12.07.2015 Views

Predicting Cardiovascular Risks using Pattern Recognition and Data ...

Predicting Cardiovascular Risks using Pattern Recognition and Data ...

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Attribute nameAttributetypeMissingvaluesAttribute valuesMaxFreq/Mean/StdevPATIENT_STATUS Boolean 0 Alive/Dead 713 (Alive)30D stroke/death Boolean 0 Y/N 806 (N)AGE Continuous 0 [38,93] 67.99ASA_GRADE Continuous 38 [1,4] 2.24/0.46D Boolean 1 Y/N/Null 748(N)HD Boolean 1 Y/N/Null 550 (N)HYPERTENSION Boolean 7 Y/N/Null 449(N)PATCH Categorical 253PTFE/Dacron/Vein/OtherVein/Stent171/341-PTFE -Dundee; 185/499-Dacron - HullsiteRENAL_FAILURE Boolean 7 Y/N/Null 820 (N)RESPIRATORY Categorical 16Normal/MildCOAD/ModCOAD/Severe711 (Normal)COAD/NullSEX Boolean 0 M/F 507 (M)SHUNT Boolean 14 Y/N/Null 501 (Y)St Boolean 1 Y/N/Null 565 (N)R1-A SIDE Boolean 0 Left/RightCONS Categorical 0 1;2;3;4;5 383 (4)Vascular Unit Categorical 0 1;2 498 (2)6.3.6. Clinical Model 4b (CM4b)Table 6.5: CM4a <strong>and</strong> CM4b data structure <strong>and</strong> summary.The data structure for this model is the same as in the model CM4a (see Table 6.5). However, theexpected outcomes are the same as model CM3b outcomes.They are given by:IF Attr1 = "Dead" AND Attr2 = "Y" "Very High risk"Else IF Attr1 = "Dead" "High risk"Else IF Attr2 = "Y" "Medium risk"Other wise, "Low risk"85

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