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766 results on '"Shah, Nigam H."'

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1. meds_reader: A fast and efficient EHR processing library

2. Answering real-world clinical questions using large language model based systems

3. Do Multimodal Foundation Models Understand Enterprise Workflows? A Benchmark for Business Process Management Tasks

4. Merlin: A Vision Language Foundation Model for 3D Computed Tomography

5. Automating the Enterprise with Foundation Models

6. Standing on FURM ground -- A framework for evaluating Fair, Useful, and Reliable AI Models in healthcare systems

7. Zero-Shot Clinical Trial Patient Matching with LLMs

8. INSPECT: A Multimodal Dataset for Pulmonary Embolism Diagnosis and Prognosis

9. MedAlign: A Clinician-Generated Dataset for Instruction Following with Electronic Medical Records

10. EHRSHOT: An EHR Benchmark for Few-Shot Evaluation of Foundation Models

11. All models are local: time to replace external validation with recurrent local validation

12. Evaluation of GPT-3.5 and GPT-4 for supporting real-world information needs in healthcare delivery

14. The Shaky Foundations of Clinical Foundation Models: A Survey of Large Language Models and Foundation Models for EMRs

15. DEPLOYR: A technical framework for deploying custom real-time machine learning models into the electronic medical record

16. Contextualising adverse events of special interest to characterise the baseline incidence rates in 24 million patients with COVID-19 across 26 databases: a multinational retrospective cohort study

17. Instability in clinical risk stratification models using deep learning

18. Clinical Utility Gains from Incorporating Comorbidity and Geographic Location Information into Risk Estimation Equations for Atherosclerotic Cardiovascular Disease

19. Net benefit, calibration, threshold selection, and training objectives for algorithmic fairness in healthcare

21. A comparison of approaches to improve worst-case predictive model performance over patient subpopulations

24. An open repository of real-time COVID-19 indicators

25. COVID-19 in patients with autoimmune diseases: characteristics and outcomes in a multinational network of cohorts across three countries

26. Characteristics and Outcomes of Over 300,000 Patients with COVID-19 and History of Cancer in the United States and SpainCharacteristics of 300,000 COVID-19 Individuals with Cancer

28. Ontology-driven weak supervision for clinical entity classification in electronic health records

29. An Empirical Characterization of Fair Machine Learning For Clinical Risk Prediction

30. Using public clinical trial reports to evaluate observational study methods

31. Language Models Are An Effective Patient Representation Learning Technique For Electronic Health Record Data

32. Use of repurposed and adjuvant drugs in hospital patients with covid-19: multinational network cohort study.

34. Deep phenotyping of 34,128 adult patients hospitalised with COVID-19 in an international network study.

35. Counterfactual Reasoning for Fair Clinical Risk Prediction

36. Medical device surveillance with electronic health records

37. A Semi-Supervised Machine Learning Approach to Detecting Recurrent Metastatic Breast Cancer Cases Using Linked Cancer Registry and Electronic Medical Record Data

38. Contextualising adverse events of special interest to characterise the baseline incidence rates in 24 million patients with COVID-19 across 26 databases: a multinational retrospective cohort study

39. Comparative safety and effectiveness of alendronate versus raloxifene in women with osteoporosis.

40. Predicting Inpatient Discharge Prioritization With Electronic Health Records

41. Explainability in Medical AI

45. Creating Fair Models of Atherosclerotic Cardiovascular Disease Risk

46. The Effectiveness of Multitask Learning for Phenotyping with Electronic Health Records Data

47. Countdown Regression: Sharp and Calibrated Survival Predictions

48. Monitoring physical function in patients with knee osteoarthritis using data from wearable activity monitors

49. Scalable and accurate deep learning for electronic health records

50. Improving Palliative Care with Deep Learning

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