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unix numeric sort gives strange results, even when I specify the delimiter.

$ cat example.csv  # here's a small example
58,1.49270399401
59,0.000192136419373
59,0.00182092924724
59,1.49270399401
60,0.00182092924724
60,1.49270399401
12,13.080339685
12,14.1531049905
12,26.7613447051
12,50.4592437035

$ cat example.csv | sort -n --field-separator=,
58,1.49270399401
59,0.000192136419373
59,0.00182092924724
59,1.49270399401
60,0.00182092924724
60,1.49270399401
12,13.080339685
12,14.1531049905
12,26.7613447051
12,50.4592437035

For this example, sort gives the same result regardless if you specify the delimiter. I know if I set LC_ALL=C then sort starts to give expected behavior again. But I do not understand why the default environment settings, as shown below, would make this happen.

$ locale
LANG="en_US.UTF-8"
LC_COLLATE="en_US.UTF-8"
LC_CTYPE="en_US.UTF-8"
LC_MESSAGES="en_US.UTF-8"
LC_MONETARY="en_US.UTF-8"
LC_NUMERIC="en_US.UTF-8"
LC_TIME="en_US.UTF-8"
LC_ALL=

I've read from many other questions (e.g. here, here, and here) how to avoid this behavior in sort, but still, this behavior is incredibly weird and unpredictable and has caused me a week of heartache. Can someone explain why sort with default environment settings on Mac OS X (10.8.5) would behave this way? In other words: what is sort doing (with local variables set to en_US.UTF-8) to get that result?

I'm using

 sort 5.93                        November 2005

 $ type sort
 sort is /usr/bin/sort

UPDATE

I've discussed this on the gnu-coreutils list and now understand why sort with english unicode default locale settings gave the output it did. Because in English unicode, the comma character "," is considered a numeric (so as to allow for comma's as thousand's (or e.g. hundreds) separators), and sort defaults to "being greedy" when it interprets a line, it read the example numbers as approximately

581.491...
590.000...
590.001...
591.492...
600.001...
601.492...
1213.08...
1214.15...
1226.76...
1250.45...

Although this was not what I had intended and chepner is right that to get the actual result I want, I need to specify that I want sort to key on only the first field. sort defaults to interpreting more of the line as a key rather than just the first field as a key.

This behavior of sort has been discussed in gnu-coreutil's FAQ, and is further specified in the POSIX description of sort.

So that, as Eric Blake on the gnu-coreutil's list put it, if the field-separator is also a numeric (which a comma is) then "Without -k to stop things, [the field-separator] serves as BOTH a separator AND a numeric character - you are sorting on numbers that span multiple fields."

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1  
Maybe it's allowing the comma as thousands separator, and permitting it anywhere? Certainly a bug with -t, at least if that's the case. –  tripleee Oct 7 '13 at 15:45
    
what happens if you specify which columns are the key to sort on? i.e either +0 -1 or -k1? Good luck. –  shellter Oct 7 '13 at 15:47

3 Answers 3

up vote 6 down vote accepted

I'm not sure this is entirely correct, but it's close.

sort -n -t, will try to sort numerically by the given key(s). In this case, the key is a tuple consisting of an integer and a float. Such tuples cannot be sorted numerically.

If you explicitly specify which single keys to sort on with

sort -k1,1n -k2,2n -t,

it should work. Now you are explicitly telling sort to first sort on the first field (numerically), then on the second field (also numerically).

I suspect that -n is useful as a global option only if each line of the input consists of a single numerical value. Otherwise, you need to use the -n option in conjunction with the -k option to specify exactly which fields are numbers.

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That's interesting. sort -k1,1n works. But what is it doing when I enter sort -k1n (which does not work) ? Why does it try to sort a tuple instead of defaulting to the first value in a line? And when I specify the first column with -k1n why doesn't that sort by the first column? –  gabe Oct 7 '13 at 16:21
2  
-k<m>,<n> sorts using fields m through n, inclusive. -k<m> uses fields m through the last field. You have to use -k<m>,<m> to sort on exactly field m. Using -k1 is legal, but identical to not using -k at all. Something like -k2 is more common (sort on all fields but the first). –  chepner Oct 7 '13 at 16:24
    
Thank you very much for your responses. That makes sense (though counter-intuitive), but then not including the -k at all should mean that it sorts on all fields -- using the first field first. Why isn't it doing this? –  gabe Oct 7 '13 at 16:30
1  
The distinction is that sort -n and sort -k1 -n uses a single key with a non-numeric value (specifically, a tuple of an int and a float), while sort -k1,1n -k2,2n uses two keys, each of which is a single numerical value. You are using "field" and "key" as synonyms, which they are not. A key can consist of 1 or more fields, and sort can use one or more keys (by sorting on the first key, then the second key, etc). –  chepner Oct 7 '13 at 16:32
1  
Because tuples aren't numbers. Also, tuple is probably a poor choice of words on my part. sort seems to simply concatenate the fields that make up a key into a single string. But the fact is, sort simply doesn't distinguish between the fields used to create such a key. You can argue that perhaps it should, but it doesn't. –  chepner Oct 8 '13 at 14:57

Use sort --debug to find out what's going on. I've used that to explain in detail your issue at: http://lists.gnu.org/archive/html/coreutils/2013-10/msg00004.html

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If you use

cat example.csv | sort

instead of

cat example.csv | sort -n --field-separator=,

then it would give correct output. Use this command, hope this is helpful to you.

Note: I tested with "sort (GNU coreutils) 7.4"

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Thanks -- and this is interesting (I wonder why it gives this behavior). However it does not answer the question. The question is: when you ask unix to sort numeric, why doesn't it sort numeric? What is it doing in this case? –  gabe Oct 7 '13 at 16:03
1  
With no options, you are simply performing a lexicographic sort, which appears to work on this input because all the leading integer values are two-digit strings. –  chepner Oct 7 '13 at 16:11

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