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I have a dataframe as follows:

gous <- structure(list(V1 = c(0, 28.44), V2 = c(1, 28.44), V3 = c(2, 
                                                                  28.44), V4 = c(3, 28.39), V5 = c(4, 28.22), V6 = c(5, 27.72), 
                       V7 = c(6, 24.56), V8 = c(7, 18.78), V9 = c(8, 18.5), V10 = c(9, 
                                                                                    18.56), V11 = c(10, 18.5), V12 = c(11, 18.72)), .Names = c("V1", 
                                                                                                                                               "V2", "V3", "V4", "V5", "V6", "V7", "V8", "V9", "V10", "V11", 
                                                                                                                                               "V12"), class = "data.frame", row.names = c(NA, -2L))

The data is as follows:

> gous
     V1    V2    V3    V4    V5    V6    V7    V8   V9   V10  V11   V12
1  0.00  1.00  2.00  3.00  4.00  5.00  6.00  7.00  8.0  9.00 10.0 11.00
2 28.44 28.44 28.44 28.39 28.22 27.72 24.56 18.78 18.5 18.56 18.5 18.72

I want to convert the data to following:

0
1
2
3
4
5
6
7
8
9
10
11
28.44
28.44
28.44
28.39
28.22
27.72
24.56
18.78
18.5
18.56
18.5
18.72

What I tried: I tried to separate the two rows of data into individual vectors as follows:

gous1 <- as.numeric(gous[1,])
gous2 <- as.numeric(gous[2,])

But I was unable to combine using rbind or cbind. What is the function that I am looking at here ?

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4 Answers 4

up vote 2 down vote accepted

The function you're looking for is c, i.e. c(gous1, gous2). You can also just do as.vector(t(gous)) to achieve the same output.

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Thank you. It works perfect. –  Jdbaba Jun 3 '13 at 21:29
c(apply(gous, 1, c))
 [1]  0.00  1.00  2.00  3.00  4.00  5.00  6.00  7.00  8.00  9.00 10.00 11.00 28.44 28.44 28.44 28.39
 [17] 28.22 27.72 24.56 18.78 18.50 18.56 18.50 18.72

If you want to see it displayed vertically try:

 as.matrix( c(apply(gous, 1, c)) )

Could also use:

c( matrix(unlist(gous), ncol=2, byrow=TRUE))
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The c() command will concatenate two vectors into one:

c(as.numeric(gous[1,]),as.numeric(gous[2,]))
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I'd try t and c:

c(t(gous))

## > c(t(gous) )
##  [1]  0.00  1.00  2.00  3.00  4.00  5.00  6.00  7.00  8.00  9.00 10.00 11.00
## [13] 28.44 28.44 28.44 28.39 28.22 27.72 24.56 18.78 18.50 18.56 18.50 18.72
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Wins the r-golf challenge for sure. –  BondedDust Jun 3 '13 at 21:31
    
If you did want it as a column then you could: stack(data.frame(t(gous)))[,1, drop=FALSE] –  Tyler Rinker Jun 3 '13 at 23:01

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