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How to check if one floating point number is bigger than another number in Perl?

i.e: 100.4 > 90

I tried to work with use POSIX, rounding the 100.4 to 101.0 and converting both of them with int, but Perl still thinks that my 100.4 is smaller than my 90.

Edit: The bug was somewhere else. The privious code returned me sometimes true and sometimes false.

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closed as off-topic by Andrew Medico, Kevin Panko, ScottJShea, 4dgaurav, Soner Gönül Jun 26 '14 at 6:10

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5  
Perl did not do something wrong, you did. Show the code which produces the behaviour you describe and we can tell you what you did wrong. –  TLP Sep 8 '13 at 15:29
1  
cannot reproduce: perl -E'say 0+(100.4 > 90)'1 and perl -MPOSIX=ceil -E'say 0+( ceil(100.4) > 90 )'1 and perl -MPOSIX=ceil -E'say 0+( int(ceil(100.4)) > int(90) )' – still 1. –  amon Sep 8 '13 at 15:36
1  
100.4 lt 90 is true. 100.4 < 90 is not. The former is a string comparison, the latter a numerical comparison. –  Zaid Sep 8 '13 at 15:51

1 Answer 1

up vote 3 down vote accepted

No, Perl doesn't 'think' that, and that's easy to check:

print 100.4 > 90 ? 'Greater' : 'Lesser'; # Greater

My (wild) guess is that you've tried to sort an array of floats, and got 100.4 standing before 90. For example, like this:

my @floats = (100.4, 50, 9);
print $_, "\n" for sort @floats; 
# 100.4
# 50
# 9

The catch is that by default Perl uses string comparison in sort. So both 100.4 and 90 are cast to string first, and '100.4' is indeed lesser than '9', because '1' is lesser than '9' (strings are compared char-by-char).

The solution is simple: override the sorting routine when dealing with numbers.

print $_, "\n" for sort { $a <=> $b } @floats; 
# 9
# 50
# 100.4
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1  
That's a good guess, I was thinking it was either some sort of obscured stringification e.g. "x100.4" < 90 or a using , instead of ., if (100,4 > 90).. both of which will work silently if warnings is off. –  TLP Sep 8 '13 at 15:52

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