[1] Pereira G J C, Damasceno E R, Dinhane D I, et al. Epidemiology of pelvic ring fractures and injuries[J]. Rev Bras Ortop, 2017, 52(3): 260-269.
[2] Mauffrey C, Cuellar D O 3rd, Pieracci F, et al. Strategies for the management of haemorrhage following pelvic fractures and associated trauma-induced coagulopathy[J]. Bone Joint J, 2014, 96-B(9): 1143-1154.
[3] Yang K, Xiang F, Ye J, et al. A retrospective analysis of minimally invasive internal fixation versus nonoperative conservative management of pelvic ring fragility fractures and the elderly[J]. J Orthop Surg Res, 2023, 18(1): 108.
[4] Yoon Y C, Ma D S, Lee S K, et al. Posterior pelvic ring injury of straddle fractures: incidence, fixation methods, and clinical outcomes[J]. Asian J Surg, 2021, 44(1): 59-65.
[5] Iorio J A, Jakoi A M, Rehman S. Percutaneous sacroiliac screw fixation of the posterior pelvic ring[J]. Orthop Clin North Am, 2015, 46(4): 511-521.
[6] Zhao C, Zhu G, Wang Y, et al. TiRobot-assisted versus conventional fluoroscopy-assisted percutaneous sacroiliac screw fixation for pelvic ring injuries: a meta-analysis[J]. J Orthop Surg Res, 2022, 17(1): 525.
[7] Long T, Li K N, Gao J H, et al. Comparative study of percutaneous sacroiliac screw with or without TiRobot assistance for treating pelvic posterior ring fractures[J]. Orthop Surg, 2019, 11(3): 386-396.
[8] Liu H S, Duan S J, Liu S D, et al. Robot-assisted percutaneous screw placement combined with pelvic internal fixator for minimally invasive treatment of unstable pelvic ring fractures[J]. Int J Med Robot, 2018, 14(5): e1927.
[9] Li N, Zhu Z, Xiao C, et al. The efficacy of “TiRobot”orthopaedic robot-assisted vs conventional fluoroscopic percutaneous screw fixation of the sacroiliac joint[J]. Int Orthop, 2023, 47(2): 351-358.
[10] 代永鸿, 曾焰辉, 吴征杰, 等. 智能骨盆骨折复位机器人联合天玑机器人治疗不稳定型骨盆骨折的临床疗效[J]. 首都医科大学学报, 2024, 45(5): 763-772.
[11] Zhao C, Cao Q, Sun X, et al. Intelligent robot-assisted minimally invasive reduction system for reduction of unstable pelvic fractures[J]. Injury, 2023, 54(2): 604-614.
[12] Matta J M. Fractures of the acetabulum: accuracy of reduction and clinical results in patients managed operatively within three weeks after the injury[J]. J Bone Joint Surg Am, 1996, 78(11): 1632-1645.
[13] Gras F, Marintschev I, Wilharm A, et al. 2D-fluoroscopic navigated percutaneous screw fixation of pelvic ring injuries—a case series[J]. BMC Musculoskelet Disord, 2010, 11: 153.
[14] Wu X B, Wang J Q, Sun X, et al. Guidance for treatment of pelvic acetabular injuries with precise minimally invasive internal fixation based on the orthopaedic surgery robot positioning system[J]. Orthop Surg, 2019, 11(3): 341-347.
[15] Liu H S, Duan S J, Xin F Z, et al. Robot-assisted minimally-invasive internal fixation of pelvic ring injuries: a single-center experience[J]. Orthop Surg, 2019, 11(1): 42-51.
[16] 王永标, 冯小仍, 姚艺艺, 等. 天玑骨科手术机器人结合三维成像技术辅助微创治疗骨盆骨折的疗效分析[J]. 中华创伤骨科杂志, 2022, 24(10): 856-861.
[17] Chen K N, Wang G, Cao L G, et al. Differences of percutaneous retrograde screw fixation of anterior column acetabular fractures between male and female: a study of 164 virtual three-dimensional models[J]. Injury, 2009, 40(10): 1067-1072.
[18] 姚林林, 张明磊, 朱彤彤, 等. 机器人辅助治疗老年骨盆骨折的疗效分析[J]. 中华骨科杂志, 2023, 43(19): 1277-1284.
[19] 戚浩天, 葛振新, 刘兆杰, 等. 机器人辅助螺钉固定治疗老年脆性骨盆骨折[J]. 中华骨科杂志, 2023, 43(12): 813-820.
[20] 罗怡平, 张雷, 周子斐, 等. 机器人辅助经皮通道螺钉固定LC-Ⅱ型骨盆骨折的疗效研究[J]. 中华骨科杂志, 2023, 43(19): 1261-1268.
[21] 佘荣峰, 张彬, 蒋昆豆, 等. 机器人辅助下前柱螺钉与前环内置外固定架治疗不稳定骨盆骨折的疗效比较[J]. 中华创伤杂志, 2023, 39(1): 38-46.
[22] 杨光, 祁宝昌, 赵天昊, 等. TiRobot骨科手术机器人辅助下微创经皮通道螺钉固定治疗骨盆骨折的疗效分析[J]. 中华创伤骨科杂志, 2022, 24(3): 200-205.
[23] Wong J M, Bucknill A. Fractures of the pelvic ring[J]. Injury, 2017, 48(4): 795-802.
[24] 宋虎, 陈龙, 施建国, 等. 3D导航辅助下经皮骶髂螺钉联合前环外固定架治疗Tile B、C型骨盆骨折[J]. 中华创伤杂志, 2018, 34(6): 497-504.
[25] Hagen J, Castillo R, Dubina A, et al. Does surgical stabilization of lateral compression-type pelvic ring fractures decrease patients' pain, reduce narcotic use, and improve mobilization?[J]. Clin Orthop Relat Res, 2016, 474(6): 1422-1429.
|