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Predicting the generalization of computer aided detection (CADe) models for colonoscopy
Published 2024-11-01“…We show that a "Masked Siamese Network" (MSN), trained to predict masked out regions of polyp images without labels, can predict the performance of Computer Aided Detection (CADe) of polyps on colonoscopies, without labels. …”
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Validation of Artificial Intelligence Computer-Aided Detection on Gastric Neoplasm in Upper Gastrointestinal Endoscopy
Published 2024-11-01Subjects: Get full text
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Validation of Artificial Intelligence Computer-Aided Detection of Colonic Neoplasm in Colonoscopy
Published 2024-12-01“…In this study, we aimed to validate a previously developed artificial intelligence (AI) computer-aided detection (CADe) algorithm called ALPHAON<sup>®</sup> and compare outcomes with previous studies that showed that AI outperformed and assisted endoscopists of diverse levels of expertise in detecting colon polyps. …”
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Optimising computer aided detection to identify intra-thoracic tuberculosis on chest x-ray in South African children.
Published 2023-01-01“…Diagnostic tools for paediatric tuberculosis remain limited, with heavy reliance on clinical algorithms which include chest x-ray. Computer aided detection (CAD) for tuberculosis on chest x-ray has shown promise in adults. …”
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Isfahan Artificial Intelligence Event 2023: Macular Pathology Detection Competition
Published 2024-01-01“…Background: Computer-aided diagnosis (CAD) methods have become of great interest for diagnosing macular diseases over the past few decades. …”
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Artificial Intelligence in Gastroenterology: A Comprehensive Review
Published 2025-06-01“…Through advanced technologies like Computer-Aided detection (CADe) and Computer-Aided diagnosis (CADx) using deep learning models, AI significantly improves polyp detection rates and reduces miss rates, with reported performances of 95% detection and 50% miss rate reduction. …”
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A Novel Machine Learning Model for the Automated Diagnosis of Nasal Pathology in Canine Patients
Published 2025-06-01“…Recent years have seen remarkable advancement in computer-aided detection systems in human medicine, with machine and deep learning techniques being successfully applied for the identification and accurate classification of intranasal pathology. …”
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