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I have a data frame which I want to order (not alphabetically) so I wrote this

z
  Grupos prueba$pendiente
1     TR         12.48182
2 TR2x45         39.87879
3     UT         20.89545
4 UT2x45         36.89015
orden
[1] "UT"     "TR"     "UT2x45" "TR2x45"
z<-arrange(z,orden)
z
  Grupos prueba$pendiente
1 TR2x45         39.87879
2 UT2x45         36.89015
3     TR         12.48182
4     UT         20.89545

dput(z) structure(list(Grupos = structure(c(4L, 3L, 2L, 1L), .Label = c("UT", "TR", "UT2x45", "TR2x45"), class = "factor"), prueba$pendiente = c(39.8787878787918, 36.8901515151553, 12.4818181818195, 20.8954545454566)), .Names = c("Grupos", "prueba$pendiente"), row.names = c(NA, -4L), class = "data.frame")

Arrange function is working, the only problem is I got the wrong order (reversed) I want UT to be my first value just like in orden vector. I'm sure it's a quite silly thing but I can't work it out.

Thank you

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see last example of ?arrange, but note that it's not meant to mix columns from the data.frame and other vectors. –  baptiste May 25 at 14:47

4 Answers 4

up vote 1 down vote accepted

Add decreasing = TRUE to arrange

> arrange(z, orden, decreasing = TRUE)
##   Grupos prueba.pendiente
## 1     UT         20.89545
## 2     TR         12.48182
## 3 UT2x45         36.89015
## 4 TR2x45         39.87879

Alternatively, you could re-factor Grupos and use the order function to "subset" the order.

> z$Grupos <- factor(z$Grupos, levels = orden)
> z[order(z$Grupos), ]
##   Grupos prueba.pendiente
## 3     UT         20.89545
## 1     TR         12.48182
## 4 UT2x45         36.89015
## 2 TR2x45         39.87879
share|improve this answer
    
The first option doesn't work. I've tried it before asking here but I think the problem is there's no increasing or decreasing order for my arbitrary vector named orden. The second one works, thank you –  Matias Andina May 25 at 15:01
    
@MatiasAndina the fact that z$Grupos was already a factor wasn't apparent in your first edit, so it's not surprising that some proposed solutions "didn't work", they were solving a different problem. –  baptiste May 25 at 15:07
    
Oh, I'm sorry!! I should have posted it with dput the first time. It was clear for me that they're factors because I'm preparing to use it that way. I should have asked better. –  Matias Andina May 25 at 15:11
    
@MatiasAndina, glad it worked. I'm curious, when you read in the data, did you use the stringsAsFactors argument? –  Richard Scriven May 25 at 15:33
    
@RichardScriven I don't read this data from anywhere, I just constructed it from another data frame using aggregate. Each number that you see in the second column is the mean of many measurements of each factor from a bigger data frame –  Matias Andina May 25 at 16:03
z[order(orden,decreasing=TRUE),]
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This doesn't work. Besides decreasing=TRUE doesn't have any logic, the order I want to give is arbitrary –  Matias Andina May 25 at 14:58
    
Works just fine given the data you provided. If you encounter errors with proposed solutions, consider giving us a bit more information so we can better diagnose the issue (e.g. dput, str, etc.). –  userNaN May 25 at 15:29
    
I'm sorry, really my bad –  Matias Andina May 25 at 16:01
    
Don't worry about it - no big deal! :) –  userNaN May 25 at 16:08

you could just reverse the order of orden

arrange(z,rev(orden))
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This doesn't work –  Matias Andina May 25 at 14:57
    
it works perfectly on the test data frame I created. Maybe you should think about adding a sample of your data using dput() to work why these solutions are not working for you –  Eddie_J May 25 at 15:04

You can also use the simple base function match

z[match(orden, z$Grupos),]
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