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i have a program where i need to insert words as much as i wish and then those words will be checked through database, if it is present in database , it should return how many words where present in database. please tell me what is wrong with this code, it is not returning the number of similar entries to database

<html>
<head>

<script language="javascript" type="text/javascript">
// Pre-defined text:
var newtext = "This is the new text";
// Drop-Menu:
var newtext = myform.mymenu.options[myform.mymenu.selectedIndex].value;
// Prompt:
var newtext = prompt('Enter New Text Here:', '');
function addtext() {
    var newtext = document.myform.inputtext.value;
    document.myform.outputtext.value += newtext+'&nbsp;';
}

</script>
</head>
<body>
<form name="myform" action="" method="post">
<table border="0" cellspacing="0" cellpadding="5"><tr>
<td><textarea name="inputtext"></textarea></td>
<input type="radio" name="placement" value="append" checked> Add to Existing Text<br>
<td><p><input type="radio" name="placement" value="replace"> Replace Existing Text<br>
<input type="button" value="Add New Text" onClick="addtext();"></p>
</td>
<td><textarea name="outputtext"></textarea></td>
</tr></table>
<input type="submit"/>
</form>
<?php
$string=$_POST['outputtext'];
$array=array();
$array=explode(';',$string);
@ $db=new mysqli('localhost','root','','words');
if(mysqli_connect_errno())
{
    echo 'Error:Could not connect to the database';
}
else
echo 'connected';
$db->select_db('words');
$count = 0;
foreach($array as $s)
{    
    $query="select * from collection where word LIKE '%".$s."%'";
    $result=$db->query($query);
    if($result)
    $count += $db->num_rows;    
}
echo $count;
$db->close();
?>
</body>
</html>
share|improve this question
    
You're not using $s in your query. –  Barmar Feb 27 at 9:43
    
its not showing how many words that i have entered in textarea are already in database. –  user3358601 Feb 27 at 9:43
    
$array stores the words that are entered. –  user3358601 Feb 27 at 9:47
    
You have a big security break (SQL inject). You must check POST vars (with real_escape_string) before concatenating it in queries, or (better) use placeholders provided in PDO. –  Sebastien C. Feb 27 at 10:04

3 Answers 3

$db->num_rows is already the number of rows... You don't need to manually count them.

share|improve this answer
$count = 0;
foreach($array as $s)
{    
    $query="select count(*) as num_matched from collection where word LIKE '%".$s."%'";
    $result=$db->query($query) or die($db->error);
    $row = $result->fetch_assoc();
    $count += $row['num_matched'];
}
echo $count;

You should also switch to parametrized queries instead of using the input directly.

$stmt = $db->prepare("select count(*)
                      FROM collection
                      WHERE word LIKE CONCAT('%', ?, '%')");
$stmt->bind_param("s", $s);
$count = 0;
foreach ($array as $s) {
    $result = $stmt->execute();
    $stmt->bind_result($num_matched);
    $stmt->fetch();
    $count += $num_matched;
}
echo $count;
share|improve this answer
    
its returning the number of entries i have in the database not the matched entries. –  user3358601 Feb 27 at 9:52
    
It shouldn't. It should only be counting the matched entries. Try printing $query and make sure it contains what you expect in the LIKE clause. –  Barmar Feb 27 at 9:54

its not feasible to run query in for loop so, you can try below solution,

$array=array('abc','xyz','lmn','pqr');     
$query="select word from collection where word LIKE '%".$s."%'";
$result=$db->query($query);
while ( $row = mysql_fetch_array($result) )
{
  $tblarray[] =  $row['word'];
}
foreach($tblarray as $k => $v)
{
  foreach($array AS $key => $value)
   {
    if (strpos($v, $value) !== false)
     {
      $finalarray[] = $v; 
     }
  }
}
echo sum($finalarray);
share|improve this answer

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