. 6. doi: 10.1186/s40510-018-0205-5 |
| [29] |
Schlenz MA, Schupp B, Schmidt A, et al. New caries diagnostic tools in intraoral scanners: a comparative in vitro study to established methods in permanent and primary teeth. Sensors (Basel). 2022;22(6):2156. doi: 10.3390/s22062156 |
| [30] |
Schlenz M.A., Schupp B., Schmidt A., et al. New caries diagnostic tools in intraoral scanners: a comparative in vitro study to established methods in permanent and primary teeth // Sensors (Basel). 2022. Vol. 22, N. 6. P. 2156. doi: 10.3390/s22062156 |
| [31] |
Deferm JT, Schreurs R, Baan F, et al. Validation of 3D documentation of palatal soft tissue shape, color, and irregularity with intraoral scanning. Clin Oral Investig. 2018;22(3):1303–1309. doi: 10.1007/s00784-017-2198-8 |
| [32] |
Deferm J.T., Schreurs R., Baan F., et al. Validation of 3D documentation of palatal soft tissue shape, color, and irregularity with intraoral scanning // Clin Oral Investig. 2018. Vol. 22, N. 3. P. 1303–1309. doi: 10.1007/s00784-017-2198-8 |
| [33] |
Borodina ID, Grigoryants LS, Gadzhiev MA, et al. Comparative evaluation of the accuracy of the dental arch display using modern intraoral three-dimensional scanners. Russian Journal of Dentistry. 2022;26(4):287–297. EDN: NPAGCH doi: 10.17816/1728-2802-2022-26-4-287-297 |
| [34] |
Бородина И.Д., Григорьянц Л.С., Гаджиев М.А., и др. Сравнительная оценка точности отображения зубной дуги при помощи современных интраоральных 3D-сканеров // Российский стоматологический журнал. 2022. Т. 26, № 4. С. 287–297. EDN: NPAGCH doi: 10.17816/1728-2802-2022-26-4-287-297 |
| [35] |
Rybakov A. Optimization of orthodontic treatment based on neural networks, finite element analysis and digital maps of the oral mucosa [dissertation]. Saint Petersburg; 2024. Available from: https://disser.spbu.ru/files/2024/disser_rybakov_aleksandr.pdf (In Russ.) EDN: WCXDWJ |
| [36] |
Рыбаков А. Оптимизация ортодонтического лечения на основе нейронных сетей, анализа конечными элементами и цифровых карт слизистой полости рта: дис. … канд. мед. наук. Санкт-Петербург, 2024. Режим доступа: https://disser.spbu.ru/files/2024/disser_rybakov_aleksandr.pdf Дата обращения: 07.08.2024. EDN: WCXDWJ |
| [37] |
Rozov RA, Trezubov VN, Shalaginova AV, Koussevitsky LYa. Comparative in vitro evaluation of the accuracy of dental open system scanners. Parodontologiya. 2020;25(3):231–236. EDN: MMDCTO doi: 10.33925/1683-3759-2020-25-3-231-236 |
| [38] |
Розов Р.А., Трезубов В.Н., Шалагинова А.В., Кусевицкий Л.Я. Сравнительная оценка in vitro точности стоматологических сканеров открытого типа при получении модели зубного ряда // Пародонтология. 2020. Т. 25, № 3. С. 231–236. EDN: MMDCTO doi: 10.33925/1683-3759-2020-25-3-231-236 |
| [39] |
Natsubori R, Fukazawa S, Chiba T, et al. In vitro comparative analysis of scanning accuracy of intraoral and laboratory scanners in measuring the distance between multiple implants. Int J Implant Dent. 2022;8(1):18. doi: 10.1186/s40729-022-00416-4 |
| [40] |
Natsubori R., Fukazawa S., Chiba T., et al. In vitro comparative analysis of scanning accuracy of intraoral and laboratory scanners in measuring the distance between multiple implants // Int J Implant Dent. 2022. Vol. 8, N. 1. P. 18. doi: 10.1186/s40729-022-00416-4 |
| [41] |
Park GH, Son K, Lee KB. Feasibility of using an intraoral scanner for a complete-arch digital scan. J Prosthet Dent. 2019;121(5):803–810. doi: 10.1016/j.prosdent.2018.07.014 |
| [42] |
Park G.H., Son K., Lee K.B. Feasibility of using an intraoral scanner for a complete-arch digital scan // J Prosthet Dent. 2019. Vol. 121, N. 5. P. 803–810. doi: 10.1016/j.prosdent.2018.07.014 |
