Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I am just starting SQL and PHP, and have become a bit stuck. Im trying to count the number of matches the username has against the table of users so i can determine if it is valid for login or not. I keep getting the error "Warning: mysql_fetch_array() expects parameter 1 to be resource, boolean given in /home/tommybur/public_html/pass/loginsettings.php on line 13" I have looked at a few other people who have had similar problems but can't get any solutions to work. My code is here:

<?php
session_start();
$con=mysqli_connect("Database Stuff");
// Check connection
if (mysqli_connect_errno())
  {
  echo "Failed to connect to MySQL: " . mysqli_connect_error();
  }
$specuser=$_REQUEST['usr'];

$result = mysqli_query($con,"Select count(UserID)  UserID from Users where UserID = [$specuser]");

$number = mysql_fetch_array($result);
echo "Matching number of records in Users table = ". $number."<br>";

echo "$number";
if ($number < 1) {
echo "Username is wrong";
  }
  else {
  echo "Username is correct";
  }
  ?>

Could someone point me in the right direction please?

Thanks, Tommy

share|improve this question
2  
Your SQL statement is incorrectly formatted - you're missing a comma between count(UserID) and UserID. You're not doing any error checking on your query, though. –  andrewsi Jul 3 '13 at 16:41
    
should be Select count(UserID) as num_users from Users where UserID = [$specuser] –  Orangepill Jul 3 '13 at 16:43
    
Still not working, even with that correction. –  Tommy Jul 3 '13 at 16:46
    
    
See this answer for how to troubleshoot this. –  John Conde Jul 3 '13 at 18:30

2 Answers 2

up vote 1 down vote accepted

I'm assuming you want to alias count(UserID) as UserID, if so you need to add as in between count(UserID) and UserID in your select statement:

$result = mysqli_query($con,"Select count(UserID) as UserID from Users where UserID = [$specuser]");

$number = mysqli_fetch_array($result);
echo "Matching number of records in Users table = ". $number."<br>";

Also another thing to point out is your UserID = [$specuser]. Isn't your UserID column numeric? Are you intentionally adding [] around $specuser?

Also mysql_fetch_array returns an array if your query has records otherwise it returns false. Please refer to the documentation here: http://php.net/manual/en/function.mysql-fetch-array.php. You should do the following:

echo "Matching number of records in Users table = ". $number[0]."<br>";
share|improve this answer
    
I changed my code with your suggestions and am now using $number = mysql_fetch_row($result); but its still not working. Any ideas? –  Tommy Jul 3 '13 at 16:59
    
Please try var_dump $result; after the mysqli_query line to see if you are actually getting result for your query. It could be that your query is not returning any result. –  vee Jul 3 '13 at 17:00
    
That just gves me the following error: Parse error: syntax error, unexpected T_VARIABLE in /home/tommybur/public_html/pass/loginsettings.php on line 12 Line 12 is the line that contains var_dump $result; –  Tommy Jul 3 '13 at 17:04
    
My bad, I did not add parenthesis as var_dump is a function :). Please use the following and post your results: var_dump($result); –  vee Jul 3 '13 at 17:05
    
I now get the following 2 error messages. "object(mysqli_result)#2 (5) { ["current_field"]=> int(0) ["field_count"]=> int(1) ["lengths"]=> NULL ["num_rows"]=> int(1) ["type"]=> int(0) } Warning: mysql_fetch_row() expects parameter 1 to be resource, object given in /home/tommybur/public_html/pass/loginsettings.php on line 13" "Fatal error: Cannot use object of type mysqli_result as array in /home/tommybur/public_html/pass/loginsettings.php on line 14" Lines 13 and 14 contain: $number = mysql_fetch_row($result); echo "Matching number of records in Users table = ". $result[0]."<br>"; –  Tommy Jul 3 '13 at 17:58

Try this query

SELECT COUNT(UserID) as UserID FROM Users WHERE UserID = '$specuser'

Also you should escape database from SQL injections as you are getting $specuser from $_REQUEST like

$specuser = mysqli_real_escape_string($con, $_REQUEST['usr']);

. Read this -> mysqli_real_escape_string

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.