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How do you compare two integers in php?

I have tried

print (1 > 2);           // No output
$a = 1;
$b = 2;
$c = ($a > $b) ? true : false;
print ($c);              // No output

var_dump works fine. I have the latest PHP installed.

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PHP's built-in REPL is very bad. I recommend you download some of the PHP REPL's from github.com –  Xeoncross May 31 '12 at 16:12
    
So var_dump() works but print() doesn't? Doesn't that suggest a problem with print() instead of in comparing the variables? –  Juhana May 31 '12 at 16:13
    
Also, $foo ? true : false is superfluous (it evaluates to true if the variable is true and false if it's false). –  Juhana May 31 '12 at 16:14
    
I was comparing two strings using php's similar_text($str1, $str2, $p). I was comparing $p to 70 to see if $p is greater than 70. Nothing was happening so I decided to print the comparison print ( $p > 70 ) and (now I know) php prints nothing. –  DeveloperNo.1 May 31 '12 at 16:28

6 Answers 6

up vote 2 down vote accepted

Both of your comparisons return false which will not print out a value.

<?php
echo true;
echo false;
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print(false) will output nothing.

If you want to display false, try var_export(false)

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Thank you. I managed to solve my problem. –  DeveloperNo.1 May 31 '12 at 16:16

You are trying to print false in both cases which will by casted to an empty string, hence you are not seeing anything printed.

Try using var_dump instead or outputting a string with a proper control structure (i.e. if else)

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The comparisons in your example are working fine. The issue is that when you print true or false values, they don't render anything. Try something like this instead:

$ php -a
$ print (1 > 2) ? 'true' : 'false';
$ $a = 1;
$ $b = 2;
$ $c = ($a > $b) ? true : false;
$ print ($c) ? 'true' : 'false';
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echo ($a > $b) ? "true" : "false";
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Either use something like:

$c = $a > $b;
echo $c;

or use var_dump()

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