| 1. |
Deirmengian GK, Zmistowski B, O’Neil JT, et al. Management of acetabular bone loss in revision total hip arthroplasty. J Bone Joint Surg (Am), 2011, 93(19): 1842-1852.
|
| 2. |
Deirmengian GK, Zmistowski B, O’Neil JT, et al. Management of acetabular bone loss in revision total hip arthroplasty. J Bone Joint Surg (Am), 2011, 93(19): 1842-1852.
|
| 3. |
邊焱焱, 程開源, 常曉, 等. 2011至2019年中國人工髖膝關節置換手術量的初步統計與分析. 中華骨科雜志, 2020, 40(21): 1453-1460.
|
| 4. |
邊焱焱, 程開源, 常曉, 等. 2011至2019年中國人工髖膝關節置換手術量的初步統計與分析. 中華骨科雜志, 2020, 40(21): 1453-1460.
|
| 5. |
Bozic KJ, Kurtz SM, Lau E, et al. The epidemiology of revision total hip arthroplasty in the United States. J Bone Joint Surg (Am), 2009, 91(1): 128-133.
|
| 6. |
Bozic KJ, Kurtz SM, Lau E, et al. The epidemiology of revision total hip arthroplasty in the United States. J Bone Joint Surg (Am), 2009, 91(1): 128-133.
|
| 7. |
劉珂, 劉曉潭, 侯毅, 等. 3D打印個體化髖臼填充技術在復雜髖關節翻修中的應用. 中華實驗外科雜志, 2017, 34(3): 522-523.
|
| 8. |
劉珂, 劉曉潭, 侯毅, 等. 3D打印個體化髖臼填充技術在復雜髖關節翻修中的應用. 中華實驗外科雜志, 2017, 34(3): 522-523.
|
| 9. |
趙玉峰, 王愛民, 孫紅振, 等. 人工全髖關節置換術后感染翻修30例. 中華創傷雜志, 2006, 22(11): 815-819.
|
| 10. |
趙玉峰, 王愛民, 孫紅振, 等. 人工全髖關節置換術后感染翻修30例. 中華創傷雜志, 2006, 22(11): 815-819.
|
| 11. |
Mouchti S, Whitehouse MR, Sayers A, et al. The association of body mass index with risk of long-term revision and 90-day mortality following primary total hip replacement: Findings from the national joint registry for england, wales, northern ireland and the isle of man. J Bone Joint Surg (Am), 2018, 100(24): 2140-2152.
|
| 12. |
Mouchti S, Whitehouse MR, Sayers A, et al. The association of body mass index with risk of long-term revision and 90-day mortality following primary total hip replacement: Findings from the national joint registry for england, wales, northern ireland and the isle of man. J Bone Joint Surg (Am), 2018, 100(24): 2140-2152.
|
| 13. |
楊泊寧, 陳驍, 代志鵬, 等. 部分曠置二期翻修術治療人工髖關節假體周圍感染. 中國骨與關節損傷雜志, 2019, 34(12): 1271-1273.
|
| 14. |
楊泊寧, 陳驍, 代志鵬, 等. 部分曠置二期翻修術治療人工髖關節假體周圍感染. 中國骨與關節損傷雜志, 2019, 34(12): 1271-1273.
|
| 15. |
Ullmark G. The unstable total hip arthroplasty. EFORT Open Rev, 2017, 1(4): 83-88.
|
| 16. |
Ullmark G. The unstable total hip arthroplasty. EFORT Open Rev, 2017, 1(4): 83-88.
|
| 17. |
Di Martino A, Castagnini F, Stefanini N, et al. Survival rates and reasons for revision of different stem designs in total hip arthroplasty for developmental dysplasia: a regional registry study. J Orthop Traumatol, 2021, 22(1): 29. doi: 10.1186/s10195-021-00590-y.
|
| 18. |
Di Martino A, Castagnini F, Stefanini N, et al. Survival rates and reasons for revision of different stem designs in total hip arthroplasty for developmental dysplasia: a regional registry study. J Orthop Traumatol, 2021, 22(1): 29. doi: 10.1186/s10195-021-00590-y.
|
| 19. |
Ehlinger M, Delaunay C, Karoubi M, et al. Revision of primary total hip arthroplasty for peri-prosthetic fracture: A prospective epidemiological study of 249 consecutive cases in France. Orthop Traumatol Surg Res, 2014, 100(6): 657-662.
