The Experts below are selected from a list of 3714 Experts worldwide ranked by ideXlab platform
Tim Doran - One of the best experts on this subject based on the ideXlab platform.
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the relationship between quality of care and choice of Clinical Computing System retrospective analysis of family practice performance under the uk quality and outcomes framework
In: 30th International Conference of the International Society for Quality in Health Care (ISQua); 13 Oct 2013; Edinburgh. 2013., 2013Co-Authors: Evangelos Kontopantelis, Iain Buchan, David Reeves, Kath Checkland, Tim DoranAbstract:Objectives: To investigate the relationship between performance on the UK Quality and Outcomes Framework pay-for-performance scheme and choice of Clinical computer System. Design: Retrospective longitudinal study. Setting: Data for 2007–2008 to 2010–2011, extracted from the Clinical computer Systems of general practices in England. Participants: All English practices participating in the pay-for-performance scheme: average 8257 each year, covering over 99% of the English population registered with a general practice. Main outcome measures: Levels of achievement on 62 quality-of-care indicators, measured as: reported achievement (levels of care after excluding inappropriate patients); population achievement (levels of care for all patients with the relevant condition) and percentage of available quality points attained. Multilevel mixed effects multiple linear regression models were used to identify population, practice and Clinical Computing System predictors of achievement. Results: Seven Clinical computer Systems were consistently active in the study period, collectively holding approximately 99% of the market share. Of all population and practice characteristics assessed, choice of Clinical Computing System was the strongest predictor of performance across all three outcome measures. Differences between Systems were greatest for intermediate outcomes indicators (eg, control of cholesterol levels). Conclusions: Under the UK’s pay-for-performance scheme, differences in practice performance were associated with the choice of Clinical Computing System. This raises the question of whether particular System characteristics facilitate higher quality of care, better data recording or both. Inconsistencies across Systems need to be understood and addressed, and researchers need to be cautious when generalising findings from samples of providers using a single Computing System. ARTICLE SUMMARY
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relationship between quality of care and choice of Clinical Computing System retrospective analysis of family practice performance under the uk s quality and outcomes framework
BMJ Open, 2013Co-Authors: Evangelos Kontopantelis, Iain Buchan, David Reeves, Kath Checkland, Tim DoranAbstract:Objectives To investigate the relationship between performance on the UK Quality and Outcomes Framework pay-for-performance scheme and choice of Clinical computer System. Design Retrospective longitudinal study. Setting Data for 2007–2008 to 2010–2011, extracted from the Clinical computer Systems of general practices in England. Participants All English practices participating in the pay-for-performance scheme: average 8257 each year, covering over 99% of the English population registered with a general practice. Main outcome measures Levels of achievement on 62 quality-of-care indicators, measured as: reported achievement (levels of care after excluding inappropriate patients); population achievement (levels of care for all patients with the relevant condition) and percentage of available quality points attained. Multilevel mixed effects multiple linear regression models were used to identify population, practice and Clinical Computing System predictors of achievement. Results Seven Clinical computer Systems were consistently active in the study period, collectively holding approximately 99% of the market share. Of all population and practice characteristics assessed, choice of Clinical Computing System was the strongest predictor of performance across all three outcome measures. Differences between Systems were greatest for intermediate outcomes indicators (eg, control of cholesterol levels). Conclusions Under the UK9s pay-for-performance scheme, differences in practice performance were associated with the choice of Clinical Computing System. This raises the question of whether particular System characteristics facilitate higher quality of care, better data recording or both. Inconsistencies across Systems need to be understood and addressed, and researchers need to be cautious when generalising findings from samples of providers using a single Computing System.
Evangelos Kontopantelis - One of the best experts on this subject based on the ideXlab platform.
