Automatic identification of type 2 diabetes, hypertension, ischaemic heart disease, heart failure and their levels of severity from Italian General Practitioners' electronic medical records: a validation study
ObjectivesThe Italian project MATRICE aimed to assess how well cases of type 2 diabetes (T2DM), hypertension, ischaemic heart disease (IHD) and heart failure (HF) and their levels of severity can be automatically extracted from the Health Search/CSD Longitudinal Patient Database (HSD). From the medi...
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| Published in | BMJ open Vol. 6; no. 12; p. e012413 |
|---|---|
| Main Authors | , , , , , , , , , , , , , , , |
| Format | Journal Article |
| Language | English |
| Published |
England
BMJ Publishing Group LTD
09.12.2016
BMJ Publishing Group |
| Subjects | |
| Online Access | Get full text |
| ISSN | 2044-6055 2044-6055 |
| DOI | 10.1136/bmjopen-2016-012413 |
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| Abstract | ObjectivesThe Italian project MATRICE aimed to assess how well cases of type 2 diabetes (T2DM), hypertension, ischaemic heart disease (IHD) and heart failure (HF) and their levels of severity can be automatically extracted from the Health Search/CSD Longitudinal Patient Database (HSD). From the medical records of the general practitioners (GP) who volunteered to participate, cases were extracted by algorithms based on diagnosis codes, keywords, drug prescriptions and results of diagnostic tests. A random sample of identified cases was validated by interviewing their GPs.SettingHSD is a database of primary care medical records. A panel of 12 GPs participated in this validation study.Participants300 patients were sampled for each disease, except for HF, where 243 patients were assessed.Outcome measuresThe positive predictive value (PPV) was assessed for the presence/absence of each condition against the GP's response to the questionnaire, and Cohen's κ was calculated for agreement on the severity level.ResultsThe PPV was 100% (99% to 100%) for T2DM and hypertension, 98% (96% to 100%) for IHD and 55% (49% to 61%) for HF. Cohen's kappa for agreement on the severity level was 0.70 for T2DM and 0.69 for hypertension and IHD.ConclusionsThis study shows that individuals with T2DM, hypertension or IHD can be validly identified in HSD by automated identification algorithms. Automatic queries for levels of severity of the same diseases compare well with the corresponding clinical definitions, but some misclassification occurs. For HF, further research is needed to refine the current algorithm. |
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| AbstractList | The Italian project MATRICE aimed to assess how well cases of type 2 diabetes (T2DM), hypertension, ischaemic heart disease (IHD) and heart failure (HF) and their levels of severity can be automatically extracted from the Health Search/CSD Longitudinal Patient Database (HSD). From the medical records of the general practitioners (GP) who volunteered to participate, cases were extracted by algorithms based on diagnosis codes, keywords, drug prescriptions and results of diagnostic tests. A random sample of identified cases was validated by interviewing their GPs.
HSD is a database of primary care medical records. A panel of 12 GPs participated in this validation study.
300 patients were sampled for each disease, except for HF, where 243 patients were assessed.
The positive predictive value (PPV) was assessed for the presence/absence of each condition against the GP's response to the questionnaire, and Cohen's κ was calculated for agreement on the severity level.
The PPV was 100% (99% to 100%) for T2DM and hypertension, 98% (96% to 100%) for IHD and 55% (49% to 61%) for HF. Cohen's kappa for agreement on the severity level was 0.70 for T2DM and 0.69 for hypertension and IHD.
This study shows that individuals with T2DM, hypertension or IHD can be validly identified in HSD by automated identification algorithms. Automatic queries for levels of severity of the same diseases compare well with the corresponding clinical definitions, but some misclassification occurs. For HF, further research is needed to refine the current algorithm. The Italian project MATRICE aimed to assess how well cases of type 2 diabetes (T2DM), hypertension, ischaemic heart disease (IHD) and heart failure (HF) and their levels of severity can be automatically extracted from the Health Search/CSD Longitudinal Patient Database (HSD). From the medical records of the general practitioners (GP) who volunteered to participate, cases were extracted by algorithms based on diagnosis codes, keywords, drug prescriptions and results of diagnostic tests. A random sample of identified cases was validated by interviewing their GPs.OBJECTIVESThe Italian project MATRICE aimed to assess how well cases of type 2 diabetes (T2DM), hypertension, ischaemic heart disease (IHD) and heart failure (HF) and their levels of severity can be automatically extracted from the Health Search/CSD Longitudinal Patient Database (HSD). From the medical records of the general practitioners (GP) who volunteered to participate, cases were extracted by algorithms based on diagnosis codes, keywords, drug prescriptions and results of diagnostic tests. A random sample of identified cases was validated by interviewing their GPs.HSD is a database of primary care medical records. A panel of 12 GPs participated in this validation study.SETTINGHSD is a database of primary care medical records. A panel of 12 GPs participated in this validation study.300 patients were sampled for each disease, except for HF, where 243 patients were assessed.PARTICIPANTS300 patients were sampled for each disease, except for HF, where 243 patients were assessed.The positive predictive value (PPV) was assessed for the presence/absence of each condition against the GP's response to the questionnaire, and Cohen's κ was calculated for agreement on the severity level.OUTCOME MEASURESThe positive predictive value (PPV) was assessed for the presence/absence of each