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when I try to sort the following text file 'input':

test1 3   
test3 2
test 4

with the command

sort input

the output is exactly the input. Here is the output of

od -bc input

:

0000000 164 145 163 164 061 011 063 012 164 145 163 164 063 011 062 012
          t   e   s   t   1  \t   3  \n   t   e   s   t   3  \t   2  \n
0000020 164 145 163 164 011 064 012
          t   e   s   t  \t   4  \n
0000027

It's just a tab separated file with two columns. When I do

sort -k 2

The output changes to

test3 2
test1 3
test 4

which is what I would expect. But if I do

sort -k 1

nothing changes with respect to the input, whereas I would expect 'test' to sort before 'test1'. Finally, if I do

cat input | cut -f 1 | sort

I get

test
test1
test3

as expected. Is there a logical explanation for this? What exactly is sort supposed to do by default, something like:

sort -k 1

?

My version of sort:

sort (GNU coreutils) 7.4
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1  
Even with a natural sorting algorithm, the input (as shown) is already sorted. –  Tim Post Apr 22 '10 at 14:49

1 Answer 1

From the man pages:

* WARNING * The locale specified by the environment affects sort order. Set LC_ALL=C to get the traditional sort order that uses native byte values.

So it seems export LC_ALL=C must help

share|improve this answer
    
GNU sort with LC_ALL=C does produce the traditional answer - which is what 'sort' on Solaris produces anyway. Change the 'test3' line to 'Test3' and you get more differences. The GNU answers are consistent with the sort order of 'ls'. It is surprising, though. –  Jonathan Leffler Apr 22 '10 at 16:29
    
Thanks, for me, too, it produces the expected result. However, in my default locale en_US.UTF-8, both tab and space also sort before alhpanumeric characters. If sort is just doing a lexicographical sort on the entire line, it remains a little surprising for me, too. –  user323338 Apr 26 '10 at 9:32
2  
+1 This works. But .... why??? –  Niels Basjes Sep 19 '10 at 9:37

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