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the relationship between quality of care and choice of Clinical Computing System retrospective analysis of family practice performance under the uk quality and outcomes framework
In: 30th International Conference of the International Society for Quality in Health Care (ISQua); 13 Oct 2013; Edinburgh. 2013., 2013Co-Authors: Evangelos Kontopantelis, Iain Buchan, David Reeves, Kath Checkland, Tim DoranAbstract:Objectives: To investigate the relationship between performance on the UK Quality and Outcomes Framework pay-for-performance scheme and choice of Clinical computer System. Design: Retrospective longitudinal study. Setting: Data for 2007–2008 to 2010–2011, extracted from the Clinical computer Systems of general practices in England. Participants: All English practices participating in the pay-for-performance scheme: average 8257 each year, covering over 99% of the English population registered with a general practice. Main outcome measures: Levels of achievement on 62 quality-of-care indicators, measured as: reported achievement (levels of care after excluding inappropriate patients); population achievement (levels of care for all patients with the relevant condition) and percentage of available quality points attained. Multilevel mixed effects multiple linear regression models were used to identify population, practice and Clinical Computing System predictors of achievement. Results: Seven Clinical computer Systems were consistently active in the study period, collectively holding approximately 99% of the market share. Of all population and practice characteristics assessed, choice of Clinical Computing System was the strongest predictor of performance across all three outcome measures. Differences between Systems were greatest for intermediate outcomes indicators (eg, control of cholesterol levels). Conclusions: Under the UK’s pay-for-performance scheme, differences in practice performance were associated with the choice of Clinical Computing System. This raises the question of whether particular System characteristics facilitate higher quality of care, better data recording or both. Inconsistencies across Systems need to be understood and addressed, and researchers need to be cautious when generalising findings from samples of providers using a single Computing System. ARTICLE SUMMARY
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relationship between quality of care and choice of Clinical Computing System retrospective analysis of family practice performance under the uk s quality and outcomes framework
BMJ Open, 2013Co-Authors: Evangelos Kontopantelis, Iain Buchan, David Reeves, Kath Checkland, Tim DoranAbstract:Objectives To investigate the relationship between performance on the UK Quality and Outcomes Framework pay-for-performance scheme and choice of Clinical computer System. Design Retrospective longitudinal study. Setting Data for 2007–2008 to 2010–2011, extracted from the Clinical computer Systems of general practices in England. Participants All English practices participating in the pay-for-performance scheme: average 8257 each year, covering over 99% of the English population registered with a general practice. Main outcome measures Levels of achievement on 62 quality-of-care indicators, measured as: reported achievement (levels of care after excluding inappropriate patients); population achievement (levels of care for all patients with the relevant condition) and percentage of available quality points attained. Multilevel mixed effects multiple linear regression models were used to identify population, practice and Clinical Computing System predictors of achievement. Results Seven Clinical computer Systems were consistently active in the study period, collectively holding approximately 99% of the market share. Of all population and practice characteristics assessed, choice of Clinical Computing System was the strongest predictor of performance across all three outcome measures. Differences between Systems were greatest for intermediate outcomes indicators (eg, control of cholesterol levels). Conclusions Under the UK9s pay-for-performance scheme, differences in practice performance were associated with the choice of Clinical Computing System. This raises the question of whether particular System characteristics facilitate higher quality of care, better data recording or both. Inconsistencies across Systems need to be understood and addressed, and researchers need to be cautious when generalising findings from samples of providers using a single Computing System.
Iain Buchan - One of the best experts on this subject based on the ideXlab platform.
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the relationship between quality of care and choice of Clinical Computing System retrospective analysis of family practice performance under the uk quality and outcomes framework
In: 30th International Conference of the International Society for Quality in Health Care (ISQua); 13 Oct 2013; Edinburgh. 2013., 2013Co-Authors: Evangelos Kontopantelis, Iain Buchan, David Reeves, Kath Checkland, Tim DoranAbstract:Objectives: To investigate the relationship between performance on the UK Quality and Outcomes Framework pay-for-performance scheme and choice of Clinical computer System. Design: Retrospective longitudinal study. Setting: Data for 2007–2008 to 2010–2011, extracted from the Clinical computer Systems of general practices in England. Participants: All English practices participating in the pay-for-performance scheme: average 8257 each year, covering over 99% of the English population registered with a general practice. Main outcome measures: Levels of achievement on 62 quality-of-care indicators, measured as: reported achievement (levels of care after excluding inappropriate patients); population achievement (levels of care for all patients with the relevant condition) and percentage of available quality points attained. Multilevel mixed effects multiple linear regression models were used to identify population, practice and Clinical Computing System predictors of achievement. Results: Seven Clinical computer Systems were consistently active in the study period, collectively holding approximately 99% of the market share. Of all population and practice characteristics assessed, choice of Clinical Computing System was the strongest predictor of performance across all three outcome measures. Differences between Systems were greatest for intermediate outcomes indicators (eg, control of cholesterol levels). Conclusions: Under the UK’s pay-for-performance scheme, differences in practice performance were associated with the choice of Clinical Computing System. This raises the question of whether particular System characteristics facilitate higher quality of care, better data recording or both. Inconsistencies across Systems need to be understood and addressed, and researchers need to be cautious when generalising findings from samples of providers using a single Computing System. ARTICLE SUMMARY
