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Machine learning-based classification of varicocoele grading: A promising approach for diagnosis and treatment optimization

Andrology · Eylül 2025

Özet
Background: Varicocoele is a correctable cause of male infertility. Although physical examination is still being used in diagnosis and grading, it gives conflicting results when compared to ultrasonography-based varicocoele grading. Objectives: We aimed to develop a multi-class machine learning model for the grading of varicocoeles based on ultrasonographic measurements. Method: Between January and May 2024, we enrolled unilateral varicocoele patients at an infertility clinic, assessing their varicocoele stages using the Dubin and Amelar system. We measured vascular diameter and reflux time at the testicular apex and the subinguinal region ultrasonography in both the supine and standing positions. Using these measurements, we developed four multi-class machine learning models, evaluating their performance metrics and determining which patient position and projection were most influential in varicocoele grading. Results: We included 248 patients with unilateral varicocoele in the study, their average age was 26.61 ± 4.95 years old. Of these, 212 had left-sided and 36 had right-sided varicocoeles. According to the Dubin and Amelar system, there were 66 grade I, 96 grade II, and 86 grade III varicocoeles. Among the models we created, the random forest (RF) model performed best, with an overall accuracy of 0.81 ± 0.06, an F1 score of 0.79 ± 0.02, a sensitivity of 0.69 ± 0.02, and a specificity of 0.8 ± 0.03. Vascular diameter measurement at the testicular apex in the supine position had the most impact on grading across all models. In support vector machine and multi-layer perceptron models, reflux time measurements from the subinguinal projection in the standing position contributed the most, while in RF and k-nearest neighbors models, measurements from the subinguinal projection in the supine position were the most influential. Conclusions: Machine learning methods have demonstrated superior accuracy in predicting disease compared to traditional statistical regressions and nomograms. These advancements hold promise for clinically automated prediction of varicocoele grades in patients. Tailored varicocoele grading for individuals has the potential to enhance treatment effectiveness and overall quality of life.
7 atıf Eylül 2025 DOI
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YÖKSİS Kayıtları
Machine learning‐based classification of varicocoele grading: A promising approach for diagnosis and treatment optimization
Andrology · 2025 SCI-Expanded
Doç. Dr. HALİL ÖZER →
Machine learning‐based classification of varicocoele grading: A promising approach for diagnosis and treatment optimization
Andrology · 2025 SCI-Expanded
Doç. Dr. MURAT GÜL →
Machine learning‐based classification of varicocoele grading: A promising approach for diagnosis and treatment optimization
Andrology · 2024 SCI-Expanded
Doç. Dr. EMRE ALTINTAŞ →
YÖKSİS Kayıtları — ISSN Eşleşmesi
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Combination of trehalose and low boron in presence of decreased glycerol improves post‐thawed ram sperm parameters: A model study in boron research
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Combination of trehalose and low boron in presence of decreased glycerol improves post\u2010thawed ram sperm parameters: A model study in boron research
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Combination of trehalose and low boron in presence of decreased glycerol improves post\u2010thawed ram sperm parameters: A model study in boron research
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Combination of fetuin and trehalose in presence of low glycerol has beneficial effects on freeze\u2010thawed ram spermatozoa
2021 ISSN: 2047-2919 SCI-Expanded Q1
Prof. Dr. MUSTAFA NUMAN BUCAK →
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2021 ISSN: 2047-2919 SCI-Expanded
Prof. Dr. NURİ BAŞPINAR →
Microfluidics: The future of sperm selection in assisted reproduction
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Exploring the impact of sexual positions on ejaculation: Insights from a survey study by the Andrology Working Group of the Society of Urological Surgery in Turkey
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Doç. Dr. MURAT GÜL →
Machine learning‐based classification of varicocoele grading: A promising approach for diagnosis and treatment optimization
2025 ISSN: 2047-2919 SCI-Expanded Q1
Doç. Dr. HALİL ÖZER →
Machine learning‐based classification of varicocoele grading: A promising approach for diagnosis and treatment optimization
2024 ISSN: 2047-2919 SCI-Expanded Q1
Doç. Dr. EMRE ALTINTAŞ →
Exploring the impact of sexual positions on ejaculation: Insights from a survey study by the Andrology Working Group of the Society of Urological Surgery in Turkey
2025 ISSN: 2047-2919 SCI-Expanded Q1
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Sulfur dioxide (SO2) donors, a new gasotransmitter, improve erectile dysfunction after castration in a rat model
2025 ISSN: 2047-2919 SCI-Expanded Q1
Dr. Öğr. Üyesi ŞEYMA TETİK RAMA →
Exploring the impact of sexual positions on ejaculation: Insights from a survey study by the Andrology Working Group of the Society of Urological Surgery in Turkey
2024 ISSN: 2047-2919 SCI-Expanded Q1
Prof. Dr. MEHMET KAYNAR →
The effects of kidney transplantation on sex hormones, sperm parameters, and fertility rate in males: A systematic review
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Makale Bilgileri

Toplam Atıf 7 atıf · Scopus
ISSN20472919
Yayın TarihiEylül 2025
Cilt / Sayfa13 · 1451-1461
Erişim🔓 Açık Erişim

Kurumlar

Başkent Üniversitesi
Ankara Turkey
Dr. Vefa Tanır Ilgın State Hospital
Konya Turkey
Hatay Education and Research Hospital
Hatay Turkey
Selçuk Üniversitesi
Selçuklu Turkey
Sincan Training and Research Hospital
Ankara Turkey

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Bu makaleye, sistemimizdeki Scopus veritabanında bulunan 0 makale atıf yapmıştır. Scopus genel atıf sayısı: 7.

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Scimago Dergi (ISSN Eşleşmesi)
Andrology
Q1
SJR Skoru1,150
H-Index85
YayıncıJohn Wiley & Sons Inc.
ÜlkeUnited States
Reproductive Medicine (Q1)
Urology (Q1)
Endocrinology (Q2)
Endocrinology, Diabetes and Metabolism (Q2)
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7
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