|
| 20. |
Ehlinger M, Delaunay C, Karoubi M, et al. Revision of primary total hip arthroplasty for peri-prosthetic fracture: A prospective epidemiological study of 249 consecutive cases in France. Orthop Traumatol Surg Res, 2014, 100(6): 657-662.
|
| 21. |
楊濱, 張克, 袁亮, 等. 三維術前規劃在全髖關節置換術中的應用. 中國矯形外科雜志, 2022, 30(7): 653-656.
|
| 22. |
楊濱, 張克, 袁亮, 等. 三維術前規劃在全髖關節置換術中的應用. 中國矯形外科雜志, 2022, 30(7): 653-656.
|
| 23. |
Wu D, Zhi X, Liu X, et al. Utility of a novel integrated deep convolutional neural network for the segmentation of hip joint from computed tomography images in the preoperative planning of total hip arthroplasty. J Orthop Surg Res, 2022, 17(1): 164. doi: 10.1186/s13018-022-02932-w.
|
| 24. |
Wu D, Zhi X, Liu X, et al. Utility of a novel integrated deep convolutional neural network for the segmentation of hip joint from computed tomography images in the preoperative planning of total hip arthroplasty. J Orthop Surg Res, 2022, 17(1): 164. doi: 10.1186/s13018-022-02932-w.
|
| 25. |
霍佳邦, 趙暢, 黃廣鑫, 等. CT數據三維規劃預測全髖關節置換假體型號及截骨的準確性與可復性. 中國組織工程研究, 2021, 25(27): 4294-4299.
|
| 26. |
霍佳邦, 趙暢, 黃廣鑫, 等. CT數據三維規劃預測全髖關節置換假體型號及截骨的準確性與可復性. 中國組織工程研究, 2021, 25(27): 4294-4299.
|
| 27. |
張先龍, 王坤正. 關節外科的未來——數字骨科技術在關節外科的應用. 中華骨科雜志, 2021, 41(8): 525-531.
|
| 28. |
張先龍, 王坤正. 關節外科的未來——數字骨科技術在關節外科的應用. 中華骨科雜志, 2021, 41(8): 525-531.
|
| 29. |
吳東, 柴偉, 劉星宇, 等. 人工智能全髖關節置換術髖臼杯放置算法的實驗研究. 中華骨科雜志, 2021, 41(3): 176-185.
|
| 30. |
吳東, 柴偉, 劉星宇, 等. 人工智能全髖關節置換術髖臼杯放置算法的實驗研究. 中華骨科雜志, 2021, 41(3): 176-185.
|
| 31. |
宋平, 吳東, 劉星宇, 等. 一例人工智能三維規劃系統輔助全膝關節置換術. 骨科, 2021, 12(3): 281-283.
|
| 32. |
宋平, 吳東, 劉星宇, 等. 一例人工智能三維規劃系統輔助全膝關節置換術. 骨科, 2021, 12(3): 281-283.
|
| 33. |
Nakata K, Nishikawa M, Yamamoto K, et al. A clinical comparative study of the direct anterior with mini-posterior approach: two consecutive series. J Arthroplasty, 2009, 24(5): 698-704.
|
| 34. |
Nakata K, Nishikawa M, Yamamoto K, et al. A clinical comparative study of the direct anterior with mini-posterior approach: two consecutive series. J Arthroplasty, 2009, 24(5): 698-704.
|
| 35. |
Pradhan R. Planar anteversion of the acetabular cup as determined from plain anteroposterior radiographs. J Bone Joint Surg (Br), 1999, 81(3): 431-435.
|
| 36. |
Pradhan R. Planar anteversion of the acetabular cup as determined from plain anteroposterior radiographs. J Bone Joint Surg (Br), 1999, 81(3): 431-435.
|
| 37. |
夏天衛, 劉星宇, 劉金柱, 等. 人工智能術前規劃系統輔助人工全髖關節置換術治療成人Crowe Ⅳ型先天性髖關節發育不良的療效研究. 中國修復重建外科雜志, 2021, 35(10): 1265-1272.
|
| 38. |
夏天衛, 劉星宇, 劉金柱, 等. 人工智能術前規劃系統輔助人工全髖關節置換術治療成人Crowe Ⅳ型先天性髖關節發育不良的療效研究. 中國修復重建外科雜志, 2021, 35(10): 1265-1272.