| [43] |
Apresyan SV. Integrated digital planning of dental treatment [dissertation]. Moscow; 2020. Available from: https://www.dissercat.com/content/kompleksnoe-tsifrovoe-planirovanie-stomatologicheskogo-lecheniya (In Russ.) EDN: LWZSAG |
| [44] |
Апресян С.В. Комплексное цифровое планирование стоматологического лечения: дис. ... докт. мед. наук. Москва, 2020. Режим доступа: https://www.dissercat.com/content/kompleksnoe-tsifrovoe-planirovanie-stomatologicheskogo-lecheniya Дата обращения: 07.08.2024. EDN: LWZSAG |
| [45] |
Lin H, Pan Y, Wei X, et al. Comparison of the performance of various virtual articulator mounting procedures: a self-controlled clinical study. Clin Oral Investig. 2023;27(7):4017–4028. doi: 10.1007/s00784-023-05028-9 |
| [46] |
Lin H., Pan Y., Wei X., et al. Comparison of the performance of various virtual articulator mounting procedures: a self-controlled clinical study // Clin Oral Investig. 2023. Vol. 27, N. 7. P. 4017–4028. doi: 10.1007/s00784-023-05028-9 |
| [47] |
Thurzo A, Strunga M, Havlínová R, et al. Smartphone-based facial scanning as a viable tool for facially driven orthodontics? Sensors (Basel). 2022;22(20):7752. doi: 10.3390/s22207752 |
| [48] |
Thurzo A., Strunga M., Havlínová R., et al. Smartphone-based facial scanning as a viable tool for facially driven orthodontics? // Sensors (Basel). 2022. Vol. 22, N. 20. P. 7752. doi: 10.3390/s22207752 |
| [49] |
Apresyan SV, Stepanov AG, Antonik MM, et al. Complex digital planning of stomatological treatment (practical guide). Apresyan SV, editor. Moscow: Mozartika; 2020. (In Russ). EDN: BFHWAT |
| [50] |
Апресян С.В., Степанов А.Г., Антоник М.М., и др. Комплексное цифровое планирование стоматологического лечения (практическое руководство) / под ред. С.В. Апресяна. Москва: Мозартика, 2020. EDN: BFHWAT |
| [51] |
De Vos W, Casselman J, Swennen GR. Cone-beam computerized tomography (CBCT) imaging of the oral and maxillofacial region: a systematic review of the literature. Int J Oral Maxillofac Surg. 2009;38(6):609–625. doi: 10.1016/j.ijom.2009.02.028 |
| [52] |
De Vos W., Casselman J., Swennen G.R. Cone-beam computerized tomography (CBCT) imaging of the oral and maxillofacial region: a systematic review of the literature // Int J Oral Maxillofac Surg. 2009. Vol. 386, N. 6. P. 609–625. doi: 10.1016/j.ijom.2009.02.028 |
| [53] |
Khvostenko EA. Orthodontic treatment of patients with dentition anomalies using fixed devices and orthodontic screws [dissertation abstract]. Moscow; 2023. (In Russ.) EDN: VFHWAF |
| [54] |
Хвостенко Е.А. Ортодонтическое лечение пациентов с аномалиями зубных рядов с применением несъемных аппаратов и ортодонтических минивинтов: автореф. дис. … канд. мед. наук. Москва, 2023. EDN: VFHWAF |
| [55] |
Makhortova PI. Clinical and radiological comparison of methods of combined treatment of patients with narrowing of the upper jaw [dissertation]. Moscow; 2020. Available from: https://www.dissercat.com/content/kliniko-rentgenologicheskoe-sravnenie-metodov-kombinirovannogo-lecheniya-patsientov-s-suzhen (In Russ). EDN: TQEVDI |
| [56] |
Махортова П.И. Клинико-рентгенологическое сравнение методов комбинированного лечения пациентов с сужением верхней челюсти: дис. … канд. мед. наук. Москва, 2020. Режим доступа: https://www.dissercat.com/content/kliniko-rentgenologicheskoe-sravnenie-metodov-kombinirovannogo-lecheniya-patsientov-s-suzhen Дата обращения: 07.08.2024. EDN: TQEVDI |
| [57] |
