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I was wondering what is causing this error and how can I correct this problem?

Line 176 is below.

$q = "INSERT INTO users (first_name, middle_name, ".
      "last_name, rn, username, month, day, year, se, pic, ".
      "salt, password, rb, aa, ul, rd, ll, ui) ".
      "VALUES ('" . $fn . "', NULL, '" . $ln . "', NULL, '" . 
      $u . "', NULL, NULL, NULL, NULL, NULL, '" . $salt . "', '" . 
      $p . "', '" . $r . "', '" . $ag . "', 0, NOW(), NULL, '" . 
      $unique_id . "')";
$r = mysqli_query ($dbc, $q) or trigger_error("Query: $q\n<br />MySQL Error: " .
         mysqli_error($dbc));
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Which one is line 176? –  Pekka 웃 Nov 25 '10 at 12:51
    
sorry about that its the one that starts with $q = "INSERT INTO users –  HELP Nov 25 '10 at 12:52
    
The problem is with one or more of the variables you concatenate. Where do they come from? –  systemovich Nov 25 '10 at 13:18

3 Answers 3

One of the variables you are injecting into that query string must be a result from an earlier query.

It's probably the $r.

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Does the code following line 176 resemble this posters code? If so, try changing it to resemble more of what comes beneath it.

http://www.phpfreaks.com/forums/php-coding-help/(solved)-catchable-fatal-error-object-of-class-mysqli_result-could-not-be-conver/

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you lost me can u please give me an example if possible? –  HELP Nov 25 '10 at 12:55
    
What are you doing with $r after you run the mysqli_query? If the query is successful, then $r = TRUE, else $r = FALSE (Boolean datatype). If you are checking the value of $r thinking it is a String, then that error could result. –  Shawn Nov 25 '10 at 12:58

I suspect you're trying to concatenate an object-variable. This is not possible with objects of the class "mysqli_result".

Do a var_dump() on each variable you concatenate to make $q and you'll find out which one it is.

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