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Copy pathprocess_modelled_results.r
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process_modelled_results.r
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for(m in c("Low", "Medium", "High")){
#combine chains
jposterior <- do.call(
rbind,
get(
paste0("posterior_", tolower(m))
)
)
veCumulative <- rcodes[[model]]
ve_cumulative <- matrix(
0,
ncol = length(times),
nrow = nrow(jposterior)
)
ve_instantaneous <- ve_cumulative
for(r in 1:nrow(jposterior)){
ve_cumulative[r, ] <- 1 - veCumulative(
t = times,
mean_rr = jposterior[r, "mean_rr"],
alpha = if("alpha" %in% colnames(jposterior)){
jposterior[r, "alpha"]
} else {
0
},
beta = if("beta" %in% colnames(jposterior)){
jposterior[r, "beta"]
} else {
0
}
)
#convert to instantaneous measure, assume no seasonality in average baseline rate
ve_instantaneous[r, ] <- cumVEtoInsFast(
ve_cumulative[r, ],
0
)
}
vaccine_efficacy_central <- rbindlist(
list(
data.table(
time = times,
vaccine_efficacy = rep(
"cumulative",
length(times)
),
median = sapply(
times+1,
function(x){
median(
ve_cumulative[, x]
)
}
),
low = sapply(
times+1,
function(x){
quantile(
ve_cumulative[, x],
0.025
)
}
),
high = sapply(
times+1,
function(x){
quantile(
ve_cumulative[, x],
0.975
)
}
)
),
data.table(
time = times,
vaccine_efficacy = rep(
"instantaneous",
length(times)
),
median = sapply(
times+1,
function(x){
median(
ve_instantaneous[, x]
)
}
),
low = sapply(
times+1,
function(x){
quantile(
ve_instantaneous[, x],
0.025
)
}
),
high = sapply(
times+1,
function(x){
quantile(
ve_instantaneous[, x],
0.975
)
}
)
)
)
)
vaccine_efficacy_central[, "mortality"] <- m
assign(
paste0(
"vaccine_efficacy_central_",
tolower(m)
),
vaccine_efficacy_central
)
assign(
paste0(
"ve_cumulative_",
tolower(m)
),
ve_cumulative
)
assign(
paste0(
"ve_instantaneous_",
tolower(m)
),
ve_instantaneous
)
}
vaccine_efficacy_central <- rbindlist(
list(
vaccine_efficacy_central_high,
vaccine_efficacy_central_medium,
vaccine_efficacy_central_low
)
)
vaccine_efficacy_central[, "mortality_factor"] <- factor(
vaccine_efficacy_central[, mortality],
levels=c("Low", "Medium", "High")
)