Vasiliev Yu. A. Digital microfocus technology of radiography in the assessment of the anatomical structure of teeth: an experimental study [dissertation]. Saint Petersburg; 2015. Available from: https://viewer.rsl.ru/ru/rsl01005565409?page=1&rotate=0&theme=white (In Russ). EDN: NEBUBX |
| [58] |
Васильев Ю.А. Цифровая микрофокусная технология рентгенографии в оценке анатомического строения зубов: экспериментальное исследование: дис. ... канд. мед. наук. Санкт-Петербург, 2015. Режим доступа: https://viewer.rsl.ru/ru/rsl01005565409?page=1&rotate=0&theme=white Дата обращения: 07.08.2024. EDN: NEBUBX |
| [59] |
Staroverov NE, Gryaznov AYu, Potrakhov NN, et al. New methods of digital processing of microfocus X-ray images. Medicinskaja tehnika. 2018;6(312):53–55. (In Russ.) EDN: YWIGMX |
| [60] |
Староверов Н.Е., Грязнов А.Ю., Потрахов Н.Н., и др. Новые методы цифровой обработки микрофокусных рентгеновских изображений // Медицинская техника. 2018. Т. 6, № 312. С. 53–55. EDN: YWIGMX |
| [61] |
Nichipore EA. The possibilities of microfocus cone-beam computed tomography in the visualization of dental materials and foreign objects: an experimental study [dissertation]. Moscow, 2021. Available from: https://dissov.msmsu-portal.ru/image/image/2023/06/02/Диссертация_Ничипор_ЕА.pdf (In Russ.) EDN: VUIOLH |
| [62] |
Ничипор Е.А. Возможности микрофокусной конусно-лучевой компьютерной томографии в визуализации стоматологических материалов и инородных объектов (экспериментальное исследование): дис. ... канд. мед. наук. Москва, 2021. Режим доступа: https://dissov.msmsu-portal.ru/image/image/2023/06/02/Диссертация_ Ничипор_ЕА.pdf Дата обращения: 07.08.2024. EDN: VUIOLH |
| [63] |
Pirilä-Parkkinen K, Löppönen H, Nieminen P, et al. Validity of upper airway assessment in children: a clinical, cephalometric, and MRI study. Angle Orthod. 2011;81(3):433–439. doi: 10.2319/063010-362.1 |
| [64] |
Pirilä-Parkkinen K., Löppönen H., Nieminen P., et al. Validity of upper airway assessment in children: a clinical, cephalometric, and MRI study // Angle Orthod. 2011. Vol. 81, N. 3. P. 433–439. doi: 10.2319/063010-362.1 |
| [65] |
Apresyan SV, Stepanov AG, Sopotsinsky DV, et al. 3D planning of dental treatment. Methodical manual. Moscow: Novik; 2020. 140 p. (In Russ.) |
| [66] |
Апресян С.В., Степанов А.Г., Сопоцинский Д.В., и др. 3D планирование стоматологического лечения. Методическое пособие. Москва: ООО «Новик», 2020. 140 с. |
| [67] |
Abesi F, Maleki M, Zamani M. Diagnostic performance of artificial intelligence using cone-beam computed tomography imaging of the oral and maxillofacial region: A scoping review and meta-analysis. Imaging Sci Dent. 2023;53(2):101–108. doi: 10.5624/isd.20220224 |
| [68] |
Abesi F., Maleki M., Zamani M. Diagnostic performance of artificial intelligence using cone-beam computed tomography imaging of the oral and maxillofacial region: A scoping review and meta-analysis // Imaging Sci Dent. 2023. Vol. 53, N. 2. P. 101–108. doi: 10.5624/isd.20220224 |
| [69] |
Verhelst PJ, Smolders A, Beznik T, et al. Layered deep learning for automatic mandibular segmentation in cone-beam computed tomography. J Dent. 2021;114:103786. doi: 10.1016/j.jdent.2021.103786 |
| [70] |
Verhelst P.J., Smolders A., Beznik T., et al. Layered deep learning for automatic mandibular segmentation in cone-beam computed tomography // J Dent. 2021. Vol. 114. P. 103786. doi: 10.1016/j.jdent.2021.103786 |
| [71] |
Ahmed N, Abbasi MS, Zuberi F, et al. Artificial intelligence techniques: analysis, application, and outcome in dentistry — a systematic review. Biomed Res Int. 2021;2021:9751564. doi: 10.1155/2021/9751564 |
| [72] |
