PICC thrombus risk prediction method based on machine learning
A technology of risk prediction and machine learning, applied in the field of PICC thrombosis risk prediction based on machine learning, can solve the problems of prolonging the hospitalization time of patients, hindering the function of venous valves, and increasing hospitalization costs, so as to ensure orderly progress, improve the quality of life, The effect of reducing the probability of thrombosis
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[0044] In order to make the object, technical solution and advantages of the present invention clearer, the present invention will be further described in detail below in conjunction with the accompanying drawings and embodiments. It should be understood that the specific embodiments described here are only used to explain the present invention, not to limit the present invention.
[0045] Such as figure 1 Shown, the present invention is a kind of PICC thrombosis risk prediction method based on machine learning, comprises the following steps:
[0046] Step 1. Data collection and preprocessing.
[0047] Step 1.1. Collect relevant data of 625 patients. The relevant data are specifically 30 characteristics of PICC thrombosis in each case, including gender, age, bed rest, primary tumor site, high risk, tumor metastasis, and metastatic site High risk, underlying diseases, major surgery, history of deep vein thrombosis, smoking history, radiotherapy, drug properties, targeted drug...
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