Machine learning application for prediction of locoregional recurrences in early oral tongue cancer: a Web-based prognostic tool
Rasheed Omobolaji Alabi
1
,
Mohammed Elmusrati
1
,
Iris Sawazaki-Calone
2
,
Luiz Paulo Kowalski
3
,
Caj Haglund
4, 5
,
Ricardo D. Coletta
6
,
Antti A. Mäkitie
7, 8, 9
,
Tuula Salo
10, 11, 12
,
Ilmo Leivo
13
,
Alhadi Almangush
8, 10, 13, 14
3
Department of Head and Neck Surgery and Otorhinolaryngology, A.C. Camargo Cancer Center, São Paulo, Brazil
|
5
9
Publication type: Journal Article
Publication date: 2019-08-17
scimago Q1
wos Q2
SJR: 1.272
CiteScore: 7.0
Impact factor: 3.1
ISSN: 09456317, 14322307
PubMed ID:
31422502
Molecular Biology
General Medicine
Cell Biology
Pathology and Forensic Medicine
Abstract
Estimation of risk of recurrence in early-stage oral tongue squamous cell carcinoma (OTSCC) remains a challenge in the field of head and neck oncology. We examined the use of artificial neural networks (ANNs) to predict recurrences in early-stage OTSCC. A Web-based tool available for public use was also developed. A feedforward neural network was trained for prediction of locoregional recurrences in early OTSCC. The trained network was used to evaluate several prognostic parameters (age, gender, T stage, WHO histologic grade, depth of invasion, tumor budding, worst pattern of invasion, perineural invasion, and lymphocytic host response). Our neural network model identified tumor budding and depth of invasion as the most important prognosticators to predict locoregional recurrence. The accuracy of the neural network was 92.7%, which was higher than that of the logistic regression model (86.5%). Our online tool provided 88.2% accuracy, 71.2% sensitivity, and 98.9% specificity. In conclusion, ANN seems to offer a unique decision-making support predicting recurrences and thus adding value for the management of early OTSCC. To the best of our knowledge, this is the first study that applied ANN for prediction of recurrence in early OTSCC and provided a Web-based tool.
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Total citations:
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Citations from 2024:
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(20.99%)
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GOST
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Alabi R. O. et al. Machine learning application for prediction of locoregional recurrences in early oral tongue cancer: a Web-based prognostic tool // Virchows Archiv. 2019. Vol. 475. No. 4. pp. 489-497.
GOST all authors (up to 50)
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Alabi R. O., Elmusrati M., Sawazaki-Calone I., Kowalski L. P., Haglund C., Coletta R., Mäkitie A. A., Salo T., Leivo I., Almangush A. Machine learning application for prediction of locoregional recurrences in early oral tongue cancer: a Web-based prognostic tool // Virchows Archiv. 2019. Vol. 475. No. 4. pp. 489-497.
Cite this
RIS
Copy
TY - JOUR
DO - 10.1007/s00428-019-02642-5
UR - https://doi.org/10.1007/s00428-019-02642-5
TI - Machine learning application for prediction of locoregional recurrences in early oral tongue cancer: a Web-based prognostic tool
T2 - Virchows Archiv
AU - Alabi, Rasheed Omobolaji
AU - Elmusrati, Mohammed
AU - Sawazaki-Calone, Iris
AU - Kowalski, Luiz Paulo
AU - Haglund, Caj
AU - Coletta, Ricardo D.
AU - Mäkitie, Antti A.
AU - Salo, Tuula
AU - Leivo, Ilmo
AU - Almangush, Alhadi
PY - 2019
DA - 2019/08/17
PB - Springer Nature
SP - 489-497
IS - 4
VL - 475
PMID - 31422502
SN - 0945-6317
SN - 1432-2307
ER -
Cite this
BibTex (up to 50 authors)
Copy
@article{2019_Alabi,
author = {Rasheed Omobolaji Alabi and Mohammed Elmusrati and Iris Sawazaki-Calone and Luiz Paulo Kowalski and Caj Haglund and Ricardo D. Coletta and Antti A. Mäkitie and Tuula Salo and Ilmo Leivo and Alhadi Almangush},
title = {Machine learning application for prediction of locoregional recurrences in early oral tongue cancer: a Web-based prognostic tool},
journal = {Virchows Archiv},
year = {2019},
volume = {475},
publisher = {Springer Nature},
month = {aug},
url = {https://doi.org/10.1007/s00428-019-02642-5},
number = {4},
pages = {489--497},
doi = {10.1007/s00428-019-02642-5}
}
Cite this
MLA
Copy
Alabi, Rasheed Omobolaji, et al. “Machine learning application for prediction of locoregional recurrences in early oral tongue cancer: a Web-based prognostic tool.” Virchows Archiv, vol. 475, no. 4, Aug. 2019, pp. 489-497. https://doi.org/10.1007/s00428-019-02642-5.