Ahmed N., Abbasi M.S., Zuberi F., et al. Artificial intelligence techniques: analysis, application, and outcome in dentistry — a systematic review // Biomed Res Int. 2021. Vol. 2021. P. 9751564. doi: 10.1155/2021/9751564 |
| [73] |
Pethani F. Promises and perils of artificial intelligence in dentistry. Aust Dent J. 2021;66(2):124–135. doi: 10.1111/adj.12812 |
| [74] |
Pethani F. Promises and perils of artificial intelligence in dentistry // Aust Dent J. 2021. Vol. 66, N. 2. P. 124–135. doi: 10.1111/adj.12812 |
| [75] |
Kordass B, Gärtner C, Söhnel A, et al. The virtual articulator in dentistry: concept and development. Dent Clin North Am. 2002;46(3):493–506. doi: 10.1016/s0011-8532(02)00006-X |
| [76] |
Kordass B., Gärtner C., Söhnel A., et al. The virtual articulator in dentistry: concept and development. // Dent Clin North Am. 2002. Vol. 46, N. 3. P. 493–506. doi: 10.1016/s0011-8532(02)00006-x |
| [77] |
Carossa M, Cavagnetto D, Ceruti P, et al. Individual mandibular movement registration and reproduction using an optoeletronic jaw movement analyzer and a dedicated robot: a dental technique. BMC Oral Health. 2020;20(1):271. doi: 10.1186/s12903-020-01257-6 |
| [78] |
Carossa M., Cavagnetto D., Ceruti P., et al. Individual mandibular movement registration and reproduction using an optoeletronic jaw movement analyzer and a dedicated robot: a dental technique // BMC Oral Health. 2020. Vol. 20, N. 1. P. 271. doi: 10.1186/s12903-020-01257-6 |
| [79] |
Revilla-León M, Kois DE, Kois JC. A guide for maximizing the accuracy of intraoral digital scans. Part 1: Operator factors. J Esthet Restor Dent. 2023;35(1):230–240. doi: 10.1111/jerd.12985 |
| [80] |
Revilla-León M., Kois D.E., Kois J.C. A guide for maximizing the accuracy of intraoral digital scans. Part 1: Operator factors // J Esthet Restor Dent. 2023. Vol. 35, N. 1. P. 230–240. doi: 10.1111/jerd.12985 |
| [81] |
Solaberrieta E, Garmendia A, Minguez R, et al. Virtual facebow technique. J Prosthet Dent. 2015;114(6):751–755. doi: 10.1016/j.prosdent.2015.06.012 |
| [82] |
Solaberrieta E., Garmendia A., Minguez R., et al. Virtual facebow technique // J Prosthet Dent. 2015. Vol. 114, N. 6. P. 751–755. doi: 10.1016/j.prosdent.2015.06.012 |
| [83] |
Panteleev VD, Roshchin EM, Panteleev SV. Diagnostics of mandibular articulation disorders in tmj dysfunction patients. Stomatology. 2011;90(1):52–57. (In Russ.) EDN: OYEMWN |
| [84] |
Пантелеев В.Д., Рощин Е.М., Пантелеев С.В. Диагностика нарушений артикуляции нижней челюсти у пациентов с дисфункциями височно-нижнечелюстного сустава // Стоматология. 2011. Т. 90, № 1. С. 52–57. EDN: OYEMWN |
| [85] |
Parhamovich SN, Bitno VL, Bitno MV. Comparative analysis of modern methods for registration of the hinge axis. Modern dentistry. 2020;(1):80–85. EDN: STLWWP |
| [86] |
Пархамович С.Н., Битно В.Л., Битно М.В. Сравнительный анализ современных методов регистрации шарнирной оси (обзор) // Современная стоматология. 2020. № 1. С. 80–85. EDN: STLWWP |
| [87] |
Grigorenko MP. Digital approaches to diagnosis and treatment of patients with dental arch shape abnormalities [dissertation]. Stavropol; 2024. Available from: https://rusneb.ru/catalog/000199_000009_012687348/ (In Russ.) EDN: CEGQSF |
| [88] |
Григоренко М.П. Цифровые подходы диагностики и лечения пациентов с аномалиями формы зубных дуг: дис. … канд. мед. наук. Ставрополь, 2024. Режим доступа: https://rusneb.ru/catalog/ 000199_000009_012687348/ Дата обращения: 07.08.2024. EDN: CEGQSF |
| [89] |
Arutyunov SD, Gvetadze RSh, Lebedenko IYu, Stepanov AG. Innovative solutions in dentistry. Moscow: Practical Medicine; 2019. (In Russ.) ISBN: 978-5-98811-569-4 EDN: BRABVP ISBN: 978-5-98811-569-4 |
| [90] |