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relationship between quality of care and choice of Clinical Computing System retrospective analysis of family practice performance under the uk s quality and outcomes framework
BMJ Open, 2013Co-Authors: Evangelos Kontopantelis, Iain Buchan, David Reeves, Kath Checkland, Tim DoranAbstract:Objectives To investigate the relationship between performance on the UK Quality and Outcomes Framework pay-for-performance scheme and choice of Clinical computer System. Design Retrospective longitudinal study. Setting Data for 2007–2008 to 2010–2011, extracted from the Clinical computer Systems of general practices in England. Participants All English practices participating in the pay-for-performance scheme: average 8257 each year, covering over 99% of the English population registered with a general practice. Main outcome measures Levels of achievement on 62 quality-of-care indicators, measured as: reported achievement (levels of care after excluding inappropriate patients); population achievement (levels of care for all patients with the relevant condition) and percentage of available quality points attained. Multilevel mixed effects multiple linear regression models were used to identify population, practice and Clinical Computing System predictors of achievement. Results Seven Clinical computer Systems were consistently active in the study period, collectively holding approximately 99% of the market share. Of all population and practice characteristics assessed, choice of Clinical Computing System was the strongest predictor of performance across all three outcome measures. Differences between Systems were greatest for intermediate outcomes indicators (eg, control of cholesterol levels). Conclusions Under the UK9s pay-for-performance scheme, differences in practice performance were associated with the choice of Clinical Computing System. This raises the question of whether particular System characteristics facilitate higher quality of care, better data recording or both. Inconsistencies across Systems need to be understood and addressed, and researchers need to be cautious when generalising findings from samples of providers using a single Computing System.
David Reeves - One of the best experts on this subject based on the ideXlab platform.
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the relationship between quality of care and choice of Clinical Computing System retrospective analysis of family practice performance under the uk quality and outcomes framework
In: 30th International Conference of the International Society for Quality in Health Care (ISQua); 13 Oct 2013; Edinburgh. 2013., 2013Co-Authors: Evangelos Kontopantelis, Iain Buchan, David Reeves, Kath Checkland, Tim DoranAbstract:Objectives: To investigate the relationship between performance on the UK Quality and Outcomes Framework pay-for-performance scheme and choice of Clinical computer System. Design: Retrospective longitudinal study. Setting: Data for 2007–2008 to 2010–2011, extracted from the Clinical computer Systems of general practices in England. Participants: All English practices participating in the pay-for-performance scheme: average 8257 each year, covering over 99% of the English population registered with a general practice. Main outcome measures: Levels of achievement on 62 quality-of-care indicators, measured as: reported achievement (levels of care after excluding inappropriate patients); population achievement (levels of care for all patients with the relevant condition) and percentage of available quality points attained. Multilevel mixed effects multiple linear regression models were used to identify population, practice and Clinical Computing System predictors of achievement. Results: Seven Clinical computer Systems were consistently active in the study period, collectively holding approximately 99% of the market share. Of all population and practice characteristics assessed, choice of Clinical Computing System was the strongest predictor of performance across all three outcome measures. Differences between Systems were greatest for intermediate outcomes indicators (eg, control of cholesterol levels). Conclusions: Under the UK’s pay-for-performance scheme, differences in practice performance were associated with the choice of Clinical Computing System. This raises the question of whether particular System characteristics facilitate higher quality of care, better data recording or both. Inconsistencies across Systems need to be understood and addressed, and researchers need to be cautious when generalising findings from samples of providers using a single Computing System. ARTICLE SUMMARY
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relationship between quality of care and choice of Clinical Computing System retrospective analysis of family practice performance under the uk s quality and outcomes framework
BMJ Open, 2013Co-Authors: Evangelos Kontopantelis, Iain Buchan, David Reeves, Kath Checkland, Tim DoranAbstract:Objectives To investigate the relationship between performance on the UK Quality and Outcomes Framework pay-for-performance scheme and choice of Clinical computer System. Design Retrospective longitudinal study. Setting Data for 2007–2008 to 2010–2011, extracted from the Clinical computer Systems of general practices in England. Participants All English practices participating in the pay-for-performance scheme: average 8257 each year, covering over 99% of the English population registered with a general practice. Main outcome measures Levels of achievement on 62 quality-of-care indicators, measured as: reported achievement (levels of care after excluding inappropriate patients); population achievement (levels of care for all patients with the relevant condition) and percentage of available quality points attained. Multilevel mixed effects multiple linear regression models were used to identify population, practice and Clinical Computing System predictors of achievement. Results Seven Clinical computer Systems were consistently active in the study period, collectively holding approximately 99% of the market share. Of all population and practice characteristics assessed, choice of Clinical Computing System was the strongest predictor of performance across all three outcome measures. Differences between Systems were greatest for intermediate outcomes indicators (eg, control of cholesterol levels). Conclusions Under the UK9s pay-for-performance scheme, differences in practice performance were associated with the choice of Clinical Computing System. This raises the question of whether particular System characteristics facilitate higher quality of care, better data recording or both. Inconsistencies across Systems need to be understood and addressed, and researchers need to be cautious when generalising findings from samples of providers using a single Computing System.
