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For instance if I have this data:

ID  Value   
1   2
1   2
1   3
1   4
1   10
2   9
2   9
2   12
2   13

And my goal is to find the smallest value for each ID subset, and I want the number to be in the first row of the ID group while leaving the other rows blank, such that:

ID  Value   Start
1   2       2
1   2       
1   3       
1   4       
1   10      
2   9       9
2   9       
2   12      
2   13      

My first instinct is to create an index for the IDs using

A <- transform(A, INDEX=ave(ID, ID, FUN=seq_along)) ## A being the name of my data

Since I am a noob, I get stuck at this point. For each ID=n, I want to find the min(A$Value) for that ID subset and place that into the cell matching condition of ID=n and INDEX=1.

Any help is much appreciated! I am sorry that I keep asking questions :(

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3 Answers

up vote 3 down vote accepted

Here's a solution:

within(A, INDEX <- "is.na<-"(ave(Value, ID, FUN = min), c(FALSE, !diff(ID))))

  ID Value INDEX
1  1     2     2
2  1     2    NA
3  1     3    NA
4  1     4    NA
5  1    10    NA
6  2     9     9
7  2     9    NA
8  2    12    NA
9  2    13    NA

Update:

How it works? The command ave(Value, ID, FUN = min) applies the function min to each subset of Value along the values of ID. For the example, it returns a vector of five times 2 and four times 9. Since all values except the first in each subset should be NA, the function "is.na<-" replaces all values at the logical index defined by c(FALSE, !diff(ID)). This index is TRUE if a value is identical with the preceding one.

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Can you add a little bit of explanation for this one? It's doing my head in. –  sebastian-c Feb 13 '13 at 12:26
    
@Sven Hohenstein: This solution works even better! My "Value" is actually "Date" in the format %m/%d/%Y (I didn't want to rely completely on others). The other solution does not apply well to Dates--it chooses the wrong minimum and maximum on some dates. I thought it is because R didn't recognize my data as dates, but after using as.Date() errors ensue. Then I tried your method and all the dates are correct.Thanks! –  shirleywu Feb 15 '13 at 1:33
    
@sebastian-c I added an explanation. –  Sven Hohenstein Feb 15 '13 at 2:31
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You're almost there. We just need to make a custom function instead of seq_along and to split value by ID (not ID by ID).

first_min <- function(x){
  nas <- rep(NA, length(x))
  nas[which.min(x)] <- min(x, na.rm=TRUE)
  nas
}

This function makes a vector of NAs and replaces the first element with the minimum value of Value.

transform(dat, INDEX=ave(Value, ID, FUN=first_min)) 

##   ID Value INDEX
## 1  1     2     2
## 2  1     2    NA
## 3  1     3    NA
## 4  1     4    NA
## 5  1    10    NA
## 6  2     9     9
## 7  2     9    NA
## 8  2    12    NA
## 9  2    13    NA
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Thanks for your detailed explanation, it is really helpful. I can't make it to work well for dates though –  shirleywu Feb 15 '13 at 1:55
    
You could mitigate this by inserting a line after producing the vector of NAs in first_min: if(inherits(x, "Date")) nas <- as.Date(nas) –  sebastian-c Feb 15 '13 at 3:05
    
Do you mean inserting it into the end of the function? –  shirleywu Feb 15 '13 at 4:07
    
@shirleywu Not at the end, between: nas <- rep(NA, length(x)) and nas[which.min(x)] <- min(x, na.rm=TRUE). –  sebastian-c Feb 15 '13 at 4:08
    
Now it works beautifully, thanks! –  shirleywu Feb 17 '13 at 21:02
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You can achieve this with a tapply one-liner

df$Start<-as.vector(unlist(tapply(df$Value,df$ID,FUN = function(x){ return (c(min(x),rep("",length(x)-1)))})))
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This also works well with Dates, and it leaves the empty cells empty! –  shirleywu Feb 15 '13 at 2:02
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