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i have index.php and index2.php

here is index.php:

enter image description here

when i submit this value, index2.php will show. Here is index2.php:

enter image description here

I am not understanding, why this error msg is showing.

Anyways, submitting these selected values(index2.php) it will say a disease name from the database. clicking on submit, this text is showing(below):

enter image description here

I am pesting my code here:

index.php

<?php 
$con = mysql_connect("localhost","root","");
mysql_select_db("symptomchecker",$con) or die(mysql_error());

$q = "select dtid,diseasetype from disease_type";

$result = mysql_query($q,$con) or die(mysql_error());

$numRB = mysql_num_rows($result);

echo "<html><head><title>Disease Type</title></head><body><h1>Disease List</h1></br><form action='index2.php' method='post'>";

$i=0;
while($row = mysql_fetch_array($result)){
    echo $row['diseasetype'];
    echo "<input type='radio' name='diseasetype' id='pet1' value='$row[dtid]' />" ;
    echo "<br />";
    $i++;
}
echo " <input type='submit' value='submit' name='submit'></form></body></html>";
?>

index2.php:

$diseasetypeid = "$_POST[diseasetype]";

$j=0;$i=0;
$query = "select did from disty_dis_rel where dtid = ".$diseasetypeid."";
$result1 = mysql_query($query,$con) or die(mysql_error());
echo "<html><head><title>symptom</title></head><body><h1>symptom List</h1></br><form action='' method='post'>";

while($row =  mysql_fetch_array($result1))
{
  $z=$row['did'];
  $query2 = "select sid,symptomname from symptom where sid = ".$z."";
  $result2 =  mysql_query($query2,$con) or die(mysql_error());
  while($row2 = mysql_fetch_array($result2))
  {
      echo $row2['symptomname'];
      echo "<input type='checkbox' name='pets[$i]' id='pet1' value='$row[sid]' />" ;
      echo "<br />";
      $i++;
      }
  $j++;
  }
echo " <input type='submit' value='submit' name='submit'></form></body></html>";


if(isset($_REQUEST[submit]))
{
  **foreach ($_REQUEST[pets] as $key=>$values)**
  {
      $yy.=$values."-";
  }
  $yy=rtrim($yy,"-");

  $xx = "select did,sids from dis_sym_rel where sids=".$yy."";
  $result3 = mysql_query($xx,$con) or die(mysql_error());

  while($row = mysql_fetch_array($result3)){
      $p=$row[did];
      $xxx = "select did,diseasename from disease where did=".$p."";
      $result4 = mysql_query($xxx,$con) or die(mysql_error());
      while($row4 = mysql_fetch_array($result4))
      {
          echo $row4[diseasename];    
      }
  }
}
?>

the line between ###doublestar### is the error line(49).

share|improve this question
3  
learn to abuse var_dump –  Daan Timmer Apr 17 '12 at 10:53

2 Answers 2

Just within index2.php :

$diseasetypeid = "$_POST[diseasetype]";

should be

$diseasetypeid = $_POST["diseasetype"];

and

if(isset($_REQUEST[submit]))

should really be this :

if($_SERVER['REQUEST_METHOD'] == 'POST')

this checks the REQUEST_METHOD rather than a form value. And

foreach ($_REQUEST[pets] as $key=>$values)

should be

foreach ($_REQUEST['pets'] as $key=>$values)

and I suggest you read about sql injection

share|improve this answer
    
still the same :( –  Abdur Rahim Apr 17 '12 at 10:43
    
@decoyer add some simple debugging to check the values of variables before using them in if statements and foreach loops –  ManseUK Apr 17 '12 at 10:55

This code:

foreach ($_REQUEST[pets] as $key=>$values)

Should be changed to:

foreach ($_REQUEST['pets'] as $key=>$values)

You should quote (put apostrophe or double-quotes, before and after your array key if it's string).

Then, you must have a form something to the following (i can't find it in your index.php file).

<input type="text" name="pets[]" />
<input type="text" name="pets[]" />
<input type="text" name="pets[]" />
<input type="text" name="pets[]" />
<input type="text" name="pets[]" />

The array key 'pets' is the name of your input. [] indicates array. In foreach ($something as ...), $something must be an array (or object).

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