Kath Checkland - One of the best experts on this subject based on the ideXlab platform.
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the relationship between quality of care and choice of Clinical Computing System retrospective analysis of family practice performance under the uk quality and outcomes framework
In: 30th International Conference of the International Society for Quality in Health Care (ISQua); 13 Oct 2013; Edinburgh. 2013., 2013Co-Authors: Evangelos Kontopantelis, Iain Buchan, David Reeves, Kath Checkland, Tim DoranAbstract:Objectives: To investigate the relationship between performance on the UK Quality and Outcomes Framework pay-for-performance scheme and choice of Clinical computer System. Design: Retrospective longitudinal study. Setting: Data for 2007–2008 to 2010–2011, extracted from the Clinical computer Systems of general practices in England. Participants: All English practices participating in the pay-for-performance scheme: average 8257 each year, covering over 99% of the English population registered with a general practice. Main outcome measures: Levels of achievement on 62 quality-of-care indicators, measured as: reported achievement (levels of care after excluding inappropriate patients); population achievement (levels of care for all patients with the relevant condition) and percentage of available quality points attained. Multilevel mixed effects multiple linear regression models were used to identify population, practice and Clinical Computing System predictors of achievement. Results: Seven Clinical computer Systems were consistently active in the study period, collectively holding approximately 99% of the market share. Of all population and practice characteristics assessed, choice of Clinical Computing System was the strongest predictor of performance across all three outcome measures. Differences between Systems were greatest for intermediate outcomes indicators (eg, control of cholesterol levels). Conclusions: Under the UK’s pay-for-performance scheme, differences in practice performance were associated with the choice of Clinical Computing System. This raises the question of whether particular System characteristics facilitate higher quality of care, better data recording or both. Inconsistencies across Systems need to be understood and addressed, and researchers need to be cautious when generalising findings from samples of providers using a single Computing System. ARTICLE SUMMARY
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relationship between quality of care and choice of Clinical Computing System retrospective analysis of family practice performance under the uk s quality and outcomes framework
BMJ Open, 2013Co-Authors: Evangelos Kontopantelis, Iain Buchan, David Reeves, Kath Checkland, Tim DoranAbstract:Objectives To investigate the relationship between performance on the UK Quality and Outcomes Framework pay-for-performance scheme and choice of Clinical computer System. Design Retrospective longitudinal study. Setting Data for 2007–2008 to 2010–2011, extracted from the Clinical computer Systems of general practices in England. Participants All English practices participating in the pay-for-performance scheme: average 8257 each year, covering over 99% of the English population registered with a general practice. Main outcome measures Levels of achievement on 62 quality-of-care indicators, measured as: reported achievement (levels of care after excluding inappropriate patients); population achievement (levels of care for all patients with the relevant condition) and percentage of available quality points attained. Multilevel mixed effects multiple linear regression models were used to identify population, practice and Clinical Computing System predictors of achievement. Results Seven Clinical computer Systems were consistently active in the study period, collectively holding approximately 99% of the market share. Of all population and practice characteristics assessed, choice of Clinical Computing System was the strongest predictor of performance across all three outcome measures. Differences between Systems were greatest for intermediate outcomes indicators (eg, control of cholesterol levels). Conclusions Under the UK9s pay-for-performance scheme, differences in practice performance were associated with the choice of Clinical Computing System. This raises the question of whether particular System characteristics facilitate higher quality of care, better data recording or both. Inconsistencies across Systems need to be understood and addressed, and researchers need to be cautious when generalising findings from samples of providers using a single Computing System.