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akaturk Akademik ölçüm

Makale detayı · 2023

Endometrial Cancer Individualized Scoring System (ECISS): A machine learning‐based prediction model of endometrial cancer prognosis

Wiley

YÖKSİS OpenAlex Açık erişim · bronze SJR Q1 JCR Q2 Atıf 10 Yüzdelik 81.9% FWCI 1.42
Yıl
2023
ISSN
0020-7292
Tür
article

Veri kaynağı ayrımı

  • YÖKSİS YÖKSİS makale kaydı
  • OpenAlex OpenAlex zenginleştirmesi (özet, atıf, konular)

Özet

İngilizce (OpenAlex)

OBJECTIVE: To establish a prognostic model for endometrial cancer (EC) that individualizes a risk and management plan per patient and disease characteristics. METHODS: A multicenter retrospective study conducted in nine European gynecologic cancer centers. Women with confirmed EC between January 2008 to December 2015 were included. Demographics, disease characteristics, management, and follow-up information were collected. Cancer-specific survival (CSS) and disease-free survival (DFS) at 3 and 5 years comprise the primary outcomes of the study. Machine learning algorithms were applied to patient and disease characteristics. Model I: pretreatment model. Calculated probability was added to management variables (model II: treatment model), and the second calculated probability was added to perioperative and postoperative variables (model III). RESULTS: Of 1150 women, 1144 were eligible for 3-year survival analysis and 860 for 5-year survival analysis. Model I, II, and III accuracies of prediction of 5-year CSS were 84.88%/85.47% (in train and test sets), 85.47%/84.88%, and 87.35%/86.05%, respectively. Model I predicted 3-year CSS at an accuracy of 91.34%/87.02%. Accuracies of models I, II, and III in predicting 5-year DFS were 74.63%/76.72%, 77.03%/76.72%, and 80.61%/77.78%, respectively. CONCLUSION: The Endometrial Cancer Individualized Scoring System (ECISS) is a novel machine learning tool assessing patient-specific survival probability with high accuracy.

Konular

  • Endometrial and Cervical Cancer Treatments
  • AI in cancer detection
  • Ferroptosis and cancer prognosis

Birincil konu Endometrial and Cervical Cancer Treatments

Yazarlar

  1. Sherif A Shazly
  2. Pluvio J CORONADO
  3. ERCAN YILMAZ
  4. RAUF MELEKOĞLU
  5. HANİFİ ŞAHİN
  6. Luca Giannella
  7. Andrea Ciavattini
  8. Giovanni Delli Carpini
  9. Jacopo Di Giuseppe
  10. Angel Yordanov
  11. Konstantina Karakadieva
  12. Nevena Milenova Nedelcheva
  13. Mariela Vasileva-Slaveva
  14. Juan Luis Alcazar
  15. Enrique Chacon
  16. Nabil Manzour
  17. Julio Vara
  18. ERBİL KARAMAN
  19. ONUR KARAASLAN VAN YÜZÜNCÜ YIL ÜNİVERSİTESİ
  20. LATİF HACIOĞLU VAN YÜZÜNCÜ YIL ÜNİVERSİTESİ
  21. DUYGU KORKMAZ YALÇIN
  22. HÜSEYİN CEM ÖNAL
  23. Jure Knez
  24. Federico Ferrari
  25. Esraa M Hosni
  26. Mohamed E Mahmoud
  27. Gena M Elassall
  28. Mohamed S Abdo
  29. Yasmin I Mohamed
  30. Amr S Abdelbadie