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In R, I have two vectors of pairs like this:

x <- c("A=5", "B=1",        "D=1", "E=1", "F=2", "G=1")
y <- c("A=2", "B=1", "C=3", "D=1",                     "H=4")

I would like to convert this into a data.frame like this:

  A B C D E F G H
x 5 1 0 1 1 2 1 0
y 2 1 3 1 0 0 0 4

All keys contained in either x or y should make up the columns, keys that do not appear in x or y should be added with value zero.

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1  
Do you have a character vector, or a named numeric vector (x <- c(A=5,B=1,D=1))? –  Joshua Ulrich Nov 14 '11 at 21:03
    
...Two test cases spring to mind: y <- x and y <- character(0). My solution handles both ;-) –  Tommy Nov 14 '11 at 22:38

5 Answers 5

up vote 6 down vote accepted

Not the prettiest solution but easy to follow:

1) Parse your string to a data frame:

df1 <- as.data.frame(sapply(strsplit(x, '='), rbind), stringsAsFactors=FALSE)

Result:

> as.data.frame(sapply(strsplit(x, '='), rbind), stringsAsFactors=FALSE)
  V1 V2 V3 V4 V5 V6
1  A  B  D  E  F  G
2  5  1  1  1  2  1

2) Give header:

names(df1) <- df1[1,]
df1 <- df1[-1,]

Result:

> df1
  A B D E F G
2 5 1 1 1 2 1

3) Do the same for your other string:

df2 <- as.data.frame(sapply(strsplit(y, '='), rbind), stringsAsFactors=FALSE)
names(df2) <- df2[1,]
df2 <- df2[-1,]

4) Merge those:

df <- merge(df1, df2, all=TRUE, sort=TRUE)

Result:

> df
  A B D    E    F    G    C    H
1 2 1 1 <NA> <NA> <NA>    3    4
2 5 1 1    1    2    1 <NA> <NA>

Update: the above all-in-one with some makeup based on comments:

> df1 <- as.data.frame(sapply(strsplit(x, '='), rbind), stringsAsFactors=FALSE)
> names(df1) <- df1[1,]
> df1 <- df1[-1,]
> 
> df2 <- as.data.frame(sapply(strsplit(y, '='), rbind), stringsAsFactors=FALSE)
> names(df2) <- df2[1,]
> df2 <- df2[-1,]
> 
> library(reshape)
> df <- rbind.fill(df1,df2)
> df[is.na(df)] <- 0
> df <- df[, order(names(df))]
> df
  A B C D E F G H
1 5 1 0 1 1 2 1 0
2 2 1 3 1 0 0 0 4
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1  
And to replace the NAs with 0s: df[is.na(df)] <- 0 –  jthetzel Nov 14 '11 at 21:28
    
And I also forgot about the fact that the column order is not perfect so after filling up the data frame with zeros (see @jthetzel's comment), you can do a reorder like: df[,order(names(df))] –  daroczig Nov 14 '11 at 21:36
    
Your solution does not work if x==y. –  djhurio Nov 14 '11 at 21:46
    
Thanks @djhurio: good remark what I did not concerned. I have updated my answer to eliminate that problem. May the negative vote fade out then? :) –  daroczig Nov 14 '11 at 21:58
1  
I ended up adopting this approach because it can nicely be integrated into a loop to merge not just x and y but more vectors. Thanks! –  Chris Nov 15 '11 at 15:07

Here's an environment based approach. Make separate environments into which the name=val pairs are evaluated. Then merge them:

xe <- new.env()
ye <- new.env()
with(xe, eval(parse(text=x)))
with(ye, eval(parse(text=y)))
# > ls(env=ye)
# [1] "A" "B" "C" "D" "H"
# edit as. list makes even more compact!
 df1 <- merge(as.list(xe), as.list(ye), all=TRUE, sort=FALSE)  
 # sort keeps row order with x on top!
  A B D  E  F  G  C  H
1 5 1 1  1  2  1 NA NA
2 2 1 1 NA NA NA  3  4

 df1[is.na(df1)] <- 0
 df1
  A B D E F G C H
1 2 1 1 0 0 0 3 4
2 5 1 1 1 2 1 0 0

The problem with the two arguments being equal leading to loss of one line is solved with the reshape::rbind.fill method.

df1 <- rbind.fill(as.data.frame(as.list(xe)), as.data.frame(as.list(ye)) )
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Nice approach, thanks for sharing (+1)! Anyway, as @djhurio suggested below: merge might not be the best solution. See my updated answer. –  daroczig Nov 14 '11 at 22:02
1  
Cool! That's thinking outside the box! ...but you could simplify a bit with eval(parse(text=x), xe) instead of calling with. –  Tommy Nov 14 '11 at 22:08
2  
@Tommy I think maybe you meant "That's thinking outside the global environment!" ;) –  joran Nov 14 '11 at 22:13

Here's another variant:

x <- c("A=5", "B=1","D=1", "E=1", "F=2", "G=1")
y <- c("A=2", "B=1", "C=3", "D=1","H=4")

# Extract names & values
m <- do.call('cbind', strsplit(x, '='))
xn <- m[1,]
xv <- as.numeric(m[2,])
m <- do.call('cbind', strsplit(y, '='))
yn <- m[1,]
yv <- as.numeric(m[2,])

# Merge names    
an <- sort(union(xn,yn))

# Assemble result
r <- matrix(0, 2, length(an), dimnames=list(NULL, an))
r[1,xn] <- xv
r[2,yn] <- yv

# Inspect result:
r
#     A B C D E F G H
#[1,] 5 1 0 1 1 2 1 0
#[2,] 2 1 3 1 0 0 0 4

# ...if you want a data.frame instead of a matrix:
as.data.frame(r)
#  A B C D E F G H
#1 5 1 0 1 1 2 1 0
#2 2 1 3 1 0 0 0 4
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Just adding my solution.

x <- c("A=11", "B=1", "D=1", "E=1", "F=2", "GZ=1")
y <- c("A=2", "B=1", "C=3", "D=1", "H=4")

pos.x <- as.numeric(regexpr("=", x))
pos.y <- as.numeric(regexpr("=", y))

x.1 <- data.frame(key=substring(x,1,pos.x-1),
                  x=as.numeric(substring(x,pos.x+1)),
                  stringsAsFactors=F)

y.1 <- data.frame(key=substring(y,1,pos.y-1),
                  y=as.numeric(substring(y,pos.y+1)),
                  stringsAsFactors=F)

d <- merge(x.1, y.1, all=T)

d[is.na(d)] <- 0

row.names(d) <- d$key
d$key <- NULL

d <- as.data.frame(t(d))

d
class(d)
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Did you think about the issue if A might be bigger than 9? That would result in your code's failure :) –  daroczig Nov 14 '11 at 22:02
    
Fixed, works even for double letters ;) Nice competition :) –  djhurio Nov 14 '11 at 22:26
    
Err, I was not competing, just made a justifiable "counterattack" :) Anyway, +1 for updated, universally working code! –  daroczig Nov 14 '11 at 22:41

Another approach using eval(parse)

vec2list <- function(x){
  x_con <- paste(x, collapse = ",")
  eval(parse(text = paste('list(', x_con, ')')))
}

plyr::ldply(llply(list(x, y), vec2list), data.frame)

  A B D  E  F  G  C  H
1 5 1 1  1  2  1 NA NA
2 2 1 1 NA NA NA  3  4
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