|
| 39. |
吳東, 孔祥朋, 楊敏之, 等. 深度學習卷積神經網絡在髖關節翻修術前CT分割領域的研發與初步應用. 中華骨科雜志, 2023, 43(1): 62-71.
|
| 40. |
吳東, 孔祥朋, 楊敏之, 等. 深度學習卷積神經網絡在髖關節翻修術前CT分割領域的研發與初步應用. 中華骨科雜志, 2023, 43(1): 62-71.
|
| 41. |
Archibeck MJ, Cummins T, Tripuraneni KR, et al. Inaccuracies in the use of magnification markers in digital hip radiographs. Clin Orthop Relat Res, 2016, 474(8): 1812-1817.
|
| 42. |
Archibeck MJ, Cummins T, Tripuraneni KR, et al. Inaccuracies in the use of magnification markers in digital hip radiographs. Clin Orthop Relat Res, 2016, 474(8): 1812-1817.
|
| 43. |
Weber M, Woerner ML, Springorum HR, et al. Plain radiographs fail to reflect femoral offset in total hip arthroplasty. J Arthroplasty, 2014, 29(8): 1661-1665.
|
| 44. |
Weber M, Woerner ML, Springorum HR, et al. Plain radiographs fail to reflect femoral offset in total hip arthroplasty. J Arthroplasty, 2014, 29(8): 1661-1665.
|
| 45. |
Tsai TY, Dimitriou D, Li G, et al. Does total hip arthroplasty restore native hip anatomy? Three-dimensional reconstruction analysis. Int Orthop, 2014, 38(8): 1577-1583.
|
| 46. |
Tsai TY, Dimitriou D, Li G, et al. Does total hip arthroplasty restore native hip anatomy? Three-dimensional reconstruction analysis. Int Orthop, 2014, 38(8): 1577-1583.
|
| 47. |
Odri GA, Padiolleau GB, Gouin FT. Oversized cups as a major risk factor of postoperative pain after total hip arthroplasty. J Arthroplasty, 2014, 29(4): 753-756.
|
| 48. |
Odri GA, Padiolleau GB, Gouin FT. Oversized cups as a major risk factor of postoperative pain after total hip arthroplasty. J Arthroplasty, 2014, 29(4): 753-756.
|
| 49. |
Streit MR, Innmann MM, Merle C, et al. Long-term (20- to 25-year) results of an uncemented tapered titanium femoral component and factors affecting survivorship. Clin Orthop Relat Res, 2013, 471(10): 3262-3269.
|
| 50. |
Streit MR, Innmann MM, Merle C, et al. Long-term (20- to 25-year) results of an uncemented tapered titanium femoral component and factors affecting survivorship. Clin Orthop Relat Res, 2013, 471(10): 3262-3269.
|
| 51. |
Huo J, Huang G, Han D, et al. Value of 3D preoperative planning for primary total hip arthroplasty based on artificial intelligence technology. J Orthop Surg Res, 2021, 16(1): 156. doi: 10.1186/s13018-021-02294-9.
|
| 52. |
Huo J, Huang G, Han D, et al. Value of 3D preoperative planning for primary total hip arthroplasty based on artificial intelligence technology. J Orthop Surg Res, 2021, 16(1): 156. doi: 10.1186/s13018-021-02294-9.
|
| 53. |
沈俊民, 周勇剛, 孫菁陽, 等. Crowe Ⅳ型髖關節發育不良人工全髖關節置換術后翻修原因及假體選擇的研究. 中國修復重建外科雜志, 2020, 34(5): 557-562.
|
| 54. |
沈俊民, 周勇剛, 孫菁陽, 等. Crowe Ⅳ型髖關節發育不良人工全髖關節置換術后翻修原因及假體選擇的研究. 中國修復重建外科雜志, 2020, 34(5): 557-562.
|
| 55. |
Fryhofer GW, Ramesh S, Sheth NP. Acetabular reconstruction in revision total hip arthroplasty. J Clin Orthop Trauma, 2020, 11(1): 22-28.
|
| 56. |
Fryhofer GW, Ramesh S, Sheth NP. Acetabular reconstruction in revision total hip arthroplasty. J Clin Orthop Trauma, 2020, 11(1): 22-28.
