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I got two big data frames, one (df1) has this structure

   chr    init
1  12  25289552
2   3 180418785
3   3 180434779

The other (df2) has this

    V1    V2     V3
10  1     69094 medium
11  1     69094 medium
12  12 25289552 high
13  1     69095 medium
14  3 180418785 medium
15  3 180434779 low

What I'm trying to do is to add the column V3 of df2 to df1, to get the info of the mutation

   chr    init  Mut
1  12  25289552 high
2   3 180418785 medium
3   3 180434779 low

I'm trying loading both into R and then doing a for loop using match but it doesn't work. Do you know any special way to do this? I am also open to do using awk or something similar

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3 Answers 3

up vote 1 down vote accepted

Use merge

df1 <- read.table(text='  chr    init
1  12  25289552
2   3 180418785
3   3 180434779', header=TRUE)


df2 <- read.table(text='    V1    V2     V3
10  1     69094 medium
11  1     69094 medium
12  12 25289552 high
13  1     69095 medium
14  3 180418785 medium
15  3 180434779 low', header=TRUE)


merge(df1, df2, by.x='init', by.y='V2') # this works!
       init chr V1     V3
1  25289552  12 12   high
2 180418785   3  3 medium
3 180434779   3  3    low

To get your desired output the way you show it

output <- merge(df1, df2, by.x='init', by.y='V2')[, c(2,1,4)]
colnames(output)[3] <- 'Mut' 
output
  chr      init    Mut
1  12  25289552   high
2   3 180418785 medium
3   3 180434779    low
share|improve this answer
    
Yes, this what I want, the point is that I have to take into account the chromosome also, so maybe something like that merge(df1, df2, by.x=c('chr','init'), by.y=c('V1',V2')[, c(2,1,4)] –  user976991 Nov 8 '12 at 11:02
    
Exactly, just adding chr and V1 to the arguments will take them into account :D Consider upvote the useful answers and accept one of them if you find it useful :D –  Jilber Nov 8 '12 at 11:13
df1 <- read.table(textConnection("   chr    init
 1  12  25289552
 2   3 180418785
 3   3 180434779"), header=T)

df2 <- read.table(textConnection("    V1    V2     V3
 10  1     69094 medium
 11  1     69094 medium
 12  12 25289552 high
 13  1     69095 medium
 14  3 180418785 medium
 15  3 180434779 low"), header=T)

# You have to select the values of df2$V3 such as their corresponding V2 
# are equal to the values of df1$init
df1$Mut <- df2$V3[ df2$V2 %in% df1$init]

df1
  chr      init    Mut
1  12  25289552   high
2   3 180418785 medium
3   3 180434779    low
share|improve this answer

Does

df3 <- merge( df1, df2, by.x = "init", by.y = "V2" )
df3 <- df3[-3]
colnames( df3 )[3] <- "Mut"

give you what you want?

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