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I need to do the transverse of a data frame (a large one about 3750 observation of 3 variables), but i would like to do this :

Original data frame :

      activity  level           temp
 1    E             A           10-1810
 2    F             B           10-1810
 3    G             B           10-1810
 4    H             C           10-1810
 5    I             C           10-1810
 6    J             D           10-1810
 ..   ...           ...             .. 

I would like to get this result :

temp       10-1810  10-1810 10-1810 10-1810 10-1810 ..........
activity   E          F       G        H      I      .........
level      A          B       B        C      C      .........

Any suggestion?

Thank you.

My problem is in the t function, when i do the transverse i get always a new data frame as this

  row.names x1 x2 x3 x4....................
1   temp ...........
2   activity  .......
3   level     ........

I would like to remove row.names (the header ) and make temp the header of the data frame.

share|improve this question
Look into the t and reshape functions? – hd1 Jun 10 '14 at 6:52
Yup, try t(d)[c(3, 1, 2), ] – jbaums Jun 10 '14 at 6:55
@jbaums it did not work as i like ,how can i replace the header with time column – foboss Jun 10 '14 at 7:15
Where is the time column in your example?? Do you mean the row names? – jbaums Jun 10 '14 at 7:17
This really begs the question why? What you really want to do probably has a much better solution. It doesn't appear that you recognize that the main feature of a data.frame object is that you can combine different types of data in different columns. This is not possible across rows. The lack of appreciation for data.frame is exemplified by your desire to have repeated identical column names. Please explain further what you want to accomplish. – John Jun 10 '14 at 7:18

1 Answer 1

up vote 2 down vote accepted

If your dataframe is df

#normal tanspose
newdf = t(df)

#if you want temp as column name
newdf = data.frame(t(df[,c('activity', 'level')]))
colnames(newdf) = df$temp
share|improve this answer
temp isn't unique, so probably not intended to be colnames. Otherwise, this is the way to go. – jbaums Jun 10 '14 at 6:56
@varjs5 i get an error, object 'activity' not found, i check my data frame and the name exist!!!!! – foboss Jun 10 '14 at 7:00
@foboss - that was typo.. Try now... – vrajs5 Jun 10 '14 at 7:01
@vrajs5 it does not work, i get row.names with other values – foboss Jun 10 '14 at 7:05
note that t() returns a matrix, so if you want it back into a data.frame you need data.frame(t(df)) and may need to check class of each column. – JeremyS Jun 10 '14 at 7:08

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