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  1. 441

    ERCC1 as a Marker of Ovarian Cancer Resistance to Platinum Drugs by T. A. Bogush, A. S. Popova, E. A. Dudko, E. A. Bogush, A. S. Tyulyandina, S. A. Tyulyandin, M. I. Davydov

    Published 2020-05-01
    “…Data on the prognostic and predictive value of ERCC1 as a marker of the response to platinum-based therapy in ovarian cancer are systematized. …”
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  2. 442

    Incremental Prognostic Value of Hippocampal Metabolic Activity for Sudden Cardiac Death in Patients With Heart Failure With Reduced Ejection Fraction by Zhiyong Shi, Mingkai Yun, Binbin Nie, Yujie Bai, Yaqi Zheng, Enjun Zhu, Yuetao Wang, Marcus Hacker, Yongqiang Lai, Baoci Shan, Sijin Li, Xiaoli Zhang, Xiang Li

    Published 2025-07-01
    “…Background Hippocampal injury is linked to cognitive impairment and cardiac events in patients with heart failure with reduced ejection fraction. However, the predictive value of hippocampal metabolic activity (HMA) for sudden cardiac death (SCD) and the underlying mechanisms remain unclear. …”
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    Article
  3. 443

    Bowel viability assessment during surgery (review of the literature) by A. A. Zacharenko, M. A. Belyaev, A. A. Trushin, D. A. Zaytcev, R. V. Kursenko

    Published 2020-05-01
    “…Parameters of techniques are analyzed: intraoperative clinical application, invasiveness, objectivity and quantification of viability parameters, predictive value for necrosis and anastomotic leakage. …”
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    Article
  4. 444

    Myocardium-to-cavity ratio derived from simultaneous 99mTc-PYP/201Tl dual-isotope SPECT imaging to differentially diagnose transthyretin cardiac amyloidosis by Shozo Yamashita, Kenichi Nakajima, Teppei Kitano, Hiromu Kato, Tatsuya Yoneyama, Haruki Yamamoto, Kunihiko Yokoyama

    Published 2025-07-01
    “…The M/C ratio demonstrated 100% sensitivity, specificity, and predictive values, irrespective of imaging time. In contrast, the H/CL ratios showed 100% sensitivity, 95% specificity, 79% positive predictive value, and 100% negative predictive value. …”
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    Article
  5. 445

    VISCERAL ADIPOSITY AS A GLOBAL FACTOR OF CARDIOVASCULAR RISK by G. A. Chumakova, T. Yu. Kuznetsova, M. A. Druzhilov, N. G. Veselovskaya

    Published 2018-06-01
    “…On the other hand, the two most global problems of this relationship — “obesity paradox” and heterogeneity of obesity phenotypes by cardiometabolic risk, released multiple discussions on the issues of predictive value of body overweight and obesity, and worth of correction in patients under the secondary prevention framework. …”
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  6. 446

    Genetic Predisposition to Sporadic Cancer: How to Handle Major Effects of Minor Genes? by Remond J. A. Fijneman

    Published 2005-01-01
    “…As a consequence, although allelic variation in one TSG on a permissive genetic Background can have major effects on tumor development, the net effect of allelic variation in multiple interacting TSGs remains hard to predict. Therefore, the predictive value of SNP-analysis to estimate an individuals cancer risk will be restricted to those TSGs that exhibit single-gene effects. …”
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    Article
  7. 447

    The validity of monitoring the control of diabetes with random blood glucose testing by O.F. Daramola, B. Mash

    Published 2013-12-01
    “…Retrospective data from a district hospital setting were used to analyse the correlation between glycated haemoglobin (HbA1c) and RBG, the best predictive value of RBG, and its predictive properties. …”
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    Article
  8. 448

    Comprehensive interaction modeling with machine learning improves prediction of disease risk in the UK Biobank by Heli Julkunen, Juho Rousu

    Published 2025-07-01
    “…In a clinical cardiovascular risk prediction scenario using the established QRISK3 model, the method adds predictive value by identifying interactions beyond the age interaction effects currently included. …”
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  9. 449

    Improving  the  Financial  Reporting of  Organizations  in the Digital Economy by T. Yu. Druzhilovskaya, E. S. Druzhilovskaya

    Published 2019-03-01
    “…The article analyzes the problem of the relationship between the development of the digital economy and ensuring the qualitative characteristics of financial statements, such as relevance, predictive value, confirming value, materiality, fair representation, completeness, neutrality, comparability, verifiability, timeliness, clarity and being error-free. …”
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  10. 450

    Predictors for Gangrene and Perforation of Gallbladder Wall in Patients with Acute Cholecystitis by Polina Marinova

    Published 2023-12-01
    “…The total possible score was 11 points. The positive predictive value of the scale was 96% and identified the cases with micro-perforation and perivesical abbesses among the group with the highest total score.…”
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  11. 451

    Diagnostic Utility of Endocan and Interleukins for Late-Onset Neonatal Sepsis by Preslava Gatseva, Alexander Blazhev, Zarko Yordanov, Victoria Atanasova

    Published 2023-12-01
    “…The best sensitivity (78%) and negative predictive value (84%) was found for IL-6. The introduction into routine practice of indicators such as PCT and IL-6 may provide an opportunity to promptly optimize the diagnostic and therapeutic approach to LOS.…”
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  12. 452

