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I am trying to compare an actual portfolio's performance to the performances of hypothetical random portfolios.

Here is a sample of the data set I am working with. It shows two months worth of data, the names of the managers in the portfolios, and the returns, allocations, and attributions of those managers.

"date" "manager" "return" "allocation" "attribution"
2005-01-31 "manager01" -0.00763241754291056 0.146 6.94549996404861e-05
2005-01-31 "manager02" 0.0292205518315147 0.048 4.09087725641205e-05
2005-01-31 "manager03" -0.0354047394153526 0.049 -8.85118485383814e-05
2005-01-31 "manager04" 0.0424244772606645 0.124 -0.000148485670412326
2005-01-31 "manager05" -0.0574606103881735 0.134 0.000206858197397425
2005-01-31 "manager06" 0.0465278163188542 0.098 -0.000265208553017469
2005-01-31 "manager07" 0.157063203979822 0.142 -0.000219888485571751
2005-01-31 "manager08" -0.0594342759491509 0.071 2.97171379745754e-05
2005-01-31 "manager09" -0.0199466865109495 0.093 6.18347281839434e-05
2005-01-31 "manager10" 0.118839410130508 0.095 0.000190143056208813
2005-02-28 "manager01" 0.0403671815817711 0.119 -0.000460185870032191
2005-02-28 "manager02" 0.0246109773791459 0.064 -3.93775638066334e-05
2005-02-28 "manager03" 0.00868489880733732 0.065 -4.08190243944854e-05
2005-02-28 "manager04" -0.082332291530606 0.105 2.46996874591818e-05
2005-02-28 "manager05" -0.0903959999837099 0.114 -0.000117514799978823
2005-02-28 "manager06" 0.0514735666329574 0.081 -6.17682799595489e-05
2005-02-28 "manager07" -0.00914374153663751 0.164 -8.41224221370651e-05
2005-02-28 "manager08" -0.0367283709786134 0.083 -4.77468822721974e-05
2005-02-28 "manager09" -0.04752320926613 0.079 -3.8018567412904e-05
2005-02-28 "manager10" -0.0657464361573664 0.126 -0.000309008249939622

In order to get the data into R, copy the data to the clipboard and then

mydata<-read.table("clipboard",header=TRUE)

In order to create the random portfolios I then use ddply, mutate, and rlongonly functions from plyr and rportfolio.

library(plyr)
library(rporfolio)

mydata.new<-ddply(mydata,.(date),mutate,new.attr=t(rlongonly(m=1,n=length(date),k=10,x.u=.15))*return)

In the rlongonly function:

  • The value for m is the number of random portfolios I want to create.
  • The value for n is the number of allocations for the time period.
  • The value for k is the number of non zero allocations.
  • The value for x.u is the upper limit for an allocation.

Attribution is merely return * allocation.

If I have m=1, everything is fine. If I have m>1, the dimensions of the output are not correct.

mydata.new2<-ddply(mydata,.(date),mutate,new.attr=t(rlongonly(m=2,n=length(date),k=10,x.u=.15))*return)
dim(mydata.new)

mydata.new2 has only 6 columns when it should have 7. The last column "new.attr" is basically 2 columns in one.

When I try to melt mydata.new2, I get the following error.

library(reshape2)
drop<-names(mydata.new2) %in% c("manager","return","allocation")
melt(mydata.new2[!drop],id="date")

> Error in rbind(deparse.level, ...) : 
> numbers of columns of arguments do not match

How do I split up the "new.attr" column so that I can melt and graph the data?

share|improve this question
up vote 1 down vote accepted

First I regenrate your data, you have to use dput(mydata) and post the result next time.

Then I generate your mydata.new2 vector.

library(plyr)
library(rportfolios)

mydata.new2<-ddply(mydata,
                  .(date),
                  mutate,
                  new.attr=t(rlongonly(m=2,n=length(date),k=10,x.u=.15))*return)

I round the numeric values , I and I show the data

 mydata.new2[,-c(1,2)] <- numcolwise(round_any)(mydata.new2,0.0001)
 head(mydata.new2)
        date   manager  return allocation attribution new.attr.1 new.attr.2
1 2005-01-31 manager01 -0.0076      0.146       1e-04    -0.0009    -0.0007
2 2005-01-31 manager02  0.0292      0.048       0e+00     0.0032     0.0040
3 2005-01-31 manager03 -0.0354      0.049      -1e-04    -0.0024    -0.0049
4 2005-01-31 manager04  0.0424      0.124      -1e-04     0.0029     0.0025
5 2005-01-31 manager05 -0.0575      0.134       2e-04    -0.0047    -0.0042
6 2005-01-31 manager06  0.0465      0.098      -3e-04     0.0051     0.0039

Here I have 7 columns and not 6 columns as you said.

I try to melt the data:

library(reshape2)
drop<-names(mydata.new2) %in% c("manager","return","allocation")
melt(mydata.new2[!drop],id="date")

But here you get the error:

 numbers of columns of arguments do not match

beacuse of the nested data.frame new.attr in mydata.new2 data.frame. This is due to the use of mutate. Here it is better to use transform because you don't need to do transformation iteratively.

So :

mydata.new2<-ddply(mydata,
                  .(date),
                  transform,
                  new.attr=t(rlongonly(m=2,n=length(date),k=10,x.u=.15))*return)

and you get your result

head(melt(mydata.new2[!drop],id="date"))
        date    variable         value
1 2005-01-31 attribution  6.945500e-05
2 2005-01-31 attribution  4.090877e-05
3 2005-01-31 attribution -8.851185e-05
4 2005-01-31 attribution -1.484857e-04
5 2005-01-31 attribution  2.068582e-04
6 2005-01-31 attribution -2.652086e-04
share|improve this answer
    
Thank you! That worked perfectly. Such a simple fix. – jfreels Nov 30 '12 at 4:09

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