condition against the GP's response to the questionnaire, and Cohen's κ was calculated for agreement on the severity level.The PPV was 100% (99% to 100%) for T2DM and hypertension, 98% (96% to 100%) for IHD and 55% (49% to 61%) for HF. Cohen's kappa for agreement on the severity level was 0.70 for T2DM and 0.69 for hypertension and IHD.RESULTSThe PPV was 100% (99% to 100%) for T2DM and hypertension, 98% (96% to 100%) for IHD and 55% (49% to 61%) for HF. Cohen's kappa for agreement on the severity level was 0.70 for T2DM and 0.69 for hypertension and IHD.This study shows that individuals with T2DM, hypertension or IHD can be validly identified in HSD by automated identification algorithms. Automatic queries for levels of severity of the same diseases compare well with the corresponding clinical definitions, but some misclassification occurs. For HF, further research is needed to refine the current algorithm.CONCLUSIONSThis study shows that individuals with T2DM, hypertension or IHD can be validly identified in HSD by automated identification algorithms. Automatic queries for levels of severity of the same diseases compare well with the corresponding clinical definitions, but some misclassification occurs. For HF, further research is needed to refine the current algorithm. ObjectivesThe Italian project MATRICE aimed to assess how well cases of type 2 diabetes (T2DM), hypertension, ischaemic heart disease (IHD) and heart failure (HF) and their levels of severity can be automatically extracted from the Health Search/CSD Longitudinal Patient Database (HSD). From the medical records of the general practitioners (GP) who volunteered to participate, cases were extracted by algorithms based on diagnosis codes, keywords, drug prescriptions and results of diagnostic tests. A random sample of identified cases was validated by interviewing their GPs.SettingHSD is a database of primary care medical records. A panel of 12 GPs participated in this validation study.Participants300 patients were sampled for each disease, except for HF, where 243 patients were assessed.Outcome measuresThe positive predictive value (PPV) was assessed for the presence/absence of each condition against the GP's response to the questionnaire, and Cohen's κ was calculated for agreement on the severity level.ResultsThe PPV was 100% (99% to 100%) for T2DM and hypertension, 98% (96% to 100%) for IHD and 55% (49% to 61%) for HF. Cohen's kappa for agreement on the severity level was 0.70 for T2DM and 0.69 for hypertension and IHD.ConclusionsThis study shows that individuals with T2DM, hypertension or IHD can be validly identified in HSD by automated identification algorithms. Automatic queries for levels of severity of the same diseases compare well with the corresponding clinical definitions, but some misclassification occurs. For HF, further research is needed to refine the current algorithm. |
| Author | Montalbano, Carmelo Sturkenboom, Miriam Gini, Rosa Roberto, Giuseppe Cricelli, Claudio Bellentani, Mariadonata Barletta, Valentina Lapi, Francesco Francesconi, Paolo Klazinga, Niek Bianchini, Elisa Pasqua, Alessandro Mazzaglia, Giampiero Schuemie, Martijn J Cricelli, Iacopo Dal Co, Giulia |
| AuthorAffiliation | 2 Department of Medical Informatics , Erasmus Medical Center , Rotterdam , The Netherlands 5 Health Search, Italian College of General Practitioners and Primary Care , Florence , Italy 6 Genomedics , Florence , Italy 1 Agenzia regionale di sanità della Toscana, Osservatorio di epidemiologia , Florence , Italy 3 Department of Epidemiology Janssen Research & Development , Titusville, New Jersey , USA 7 Italian College of General Practitioners and Primary Care , Florence , Italy 9 Academic Medical Center, University of Amsterdam , Amsterdam , The Netherlands 4 Observational Health Data Sciences and Informatics (OHDSI) , New York, New York , USA 8 Agenzia Nazionale per il Servizi Sanitari Regionali , Rome , Italy |
| AuthorAffiliation_xml | – name: 2 Department of Medical Informatics , Erasmus Medical Center , Rotterdam , The Netherlands – name: 5 Health Search, Italian College of General Practitioners and Primary Care , Florence , Italy – name: 6 Genomedics , Florence , Italy – name: 4 Observational Health Data Sciences and Informatics (OHDSI) , New York, New York , USA – name: 1 Agenzia regionale di sanità della Toscana, Osservatorio di epidemiologia , Florence , Italy – name: 3 Department of Epidemiology Janssen Research & Development , Titusville, New Jersey , USA – name: 8 Agenzia Nazionale per il Servizi Sanitari Regionali , Rome , Italy – name: 7 Italian College of General Practitioners and Primary Care , Florence , Italy – name: 9 Academic Medical Center, University of Amsterdam , Amsterdam , The Netherlands |
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| Snippet | ObjectivesThe Italian project MATRICE aimed to assess how well cases of type 2 diabetes (T2DM), hypertension, ischaemic heart disease (IHD) and heart failure... The Italian project MATRICE aimed to assess how well cases of type 2 diabetes (T2DM), hypertension, ischaemic heart disease (IHD) and heart failure (HF) and... |
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| SubjectTerms | Algorithms Angioplasty Blood pressure Cardiovascular disease Chronic illnesses Diabetes Diabetes Mellitus, Type 2 - diagnosis Electronic health records Electronic Health Records - standards Glucose Health Informatics Heart failure Heart Failure - diagnosis Hemoglobin Humans Hyperglycemia Hypertension Hypertension - diagnosis Insulin Ischemia Italy Laboratories Medical records Medical referrals Myocardial Ischemia - diagnosis Plasma Predictive Value of Tests Primary care Quality standards Severity of Illness Index Software Validation studies |
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| Title | Automatic identification of type 2 diabetes, hypertension, ischaemic heart disease, heart failure and their levels of severity from Italian General Practitioners' electronic medical records: a validation study |
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