Арутюнов С.Д., Гветадзе Р.Ш., Лебеденко И.Ю., Степанов А.Г. Инновационные решения в стоматологии. Москва: Практическая медицина, 2019. ISBN: 978-5-98811-569-4 EDN: BRABVP ISBN: 978-5-98811-569-4 |
| [91] |
Castroflorio T, Sedran A, Parrini S, et al. Predictability of orthodontic tooth movement with aligners: effect of treatment design. Prog Orthod. 2023;24(1):2. doi: 10.1186/s40510-022-00453-0 |
| [92] |
Castroflorio T., Sedran A., Parrini S., et al. Predictability of orthodontic tooth movement with aligners: effect of treatment design // Prog Orthod. 2023. Vol. 24, N. 1. P. 2. doi: 10.1186/s40510-022-00453-0 |
| [93] |
Tsolakis IA, Panos P, Papadopoulos MA. Accuracy of the ClinCheck prediction outcome for orthodontic treatment with Invisalign. A 3D digital casts study. Conference: International Symposium, Greek Orthodontic Society. 2022. |
| [94] |
Tsolakis I.A., Panos P., Papadopoulos M.A. Accuracy of the ClinCheck prediction outcome for orthodontic treatment with Invisalign. A 3D digital casts study // Conference: International Symposium, Greek Orthodontic Society. 2022. P. 2. |
| [95] |
Pilipenko ND, Maksyukov SYu. Accuracy of predicting the upper arch expansion using the ClinCheck software. Russian Journal of Dentistry. 2021:25(2):159–166. EDN: KKYDWU doi: 10.17816/1728-2802-2021-25-2-159-166 |
| [96] |
Пилипенко Н.Д., Максюков С.Ю. Оценка точности прогнозирования расширения верхнего зубного ряда с применением программного обеспечения ClinCheck // Российский стоматологический журнал. 2021. Т. 25, № 2. C. 159–166. EDN: KKYDWU doi: 10.17816/1728-2802-2021-25-2-159-166 |
| [97] |
Ryakhovsky AN, Boitsova EA. 3D analysis of the temporomandibular joint and occlusal relationships based on computer virtual simulation. Stomatology.2020;99(2):97–104. EDN: SYSPXL doi: 10.17116/stomat20209902197 |
| [98] |
Ряховский А.Н., Бойцова Е.А. 3D-анализ височно-нижнечелюстного сустава и окклюзионных взаимоотношений на основе компьютерного виртуального моделирования // Стоматология. 2020. Т. 99, № 2. С. 97–104. EDN: SYSPXL doi: 10.17116/stomat20209902197 |
| [99] |
Liang YM, Rutchakitprakarn L, Kuang SH, Wu TY. Comparing the reliability and accuracy of clinical measurements using plaster model and the digital model system based on crowding severity. J Chin Med Assoc. 2018;81(9):842–847. doi: 10.1016/j.jcma.2017.11.011 |
| [100] |
Liang Y.M., Rutchakitprakarn L., Kuang S.H., Wu T.Y. Comparing the reliability and accuracy of clinical measurements using plaster model and the digital model system based on crowding severity // J Chin Med Assoc. 2018. Vol. 81, N. 9. P. 842–847. doi: 10.1016/j.jcma.2017.11.011 |
| [101] |
Eid HSE, Elhiny OA. Evaluation of an open access generic 3D software for Orthodontic diagnosis and treatment planning. Brazilian Journal of Oral Sciences. 2021;21:e227903. doi: 10.20396/bjos.v21i00.8667903 |
| [102] |
Eid H.S.E., Elhiny O.A. Evaluation of an open access generic 3D software for Orthodontic diagnosis and treatment planning // Brazilian Journal of Oral Sciences, Limeira, SP. Vol. 21. P. e227903. doi: 10.20396/bjos.v21i00.8667903 |
| [103] |
Hammam KI, Nassef E, AL Dawltaly M. Comparing program compatibility for dental operators between different in-office clear aligners software. Future Dental Journal. 2024;9(2):111–115. doi: 10.54623/fdj.9027 |
| [104] |
Hammam K.I., Nassef E., AL Dawltaly M. Comparing program compatibility for dental operators between different in-office clear aligners software // Future Dental Journal. 2024. Vol. 9, N. 2. P. 111–115. doi: 10.54623/fdj.9027 |
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