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I am just a beginner in PHP. I have tried to write a program for prime numbers, but the result is not correct. I couldn't find the error. How can I correct this? Here is my code:

<?php
$n=15;
for($i=2; $i<=$n; $i++)
{
echo "<br />";
for($j=2; $j<=$i-1; $j++)
    {
        $k=$i%$j;
        if($k==0)
        {

        break;
        }
        else echo $i."is prime";
        break;
    }

}
?>
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You left out what your program is supposed to do and what it is doing instead... –  animuson Dec 19 '11 at 6:44
    
What's the result? –  annonymously Dec 19 '11 at 6:45
    
I want to display prime numbers within 15. But my code displays the following result. 3is prime 5is prime 7is prime 9is prime 11is prime 13is prime 15is prime –  designersvsoft Dec 19 '11 at 6:47
    
those look like prime numbers to me, oh wait 9 –  annonymously Dec 19 '11 at 6:47
    
My result displays 9 is a prime number. But 9 can be divided by 1, 3,9 –  designersvsoft Dec 19 '11 at 6:48

5 Answers 5

up vote 2 down vote accepted

Try this:

        <?php
        $n=15;
        for($i=2; $i<=$n; $i++)
        {
            $k = 1;     //assume that it is prime

            for($j=2; $j<$i; $j++)  //if $i is 2, then it won't enter the loop as it will not match the condition ($j<$i)
            {
                $k=$i%$j;
                if($k==0) 
                    break;  //if not prime, $k will be set as 0. So, break.

            }
            if($k!=0)   // if $k <> 0, then it is prime
                echo "<br />" . $i." is prime";
        }

        ?>

Edit Updated the code to take care of the "2"

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Great. Thanks. It is working fine now. 2 is also a prime number. Why the result doesn't show it? –  designersvsoft Dec 19 '11 at 6:56
    
Because your loop stops at n-1 or at 1 but it starts at 2 –  annonymously Dec 19 '11 at 6:57
    
yeah. I din't noticed that.:) I have updated the code and please check whether it works now. –  Akhilesh B Chandran Dec 19 '11 at 7:05
    
It's perfectly working. Thank you very much for your effort. –  designersvsoft Dec 19 '11 at 9:03
    
Glad to hear that :) Wish you good luck. –  Akhilesh B Chandran Dec 19 '11 at 12:59

You are breaking the loop the first time it's run by calling this basically:

if (something) {
    break;
} else {
    break;
}

it will break no matter what. you need to take out the last break.

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Technically, the second break is not even part of the conditional, as the else does not utilize brackets. So really, the break is just always being called, period. –  animuson Dec 19 '11 at 6:55
    
ah you're right, but the logic and answer still work –  annonymously Dec 19 '11 at 7:04

Well, your code is kind of confusing to understand; at first glance it seems as if it's trying to determine primality by checking every divisor up to N, but you've got that outer-loop going on which I didn't see at first... Oh boy.

If you're just trying to figure out if some number N is prime, the following should work:

$n = 15
$prime = true;
for ($i = 2; $i < sqrt($n); $i++) {
    if ($n % $i == 0) {
        $prime = false;
        break;
    }
}

echo $n . " is " . ($prime ? "" : "not") . " prime.";
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there's a syntax error in your code –  Mohit Bumb Dec 19 '11 at 7:41
    
missed semicolon after $n = 15 –  Mohit Bumb Dec 19 '11 at 7:41
<?php
echo "TEST\r\n";

$n=15;
for($i=2; $i<=$n; $i++)
{
echo "I= $i \r\n";
for($j=2; $j<=$i-1; $j++)
    {
        $k = $i%$j;
        if($k==0)
    {
            break;
        } else { 
            echo $i."is prime \r\n";
        }
        break;
    }
}
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I think your secod for loop is incorrect.

for($i=2; $i<=$n; $i++) {
   echo "<br />";
   for($j=2; $j<=$i-1; $j++) {
      ...

The first value for $j is 2. And for the first time, the first value for $i is 2 again. Now, look at your second for loop code. It will be like this at the first time:

for($j=2; $j<=2-1; $j++) ... // for($j=2; $j<=1; $j++)

And this condition is not valid at all: 2<=1

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