4

Let's say I want to use foreach in the doParallel package to return a list of two data frames of different dimensions like the following:

a<-NULL
b<-NULL
for(i in 1:100){
  a<-rbind(a,data.frame(input=i,output=i/2))
  if(i > 5){
    b<-rbind(b,data.frame(input=i,output=i^2))
  }
}
list(a,b)

Sinceforeachreturns an object, there's no (at least to me) obvious way to do the above with foreach.

NOTE: this is a much simplified version of the problem I'm actually working with so solving the problem by using lapply (or something along those lines) won't work. The spirit of my question is how to do this with foreach.

7

I figured it out. You have to define your own function that combines the lists in exactly the way you want.

#takes an arbitrary number of lists x all of which much have the same structure    
comb <- function(x, ...) {  
      mapply(rbind,x,...,SIMPLIFY=FALSE)
}

foreach(i=1:10, .combine='comb') %dopar% {
      a<-rbind(a,data.frame(input=i,output=i/2))
      if(i > 5){
        b<-rbind(b,data.frame(input=i,output=i^2))
      }
      list(a,b)
}
  • 2
    I like your combine function, but I think you need remove the rbind calls from the body of the foreach loop. Also, if you use the foreach .multicombine=TRUE option, it will be more efficient since comb will be called once rather than 9 times in your example. – Steve Weston Dec 5 '14 at 3:06
  • How can we alter the comb function to return only unique values? – Mel May 8 '18 at 14:44
0

Adding a data.table rbindlist version to NewNameStat's answer:

#takes an arbitrary number of lists x all of which much have the same structure    
comb <- function(x, ...) {  
      mapply(rbind,x,...,SIMPLIFY=FALSE)
}

foreach(i=1:10, 
        .combine=function(x,...) mapply(function(...) data.table::rbindlist(list(...), fill = TRUE),x,...,SIMPLIFY=FALSE)) 
      %dopar% {
      a<-rbindlist(list(a,data.table(input=i,output=i/2)))
      if(i > 5){
        b<-rbindlist(list(b,data.table(input=i,output=i^2)))
      }
      list(a,b)
}

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