Artificial Libri GmbH Artificial Intelligence in Medicine Handbook 2026

Artificial Libri GmbH Artificial Intelligence in Medicine Handbook 2026

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Specificaties

Overige kenmerken
Fabrikant Naam
Libri GmbH
CE markering
Nee
Dermatologisch getest
Nee
Verpakking lengte
28 cm
Verpakking breedte
21,6 cm
Verpakking hoogte
1,7 cm
EAN
9781105045691

Productomschrijving

Built for the clinician who now reviews an AI-generated finding, alert, or note before every diagnosis leaves the room, this reference connects the statistical foundations of clinical machine learning - validation methodology, sensitivity and specificity, calibration, regulatory clearance pathways - to the moment those numbers become a decision at the bedside. It moves across every major point of clinical AI contact - diagnostic imaging, cardiac and neuro screening, pathology and genomics, critical care alerting, psychiatry risk prediction, ambient documentation, and pharmacology - and into the judgment call each one demands. The proprietary Signal-to-Verdict Decision System, built into every chapter and consolidated in a dedicated Master Index, gives that judgment call a repeatable structure: Signal, Validation Check, Trap Logic, Standard-of-Care Anchor, Verdict. From Signal to Verdict, You Will Learn to ¿ Read a validation study like a scientist - internal versus external validation, AUROC, and calibration explained so a vendor's headline accuracy claim can be checked, not just trusted.¿ Verify a stroke-imaging or fracture-detection flag before it drives treatment - the direct-review discipline that catches an automated miss under real time pressure.¿ Weigh a critical-care deterioration alert against the patient in the bed - the bedside-reassessment habit that defeats alert fatigue without missing the real event.¿ Cross-check a molecular tumor board's variant call - including where genomic AI's ancestry-biased reference data quietly produces a wrong classification.¿ Respond to a suicide-risk flag the way psychiatry actually requires - compassionate direct engagement, not an automated intervention triggered by a low-precision score.¿ Catch a fabricated finding before you sign the note - the specific failure mode of ambient documentation, and the verification habit that stops it cold.¿ Audit a deployed model for a hidden subgroup performance gap - before it becomes a health equity failure instead of a fixable data problem.¿ Explain an AI-assisted diagnosis to the patient who asks who actually made the call - language for informed consent that protects the relationship and the record. Put this on the desk before the next AI-flagged chart crosses it - the verification habit every one of your patients is now counting on.

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