Literature DB >> 20167948

Statistical methods for the assessment of prognostic biomarkers(part II): calibration and re-classification.

Giovanni Tripepi1, Kitty J Jager, Friedo W Dekker, Carmine Zoccali.   

Abstract

Calibration is the ability of a prognostic model to correctly estimate the probability of a given event across the whole range of prognostic estimates (for example, 30% probability of death, 40% probability of myocardial infarction, etc.). The key difference between calibration and discrimination is that the latter reflects the ability of a given prognostic biomarker to distinguish a status (died/survived, event/non-event), while calibration measures how much the prognostic estimation of a predictive model matches the real outcome probability (that is, the observed proportion of the event). Re-classification is another measure of prognostic accuracy and it reflects how much a new prognostic biomarker increases the proportion of individuals correctly re-classified as having or not having a given event compared to a previous classification based on an existing prognostic biomarker or predictive model.

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Year:  2010        PMID: 20167948     DOI: 10.1093/ndt/gfq046

Source DB:  PubMed          Journal:  Nephrol Dial Transplant        ISSN: 0931-0509            Impact factor:   5.992


  20 in total

1.  The prognostic role of ThromboDynamic Index in patients with severe sepsis.

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2.  Pulmonary congestion predicts cardiac events and mortality in ESRD.

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Review 3.  Cardiovascular risk.

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Review 4.  Monitoring of inflammation in patients on dialysis: forewarned is forearmed.

Authors:  Christiaan L Meuwese; Peter Stenvinkel; Friedo W Dekker; Juan J Carrero
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5.  Urinary-cell mRNA profile and acute cellular rejection in kidney allografts.

Authors:  Manikkam Suthanthiran; Joseph E Schwartz; Ruchuang Ding; Michael Abecassis; Darshana Dadhania; Benjamin Samstein; Stuart J Knechtle; John Friedewald; Yolanda T Becker; Vijay K Sharma; Nikki M Williams; Christina S Chang; Christine Hoang; Thangamani Muthukumar; Phyllis August; Karen S Keslar; Robert L Fairchild; Donald E Hricik; Peter S Heeger; Leiya Han; Jun Liu; Michael Riggs; David N Ikle; Nancy D Bridges; Abraham Shaked
Journal:  N Engl J Med       Date:  2013-07-04       Impact factor: 91.245

6.  Abdominal aortic calcification and renal resistive index in patients with chronic kidney disease: is there a connection?

Authors:  Gabriel Stefan; Cristina Capusa; Simona Stancu; Ligia Petrescu; Elena Dana Nedelcu; Iuliana Andreiana; Gabriel Mircescu
Journal:  J Nephrol       Date:  2014-01-15       Impact factor: 3.902

7.  Multicenter validation of urinary CXCL9 as a risk-stratifying biomarker for kidney transplant injury.

Authors:  D E Hricik; P Nickerson; R N Formica; E D Poggio; D Rush; K A Newell; J Goebel; I W Gibson; R L Fairchild; M Riggs; K Spain; D Ikle; N D Bridges; P S Heeger
Journal:  Am J Transplant       Date:  2013-08-22       Impact factor: 8.086

Review 8.  Urinary cell mRNA profiles predictive of human kidney allograft status.

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9.  Derivation of a risk assessment model for hospital-acquired venous thrombosis: the NAVAL score.

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Review 10.  Prognostication of Survival in Patients With Advanced Cancer: Predicting the Unpredictable?

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Journal:  Cancer Control       Date:  2015-10       Impact factor: 3.302

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