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Ok, so my site has a link where you can search up users and go to their profile. You type a username and on the next page, it tells you if the username exists or not, and gives you a link. I think I have coded everything correctly, but apparently not.

Here is what happens: (my website echoes two pages, one if you are logged in and one if you are not logged in). If you are logged in AND you type a real username, then it will correctly display the text I want it to and the link. However, if you type a fake username when logged in, it just says the default text, not the text I necessarily want for this page.

When you are not logged in, it only displays the default text, no matter what you type.

Can someone help me and look at this code?

Default text for displaytext:

$displaytext = "Error";

$srstrSQL = "SELECT * FROM Users_For_CoinAwards WHERE Username = '$usersearched'";

$rs3 = mysql_query($srstrSQL, $connection);

while($row3 = mysql_fetch_array($rs3)){

if ($row3['Username'] == $usersearched)

{

$displaytext = "The user " . $row3["Username"] . " has been found. Please click on the below link to visit their profile.";

$displaylink = "<a href='http://www.coinawards.net63.net/user/" . $row3['Username'] . ".php' id='displaylink'>" . $row3['Username'] . "</a>";

}

else

{

$displaytext = "Sorry, the user " . $row3["Username"] . " was not found. Please check your query and try again.";

}

}

$row3 = mysql_fetch_array($rs3); print_r($row3);

Ok, and here is the part where it displays the text:

' . $displaytext . '

I double checked to make sure that the code above is the same if you are logged in or not, however the results still differ.

EDIT:

you can see what his happening for yourself at http://www.coinawards.net63.net/

Just click on the yellow 'User Search' button and type in a wierd random assortment of characters.

It will take you to the new page with the code below.

share|improve this question

4 Answers 4

up vote 0 down vote accepted

Ok, try this. And please try $row[] with double or single quotes, you are mixing the two.

$srstrSQL = "SELECT * FROM Users_For_CoinAwards WHERE Username = '$usersearched' ";

$rs3 = mysql_query($srstrSQL, $connection);

while($row3 = mysql_fetch_array($rs3)){

 $displaytext = "Error";

if (mysql_num_rows($rs3) == 1)

{

echo $displaytext ."The user " . $row3["Username"] . " has been found. Please click on the below link to visit their profile.";

echo $displaylink ."<a href='http://www.coinawards.net63.net/user/" . $row3['Username'] . ".php' id='displaylink'>" . $row3['Username'] . "</a>";

}

else

{

echo $displaytext."Sorry, the user " . $row3["Username"] . " was not found. Please check your query and try again.";

}

}

$row3 = mysql_fetch_array($rs3); print_r($row3);
share|improve this answer
    
This should work but it doesn't, I don't know why and that is really annoying. –  zingzing45 Nov 17 '12 at 18:14
    
This will tell you if you have problem with mysql $rs3 = mysql_query($srstrSQL, $connection) or die(mysql_error()); –  anon Nov 17 '12 at 18:16
    
It just does the same thing as last time... it only works if you are logged in and type a real user –  zingzing45 Nov 17 '12 at 18:18
    
I don't think I have errors with those statements because I have other queries using the same connection and they work. –  zingzing45 Nov 17 '12 at 18:18
    
Ok, I have revised it, try copy and paste now. It should definitely work better now. –  anon Nov 17 '12 at 18:31
else if ($row3['Username'] !== $usersearched)

should be

else if ($row3['Username'] != $usersearched)
share|improve this answer
    
I fixed that, it still didn't help. –  zingzing45 Nov 17 '12 at 17:43

First off STOP using mysql_* is no longer maintained and has been recommended that you no longer use that in new projects please look into either pdo or mysqli as seen here http://php.net/manual/en/function.mysql-query.php

the issue i could see is that you are not checking to see if your query returns any results which is why your conditional is only returning one result.

share|improve this answer
    
I'm not exactly sure what to use in its place that guide is the most confusing thing on Earth. –  zingzing45 Nov 17 '12 at 17:47
    
this is a very good one for pdo for beginners net.tutsplus.com/tutorials/php/… –  Clark T. Nov 17 '12 at 17:52

Since this is a binary condition (i.e. the user exists or does not exist there is no need for the else if ($row3['Username'] != $usersearched) at all. Replace that with else.

while($row3 = mysql_fetch_array($rs3)){

    if ($row3['Username'] == $usersearched){

        ... Your code here ...


    }else{

        $displaytext = "Sorry, the user " . $usersearched . " was not found. Please check your query and try again.";

    }

}
share|improve this answer
    
I did that, problem still persists... –  zingzing45 Nov 17 '12 at 17:48
    
Can you update your question with the full code that you're using? –  Stephen Nov 17 '12 at 17:52
    
ok I will then ... –  zingzing45 Nov 17 '12 at 17:54

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