|
| 57. |
Wang J, Min L, Lu M, et al. What are the complications of three-dimensionally printed, custom-made, integrative hemipelvic endoprostheses in patients with primary malignancies involving the acetabulum, and what is the function of these patients? Clin Orthop Relat Res, 2020, 478(11): 2487-2501.
|
| 58. |
Wang J, Min L, Lu M, et al. What are the complications of three-dimensionally printed, custom-made, integrative hemipelvic endoprostheses in patients with primary malignancies involving the acetabulum, and what is the function of these patients? Clin Orthop Relat Res, 2020, 478(11): 2487-2501.
|
| 59. |
Kavalerskiy GM, Murylev VY, Rukin YA, et al. Three-dimensional models in planning of revision hip arthroplasty with complex acetabular defects. Indian J Orthop, 2018, 52(6): 625-630.
|
| 60. |
Kavalerskiy GM, Murylev VY, Rukin YA, et al. Three-dimensional models in planning of revision hip arthroplasty with complex acetabular defects. Indian J Orthop, 2018, 52(6): 625-630.
|
| 61. |
Yao A, George DM, Ranawat V, et al. 3D printed acetabular components for complex revision arthroplasty. Indian J Orthop, 2021, 55(3): 786-792.
|
| 62. |
Yao A, George DM, Ranawat V, et al. 3D printed acetabular components for complex revision arthroplasty. Indian J Orthop, 2021, 55(3): 786-792.
|
| 63. |
Zhang Y, Gao Z, Zhang B, et al. The application of custom-made 3D-printed titanium augments designed through surgical simulation for severe bone defects in complex revision total hip arthroplasty. J Orthop Traumatol, 2022, 23(1): 37. doi: 10.1186/s10195-022-00656-5.
|
| 64. |
Zhang Y, Gao Z, Zhang B, et al. The application of custom-made 3D-printed titanium augments designed through surgical simulation for severe bone defects in complex revision total hip arthroplasty. J Orthop Traumatol, 2022, 23(1): 37. doi: 10.1186/s10195-022-00656-5.
|
| 65. |
環大維, 夏天衛, 劉金柱, 等. 直接前方入路全髖關節置換術中髖臼骨折1例并文獻復習. 現代醫藥衛生, 2022, 38(9): 1611-1614.
|
| 66. |
環大維, 夏天衛, 劉金柱, 等. 直接前方入路全髖關節置換術中髖臼骨折1例并文獻復習. 現代醫藥衛生, 2022, 38(9): 1611-1614.
|
| 67. |
Wimmer MD, Randau TM, Deml MC, et al. Impaction grafting in the femur in cementless modular revision total hip arthroplasty: a descriptive outcome analysis of 243 cases with the MRP-TITAN revision implant. BMC Musculoskelet Disord, 2013, 14: 19. doi: 10.1186/1471-2474-14-19.
|
| 68. |
Wimmer MD, Randau TM, Deml MC, et al. Impaction grafting in the femur in cementless modular revision total hip arthroplasty: a descriptive outcome analysis of 243 cases with the MRP-TITAN revision implant. BMC Musculoskelet Disord, 2013, 14: 19. doi: 10.1186/1471-2474-14-19.
|
| 69. |
徐溢明, 趙天昊, 翁習生. 機器人輔助髖膝關節置換術發展現狀. 中華骨與關節外科雜志, 2022, 15(8): 633-640.
|
| 70. |
徐溢明, 趙天昊, 翁習生. 機器人輔助髖膝關節置換術發展現狀. 中華骨與關節外科雜志, 2022, 15(8): 633-640.
|
| 71. |
Riskin DJ, Longaker MT, Gertner M, et al. Innovation in surgery: a historical perspective. Ann Surg, 2006, 244(5): 686-693.
|
| 72. |
Riskin DJ, Longaker MT, Gertner M, et al. Innovation in surgery: a historical perspective. Ann Surg, 2006, 244(5): 686-693.
|
| 73. |
Schnurman Z, Kondziolka D. Evaluating innovation. Part 1: The concept of progressive scholarly acceptance. J Neurosurg, 2016, 124(1): 207-211.
|
| 74. |
Schnurman Z, Kondziolka D. Evaluating innovation. Part 1: The concept of progressive scholarly acceptance. J Neurosurg, 2016, 124(1): 207-211.
|