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DTRlearn (version 1.3)

predict.linearcl: Predict

Description

This function predicts the optimal treatments with model of class 'linearcl', which is estimated by wsvm with 'linear' kernel.

Usage

# S3 method for linearcl
predict(object, x,...)

Arguments

object

model of class 'linearcl'

x

a matrix of feature variables, n by p

...

further arguments passed to or from other methods.

Value

a vector of optimal treatments, each entry is for a row in x, the matrix of new feature variables.

See Also

wsvm

Examples

Run this code
# NOT RUN {
n=200
A=2*rbinom(n,1,0.5)-1
p=20
mu=numeric(p)
Sigma=diag(p)
#feature variable is multi variate normal
X=mvrnorm(n,mu,Sigma)
#the outcome is generated where the true optimal treatment
#is sign of the interaction term(of treatment and feature)
R=X[,1:3]%*%c(1,1,-2)+X[,3:5]%*%c(1,1,-2)*A+rnorm(n)

# linear SVM
model1=wsvm(X,A,R)
m=100
Xtest=mvrnorm(m,mu,Sigma)
predict(model1,Xtest)
# }

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