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I just started this programming, apologize for asking this simple question but I am stuck.

I have a data.table called s3:

s3:

ClaimID           dx      dxgroup
15nhbfcgcda       113.8   NA
15nhbfcgcda       156.8   NA
15nhbfcgcda       110.8   059
15nhbfcfssa       135.8   NA
15nhb4dfgda       V70.3   NA
15nhbf644da       118.8   042

S3 has 30000 rows.

  • I want to apply this logic:

    If dxgroup = NA(
        If dx (fisrt 4 characters match with)= (2024, 2967, 9786,9788,8263)
            then dxgroup = (first 4 character of dx)
        else dx (fisrt 3 characters match with) = (V70, 042,897)
            then dxgroup = (first 3 character of dx)
    else dxgroup = dx
    )
    
  • Result should be like :

    ClaimID           dx      dxgroup
    15nhbfcgcda       113.8   113.8
    15nhbfcgcda       156.8   156.8
    15nhbfcgcda       110.8   059
    15nhbfcfssa       135.8   135.8
    15nhb4dfgda       V70.3   V70
    15nhbf644da       118.8   042
    
  • Please advice ?

  • I apologize: It is my first time I am asking something here, so not used to yet. So I did something like this(I have no if this is correct and I got error as well):

    sample4<-sample3[, dxgroup := { if (dxgroup == NA)

    • { if (substring(sample3$dx,1,4) == list (2501,2780,4151,5301,5751,6860,7807,7890,9898,9955,9970)) substring(sample3$dx,1,4)
    • else if (substring(sample3$dx,1,3) == list (042,493,682,850,V72)) substring(sample3$dx,1,3)
    • else if (substring(sample3$dx,1,4) == list (8540, 8541)) substring(sample3$dx,1,3)
    • else if (substring(sample3$dx,1,3) == list (043, 044)) 042
    • else if (substring(sample3$dx,1,3) == list (789) & substring(sample3$dx,1,3) != list(7891,7893,78930)) 7890
    • else if (substring(sample3$dx,1,4) == list (7865) & substring(sample3$dx,1,4) != list(78651,78652,78659)) 78650}
    • else sample3$dx}] Error in if (dxgroup == NA) { : missing value where TRUE/FALSE needed In addition: Warning message: In if (dxgroup == NA) { : the condition has length > 1 and only the first element will be used
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3  
Please share what you've tried so far rather than just asking for code. –  Justin Dec 5 '13 at 17:37
    
I apologize: It is my first time I am asking something here, so not used to yet. I have added in my question. –  n.datascience Dec 5 '13 at 19:30
    
letters[] is a built-in vector of letters of the alphabet. So letters[1:4] is just "a" "b" "c" "d". You can see this by typing it at the command line. –  jlhoward Dec 5 '13 at 19:48
    
I am sorry for being a slow learner. –  n.datascience Dec 5 '13 at 20:32
    
hi, you mentioned data.table in your question. Make sure that you are using the data.table package or are you confounding it with data.frame? –  Ricardo Saporta Dec 6 '13 at 5:05

2 Answers 2

You have the logic all set.

Note that with data.table (well, almost all of R), you can wrap the j in {curly brackets} and the final statement in the brackets is what will be assigned. eg:

DT[,  dxgroup :=  { if (clause1)  
                     {if (foo) beebar else bar}
                  else chewybar
                  } 
  ]
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This is a more data.table friendly solution:

library(data.table)
s3 <- data.table(s3)
s3[is.na(dxgroup), dxgroup := dx] #Default
s3[is.na(dxgroup) & (substring(ClaimID, 1, 3) %in% ("V70", "042", "897")), dxgroup := substring(dx, 1, 3)]
s3[is.na(dxgroup) & (substring(ClaimID, 1, 4) %in% ("2024", "2967", "9786", "9788", "8263")), dxgroup := substring(dx, 1, 4)]

Basically, you work from the most global condition to the most specific condition, as each line in the above script potentially overwrites matches from the previous line.

(I assume you're using the data.table package. data.tables are different than data.frames, and in my opinion much better.)

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