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Purpose: To determine if creating voting ensembles combining convolutional neural networks (CNN), support vector machine (SVM), and multi-layer neural networks (NN) alongside clinical parameters improves the accuracy of artificial intelligence (AI) as a non-invasive method for predicting aneuploidy.
Methods: A cohort of 699 day 5 PGT-A tested blastocysts was used to train, validate, and test a CNN to classify embryos as euploid/aneuploid. All embryos were analyzed using a modified FAST-SeqS next-generation sequencing method. Patient characteristics such as maternal age, AMH level, paternal sperm quality, and total number of normally fertilized (2PN) embryos were processed using SVM and NN. To improve model performance, we created voting ensembles using CNN, SVM, and NN to combine our imaging data with clinical parameter variations. Statistical significance was evaluated with a one-sample t-test with 2 degrees of freedom.
Results: When assessing blastocyst images alone, the CNN test accuracy was 61.2% (± 1.32% SEM, n = 3 models) in correctly classifying euploid/aneuploid embryos (n = 140 embryos). When the best CNN model was assessed as a voting ensemble, the test accuracy improved to 65.0% (AMH; p = 0.1), 66.4% (maternal age; p = 0.06), 65.7% (maternal age, AMH; p = 0.08), 66.4% (maternal age, AMH, number of 2PNs; p = 0.06), and 71.4% (maternal age, AMH, number of 2PNs, sperm quality; p = 0.02) (n = 140 embryos).
Conclusions: By combining CNNs with patient characteristics, voting ensembles can be created to improve the accuracy of classifying embryos as euploid/aneuploid from CNN alone, allowing for AI to serve as a potential non-invasive method to aid in karyotype screening and selection of embryos.
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http://dx.doi.org/10.1007/s10815-022-02707-6 | DOI Listing |
Int J Womens Health
September 2025
Department of Obstetrics, The First Affiliated Hospital of Guangxi Medical University, Nanning, Guangxi, 530021, People's Republic of China.
Objective: This study aimed to assess the predictive capacity of placenta growth factor (PlGF) and pregnancy-associated plasma protein-A (PAPP-A) levels in the serum of pregnant women during early pregnancy (11-13 weeks) for fetal growth restriction (FGR).
Patients And Methods: A retrospective cohort study was conducted involving 1602 pregnant women who gave birth at The Second Nanning People's Hospital between March 2018 and September 2019. Serum concentrations of PlGF and PAPP-A were measured during early pregnancy for all participants.
Front Genet
August 2025
Department of Medical Genetics, Jiangxi Maternal and Child Health Hospital, Nanchang, China.
Objective: The aim of this study was to determine the diagnostic value of prenatal chromosomal microarray analysis (CMA) for fetuses at high risk for various conditions on chromosomal abnormalities.
Methods: In the study, 8,560 clinical samples were collected from pregnant women between February 2018 and June 2022, including 75 villus, 7,642 amniotic fluid, and 843 umbilical cord blood samples. All samples were screening for chromosomal abnormalities using both CMA and karyotyping.
Womens Health Rep (New Rochelle)
August 2025
Department of Maternal-Fetal Medicine, SUNY Upstate, Syracuse, New York, USA.
Objective: To determine the association between stress, as objectively measured by frequency of neighborhood gunshots and preterm birth (PTB).
Study Design: A retrospective chart review of 1675 individual births was analyzed of pregnant women who lived in the City of Syracuse, New York, United States. The frequency of gunshots was measured in the acute phase (within 1 week of delivery) and the chronic phase (sum total of all gunshots in the previous 2 years).
Front Psychiatry
August 2025
University of Kentucky, Lexington, KY, United States.
Introduction: As the legalization of cannabis becomes more widespread use has steadily increased. Approximately 5 percent of pregnant individuals self-report use during pregnancy.
Methods: This study uses a mixed methods approach to examine adverse childhood experiences, mental health needs, and cannabis use among a small sample (N =59) of women.
Vet Ital
September 2025
Istituto Zooprofilattico Sperimentale delle Venezie.
Avian reovirus (ARV) is an important pathogen of poultry and the causative agent of viral arthritis/tenosynovitis. The disease can cause severe clinical signs in broiler flocks at an early age, resulting in major welfare issues and substantial economic losses for the poultry industry. Vaccination of breeders is widely used to control the disease, aiming to reduce vertical transmission and provide maternal antibodies to offspring.
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