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I edit to specify my problem. This is my dataset (for example)

library(quantmod)
getSymbols("AAPL",from="2013-01-01")
data<-AAPL
p1<-4   
dO<-data[,1]
dC<-data[,4]
emaO<-EMA(dO,n=p1)
emaC<-EMA(dC,n=p1)
fee<-0.1
cross<-ifelse((emaC<emaO & lag(emaC,1)>lag(emaO,1))|emaC>emaO & lag(emaC,1)<lag(emaO,1),"A","N")
type<-ifelse(emaC>emaO,"S",
             ifelse(emaC<emaO,"L","Equal"))
Pos_emaO_dO_UP<-emaO>dO
Pos_emaO_dO_D<-emaO<dO
Pos_emaC_dC_UP<-emaC>dC
Pos_emaC_dC_D<-emaC<dC
Pos_emaC_emaO_UP<-emaC>emaO
Pos_emaC_emaO_D<-emaC<emaO
Profit_L<-((((lag(dC,-1))-(lag(dO,-1)))/(lag(dO,-1)))*100)-fee

This should be a data.frame of how it looks like

df1<-data.frame(cross,type,Pos_emaO_dO_UP,Pos_emaO_dO_D,Pos_emaC_dC_UP,Pos_emaC_dC_D,Pos_emaC_emaO_UP,Pos_emaC_emaO_D,Profit_L)
colnames(df1)<-c("cross","type","Pos_emaO_dO_UP","Pos_emaO_dO_D","Pos_emaC_dC_UP","Pos_emaC_dC_D","Pos_emaC_emaO_UP","Pos_emaC_emaO_D","Profit_L")
conditions<-c(Pos_emaO_dO_UP,Pos_emaO_dO_D,Pos_emaC_dC_UP,Pos_emaC_dC_D,Pos_emaC_emaO_UP,Pos_emaC_emaO_D)

And I was maybe wrong to ask you for this function

savefun<-function(x){
  Condition<-deparse(substitute(x))
  f<-head(subset(table_1,prekrizeni=="A" & TYP1=="L" & x),-1)
  Success<-nrow(f[f$Zisk_L>0,])/nrow(f)
  d<-data.frame(Condition,Success)
  d
}

So I will tell you all I need to not be misunderstanded. I want to make a function (or loop) which will be 2-step process. 1, I want go trough function savefun() ale of the conditions (First,second and so) and have a data.frame with all these results in form data.frame(Condition,Success) like it is in savefun() with n rows=length(conditions) 2, And at the end I want some kind of loop which repeat it until there is no Success column higher the higher of the previous. It means. Use savefun() for all conditions, choose the conditions with the highest Success column, take this condition and give it to savefun(), parameter f like this>

savefun<-function(x){
      Condition<-deparse(substitute(x))
      f<-head(subset(table_1,prekrizeni=="A" & TYP1=="L" & NEW_ADDED_CONDITION & x),-1)
      Success<-nrow(f[f$Zisk_L>0,])/nrow(f)
      d<-data.frame(Condition,Success)
      d
    }

Run the savefun() again on all conditions (instead the new_added_condition) and repeating this process until there is no combination with higher "the highest success" then previous one. Then stop the loop and show as result data.frame or just names of used conditions in last step before stop. I hope it is clear, I will really apreciate your help, I've got to finish my school work and I am in time press. Thanks a lot again @Richard Scriven @Osssan

share|improve this question
    
try if this works assign("x",list(x=x,b=b),envir = .GlobalEnv) and access it later using get("x") –  Osssan May 10 at 7:34
    
Instead of as.character(substitute(x)), you might want deparse(substitute(x)) –  Richard Scriven May 10 at 8:44
    
Thank you, I change it. It is better. Can you please help me with ""problem I mentioned above? I edit the Answer. Thanks a lot –  Bury May 10 at 8:46
    
for parsing through vector, do.call(rbind,lapply(vector,function(x) savefun(x))) –  Osssan May 10 at 8:46
    
Thanks but it doesn't work. It shows only 1 row as a result in data.frame –  Bury May 10 at 8:51

1 Answer 1

With assign and get

savefun<-function(x){
    f<-subset(table_1,prekrizeni=="A" & TYP1=="L" & x)
    b<-nrow(f[f$Zisk_L>0,])/nrow(f)
    assign('x',list(x=x,b=b),envir=.GlobalEnv)
    return(get('x',envir=.GlobalEnv))

}
share|improve this answer
    
Be careful with assign. The way you've written it, x will be overwritten if it already exists in the global environment. –  Richard Scriven May 10 at 8:41

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