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Here is a small example of the data frame I have:

data <- data.frame(station=rep(c(1,1,2),each=4), month=rep(c(2,3,2),each=4), day=rep(c(26:29),3),times=rep(c(1:4),3),place=c(1:8,1:4),V1=rep(9:12,3),V2=rep(9:12,3)) 

And this is the data frame I need:

data1 <- data.frame(station=rep(c(1,1,2),each=4), month=rep(c(2,3,2),each=4), day=rep(c(26:29),3),times=rep(c(1:4),3),place=c(1:8,1:4),V1=c(9,10,10,10,9:12,9,10,10,10),V2=c(9,10,10,10,9:12,9,10,10,10)) 

What I need to do is to repeat column V1 and V2 of February 28 & 29 to Feb 27th, because the original data has 300 stations and 60 years, I tried following but doesn't work:

data1 <- ddply(data, .(station, month, times),function(x) x[x[3:4,2]==2,6:7] <- x[2,6:7])

Any advice would be appreciated, thanks

share|improve this question
    
So, you want to replace the values for these dates with value of feb 27 –  Metrics Aug 9 '13 at 2:00
    
Can you please reword. This makes no sense. –  mnel Aug 9 '13 at 2:03
    
@Metrics, Yes, I only need to replace 11,12 to 10, and keep the rest the same –  Rosa Aug 9 '13 at 2:06
    
No, your code kept March the same which is what I wanted, but not all February needs to be replaced, only 28th and 29th, not 26th, thanks –  Rosa Aug 9 '13 at 2:36

2 Answers 2

up vote 0 down vote accepted

This is essentially a "last observation carried forward" problem, and as such the zoo package is helpful. Set everything on the 28th or 29th of February as NA, and then carry forward the values from the 27th using na.locf

library(zoo)
data[c("V1","V2")][data$day %in% c(28,29) & data$month %in% c(2),] <- NA
keyvals <- data[c("V1","V2")][data$day %in% c(27,28,29) & data$month %in% c(2),]
data[c("V1","V2")][data$day %in% c(27,28,29) & data$month %in% c(2),] <- na.locf(keyvals)

Result:

> data
   station month day times place V1 V2
1        1     2  26     1     1  9  9
2        1     2  27     2     2 10 10
3        1     2  28     3     3 10 10
4        1     2  29     4     4 10 10
5        1     3  26     1     5  9  9
6        1     3  27     2     6 10 10
7        1     3  28     3     7 11 11
8        1     3  29     4     8 12 12
9        2     2  26     1     1  9  9
10       2     2  27     2     2 10 10
11       2     2  28     3     3 10 10
12       2     2  29     4     4 10 10

> all.equal(data,data1)
[1] TRUE
share|improve this answer
    
Nice, how come I forget this function, thanks a lot!! –  Rosa Aug 9 '13 at 4:37

Here is how you do. If you have many cols, you can use lapply but here I don't use since you have only two cols

data$V1[data[,3] %in% c(28,29) & data[,2] %in% c(2) ]<-data$V1[data[,3] %in% c(27) & data[,2] %in% c(2)]
data$V2[data[,3] %in% c(28,29) & data[,2] %in% c(2) ]<-data$V2[data[,3] %in% c(27) & data[,2] %in% c(2)]

If you need to use multiple cols, here is the solution:

   do.call(cbind,lapply(data[,6:7],function (x) {x[data[,3] %in% c(28,29) & data[,2] %in% c(2) ]<-x[data[,3] %in% c(27) & data[,2] %in% c(2)]
                                               x})
          )
      V1 V2
 [1,]  9  9
 [2,] 10 10
 [3,] 10 10
 [4,] 10 10
 [5,]  9  9
 [6,] 10 10
 [7,] 11 11
 [8,] 12 12
 [9,]  9  9
[10,] 10 10
[11,] 10 10
[12,] 10 10

Note: Instead of data[,6:7] you can select the cols that yow want to replace, all others remain the same.

share|improve this answer
    
but I need the other months keep the same data, your code made March 28 & 29 replaced too. I do have 10 more columns –  Rosa Aug 9 '13 at 2:21
    
oops ! will edit –  Metrics Aug 9 '13 at 2:23
    
lapply function shows error : unexpected symbol –  Rosa Aug 9 '13 at 2:57
    
it works now: See the updated soln. –  Metrics Aug 9 '13 at 2:58
    
is there a way that you can make the output an entire data frame? because when I 'cbind' ur result with the previous 5 columns, although it worked with this small data set, the real data gets wrong combination of columns, that's why I tried "ddply(data, .(station, month, times),function(x)" in the beginning, thanks –  Rosa Aug 9 '13 at 3:21

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