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How could I echo the last number? it should be 9.

$i = 0;
while($i != 10){
    echo $i;
    $i++;
}
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What's wrong with this code exactly? – Jon Apr 2 '11 at 0:25
    
What is your code doing, and how is that different from what you expect it to do? – awm Apr 2 '11 at 0:27
up vote 2 down vote accepted

You want to echo just the last number?

$i=$j=0;
while($i!=10){
    $j=$i++;
}
echo $j;

Although this is a very bad way to do that, I'm only showing it because I believe you're doing something completely different with that code

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1  
That will echo 10 as the number gets increased the last time when it is 9 – jeroen Apr 2 '11 at 0:27
    
Touche. Fixed :) – Khez Apr 2 '11 at 0:29
if {$i = 9) {
echo "$i"; }

This should work, if you want you could have an array store variables, and then base the output on user input.

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If you want to catch the last iteration, then take away the loops condition and handle it yourself:

while (true) {

    ...

    if (++$i == 9) {
        echo $i;
        break;
    }
}

If you bark at the break, then resort to a condition flag $last = $i == 9; instead.

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You could just do the following:

echo 9;

If the last number is variable, you could do the following:

echo $last_number - 1;

If there's some weird requirement where you need to do a loop, and you really do need it to loop over all the other numbers before finally echoing the penultimate number, you could just check it every single iteration:

$i = 0;
$penult = $last_number - 1;
while ($i !== $last_number) {
    if ($i === $penult) {
        echo $i;
    }
    $i += 1;
}

...Or you could use continue:

$i = 0;
$penult = $last_number - 1;
while ($i !== $last_number) {
    if ($i !== $penult) {
        continue;
    }
    echo $i;
}
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Placing the condition at the end, you prevent that $i gets updated when it shouldn´t anymore.

$i = 0;
do {
    $i++;
} while ($i != 10);
echo $i;
share|improve this answer

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