    Relevance of telemonitoring algorithms for the management of home noninvasive ventilation by Clara Bianquis, Kinan El Husseini, Léa Razakamanantsoa, Adrien Kerfourn, Emeline Fresnel, Jean-Christian Borel, Antoine Cuvelier, Johan Dupuis, Frédéric Gagnadoux, Capucine Morélot-Panzini, Jesus Gonzalez-Bermejo, Jean-François Muir, Arnaud Prigent, Claudio Rabec, Wojciech Trzepizur, Joao Winck, Patrick Brian Murphy, Maxime Patout

    Published 2025-03-01
    “…They had a global sensitivity of 78% (95% CI 37–95%), a specificity of 40% (95% CI 19–78%), a positive predictive value of 72% (95% CI 65–77%) and a negative predictive value of 45% (95% CI 37–51%). …”
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  13. 453

    The contributions of brain structural and functional variance in predicting age, sex and treatment by Ning-Xuan Chen, Gui Fu, Xiao Chen, Le Li, Michael P. Milham, Su Lui, Chao-Gan Yan

    Published 2021-06-01
    “…We found that voxel-based structural indices had stronger predictive value for age and sex, while voxel-based functional metrics showed stronger predictive value for treatment. …”
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  14. 454

    Assessing the performance of the Iceland screens, treats, or prevents multiple myeloma (iStopMM) model in a multicultural Bronx cohort: implications for monoclonal gammopathy of un... by Rajvi Gor, Jeevan Shivakumar, Pallavi Surana, John Wei, Irina Murakhovskaya, Mendel Goldfinger, Noah Kornblum, Lauren Shapiro, Aditi Shastri, Ridhi Gupta, David Levitz, Marina Konopleva, Eric Feldman, Kira Gritsman, R. Alejandro Sica, Ioannis Mantzaris, Amit Verma, Dennis Cooper, Murali Janakiram, Nishi Shah

    Published 2025-08-01
    “…The area under the receiver operating characteristic (AUROC) curve assessed the iStopMM model’s performance in predicting ≥10% plasma cells, and sensitivity, specificity, positive predictive value (PPV), and negative predictive value (NPV) were calculated. …”
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  15. 455

    Personalised prediction of maintenance dialysis initiation in patients with chronic kidney disease stages 3–5: a multicentre study using the machine learning approach by Usman Iqbal, Tzu-Hao Chang, Chu-Lin Chou, Mai-Szu Wu, Yung-Ho Hsu, Chih-Wei Huang, Anh Trung Hoang, Phung-Anh Nguyen, Thanh Phuc Phan, Gia Tuyen Do, Huu Dung Nguyen, I-Jen Chiu, Yu-Chen Ko, Chia-Te Liao

    Published 2024-06-01
    “…Model evaluation metrics, including area under the curve (AUC), sensitivity, specificity, positive predictive value, negative predictive value and F1 score, were employed.Results A total of 6123 and 5279 patients were included for 1 year and 3 years of the model development. …”
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  16. 456

    Research on Nonlinear Time Series Processing Method for Automatic Building Construction Management by Yunbing Liu

    Published 2022-01-01
    “…By comparing the results, the maximum relative error of BP network prediction is 18.59%, while the maximum relative error of RBF network prediction is 29.16%, and the average relative error of 13P network prediction is 7.02%, while the average relative error of RBF network prediction value is 10.5%. The comprehensive error of network prediction is 6.1%, RBF network prediction is 8.52%, the standard deviation RMSE of BP network prediction error is 15.347, and that of RBF network prediction error is 21.401, and it shows that the prediction accuracy of BP network is higher than that of RBF network.…”
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  17. 457

    AI-based staging, causal hypothesis and progression of subjects at risk of Alzheimer’s disease: a multicenter study by Simona Aresta, Raffaello Nemni, Moreno Zanardo, Graziella Sirabian, Dario Capelli, Marco Alì, Paolo Vitali, Paolo Vitali, Enrico Giuseppe Bertoldo, Valentina Fiolo, Lilla Bonanno, Giuseppa Maresca, Petronilla Battista, Francesco Sardanelli, Francesco Sardanelli, Francesca Benedetta Pizzini, Isabella Castiglioni, Christian Salvatore, Christian Salvatore

    Published 2025-05-01
    “…For the three-class classification of causal hypotheses (n = 112), the AI performance vs. biomarker-based diagnosis was: positive predictive value 91% [95% CI: 84–96%]; negative predictive value 100%, and accuracy 91% [84–96%]. …”
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  18. 458

    Diagnostic Efficacy of Cervical Elastography in Predicting Spontaneous Preterm Birth in Pregnancies with Threatened Preterm Labor by Hayan Kwon, Ji-Hee Sung, Hyun Soo Park, Ja-Young Kwon, Yun Ji Jung, Hyun-Joo Seol, Hyun Mi Kim, Won Joon Seong, Han Sung Hwang, Soo-Young Oh, on behalf of The Korean Consortium for the Study of Cervical Elastography in Prediction of Preterm Delivery

    Published 2025-07-01
    “…This study aimed to determine the predictive value of cervical elastography for preterm delivery before 37 weeks of gestation in patients with threatened PTL and a cervical length greater than 15 mm. …”
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  19. 459
  20. 460

    Evaluating the diagnostic accuracy of 99mTc-labeled somatostatin receptor imaging for suspected pheochromocytomas and paragangliomas by Bo Li, Xintao Ding, Jie Zhang, Minmin Tang, Huimin Liu, Xinyu Wu, Yongju Gao

    Published 2025-07-01
    “…The sensitivity, specificity, positive predictive value (PPV), negative predictive value (NPV), and overall accuracy of the imaging modality were calculated. …”
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    Article