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I am developing a simple application on PHP . If I trying to run it always showing undefined variable.. I need some suggestions regarding how to fix this, Please find the code snippet below,

<?php
session_start();
include("profilesql.php");
$result = mysql_query("SELECT * FROM addfriends where meid='$_SESSION[stuid]' ");
while($row = mysql_fetch_array($result))
  {
$uid1[$i] = $row["friendid"];
$i++;
  }

 $acrec1 = mysql_query("SELECT * FROM addfriends WHERE userid='$uid1[1]'");

while($row = mysql_fetch_array($acrec2))
  {
    $img1[0]=  $row["image"];
  }

  $acrec2 = mysql_query("SELECT * FROM addfriends WHERE userid='$uid1[2]'");

while($row = mysql_fetch_array($acrec2))
  {
    $img1[1]=  $row["image"];
  }

  $acrec3 = mysql_query("SELECT * FROM profile WHERE userid='$uid1[3]' ");

while($row = mysql_fetch_array($acrec3))
  {
    $img1[2]=  $row["image"];
  }

  $acrec4 = mysql_query("SELECT * FROM profile WHERE userid='$uid1[4]' ");
while($row = mysql_fetch_array($acrec4))
  {
    $img1[3]=  $row["image"];
  }
  ?>

As per the above code snippet, I am getting the error message like stated below,

Notice: Undefined variable: uid1 in C:\xampp\htdocs\collegenetwrking\friends.php on line 11

Notice: Undefined variable: acrec2 in C:\xampp\htdocs\collegenetwrking\friends.php on line 13

Warning: mysql_fetch_array() expects parameter 1 to be resource, null given in C:\xampp\htdocs\collegenetwrking\friends.php on line 13

Notice: Undefined variable: uid1 in C:\xampp\htdocs\collegenetwrking\friends.php on line 18

Warning: mysql_fetch_array() expects parameter 1 to be resource, boolean given in C:\xampp\htdocs\collegenetwrking\friends.php on line 20

Notice: Undefined variable: uid1 in C:\xampp\htdocs\collegenetwrking\friends.php on line 25

Notice: Undefined variable: uid1 in C:\xampp\htdocs\collegenetwrking\friends.php on line 32

Please suggest me on this.

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marked as duplicate by middaparka, 웃웃웃웃웃, andrewsi, Sirko, BartoszKP Sep 19 '13 at 12:56

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.

    
Please search for existing questions/answers before you add a question - this topic has already been covered in substantial detail. –  middaparka Sep 19 '13 at 11:46
    
so check if those variables are defined or define them xD –  aleation Sep 19 '13 at 11:46
    
So many errors..Try debugging. –  웃웃웃웃웃 Sep 19 '13 at 11:47
    
The first occurrence of a variable should be setting its value and not reading it in any form. Check you code for this requirement and those errors/warnings/notices will be gone. –  Sirko Sep 19 '13 at 11:48

2 Answers 2

Define the $uid1 variable at the starting:

session_start();
$uid1 = array();
$i = 0;

As this variable is not find so it it global by defining it at the top.

This issue is occurs due to scope of variable. The scope of variable is within the while loop only so define it at the top to make it accessible within all conditions.

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Please define all the variables on top, then you will not received this errors:
For example:

var $a = "";
var $b = "";
$array_name = array();

Please have an habit of defining an all the variable before use/assign value.

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