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This question already has an answer here:

I am making a voting system for my galleri. And i get this error: mysql_num_rows() expects parameter 1 to be resource, boolean given in. Is see that there is a lot of duplicate answers. Maybe i have gone blind in all the code, but i just can't find the error.

  <?php
   $ip = $_SERVER['REMOTE_ADDR']; 

    if($_POST['id'])
  {
     $id = $_POST['id'];
   $id = mysql_escape_String($id);

      $ip_sql = mysql_query("SELECT ip_add FROM voting_ip WHERE id_fk='$id' AND ip_add='$ip'");
     $count = mysql_num_rows($ip_sql);

   if($count==0)
     {
 // Update
  $sql = "UPDATE votes SET up=up+1 WHERE id='$id'";
 mysql_query( $sql);
   // Insert IP address and Message Id in Voting_IP table.
  $sql_in = "INSERT INTO voting_ip (id_fk,ip_add) VALUES ('$id','$ip')";
    mysql_query( $sql_in);
    echo "<script>alert('Thanks for the vote');</script>";
   }
  else
  {
   echo "<script>alert('You have already voted');</script>";
   }

 $result = mysql_query("SELECT up FROM votes WHERE id='$id'");
 $row = mysql_fetch_array($result);
 $up_value=$row['up'];
 echo $up_value;

  }
  ?>

New code:

<?php

    include ('config/connection.php'); 

    $ip = $_SERVER['REMOTE_ADDR']; 

    if($_POST['id'])
    {
    $id = $_POST['id'];
    $id = mysqli_real_escape_String($id);
    //Verify IP address in Voting_IP table
    $q = "SELECT ip_add FROM voting_ip WHERE id_fk='$id' AND ip_add='$ip'";
    $r = mysqli_query($dbc, $q);
    $count = mysqli_num_rows($q);

    if($count==0)
    {
    // Update Vote.
    $sql = "UPDATE votes SET up=up+1 WHERE id='$id'";
    // Insert IP address and Message Id in Voting_IP table.
    $sql_in = "INSERT INTO voting_ip (id_fk,ip_add) VALUES ('$id','$ip')";
    echo "<script>alert('Thanks for the vote');</script>";
    }
    else
    {
    echo "<script>alert('You have already voted');</script>";
    }

    $result = "SELECT up FROM votes WHERE id='$id'";
    $row = mysqli_result($result);
    $up_value=$row['up'];
    echo $up_value;

    }
 ?>

Error:

  1. mysqli_real_escape_string() expects exactly 2 parameters, 1 given in: $id = mysqli_real_escape_String($id);

  2. : mysqli_num_rows() expects parameter 1 to be mysqli_result, string given in $count = mysqli_num_rows($q);

3.: Call to undefined function mysqli_result() in : $row = mysqli_result($result);

marked as duplicate by deceze mysql Nov 17 '14 at 14:01

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

0

You need to create a connection to your database first, do this using mysql_connect() like so:

$con = mysql_connect(DATABASE, USERNAME, PASSWORD, TABLE);

and then pass this connection whenever you make a query.

Also change all of your function calls to mysqli_*

  • OP is using mysql_ – Funk Forty Niner Nov 17 '14 at 14:01
  • Used mysqli just because it's better but changed now – DrRoach Nov 17 '14 at 14:02
  • 2
    I understand and I agree on mysqli. However, mysqli is only as safe as mysql_, unless using prepared statements. – Funk Forty Niner Nov 17 '14 at 14:03
  • And you cannot just replace mysql_* with mysqli_*, it just doesn't work out that way. – Jay Blanchard Nov 17 '14 at 14:07
  • I know but the OP should know that what they are using is badly out of date – DrRoach Nov 17 '14 at 14:12

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