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.
<?php
 include "db.php";

 $var = @$_POST['find'];

 //check for empty string and display a message.
 if($var == ""){
echo "<p>Please input a valid 6-digit ID number</p>";
exit;
 } else {

$searchMember = "SELECT * FROM $tablename WHERE id='$var'";

$numresults=mysql_query($searchMember);
$numrows=mysql_num_rows($numresults);

if($numrows == 1){
    echo $searchMember['displayname'];
} else if ($numrows == 0){
    echo "<p>Sorry, we couldn't find anything that matches your input. Try again?</p>";
} 
   }

?>

I've included information to connect to database in db.php. And here's how the form looks like:

<body>
<?php 
include "db.php";
include "searchSystem.php"; 
?>
<form name="search" method="post" action="searchSystem.php">
    Input a 6-digit ID number: <input type="text" name="find" />

    <input type="submit" name="search" value="Search" />
</form>

So there's a column in my table which has 6digit ID of users. We want to let them search their friends' ID number and look at their profile.


So this is what I have just wrote:

<?php
include "db.php";

$var = isset($_POST['find']) ? $_POST['find'] : '';

//check for empty string and display a message.
if($var == ""){
echo "<p>Please input a valid 6-digit ID number</p>";
exit;

} else {

$searchMember = $db->query("SELECT * FROM $tablename WHERE id='$var'");
$row_count = $searchMember->row_count();
$result =$searchMember->fetchALL(PDO::FETCH_ASSOC);

if($row_count == 1){
    echo $result['displayName'].' '.$result['id'];
} else if ($row_count == 0){
    echo "<p>Sorry</p>";
}
}

?>

Still doesn't work :(

share|improve this question

closed as not a real question by datasage, Dagon, jeroen, Jay Gilford, fthiella Mar 11 '13 at 22:50

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

4  
What do you mean by 'it didn't work'? –  MysticXG Mar 11 '13 at 19:51
    
You are using an obsolete database API and should use a modern replacement. You are also vulnerable to SQL injection attacks that a modern API would make it easier to defend yourself from. –  Quentin Mar 11 '13 at 19:52
1  
When you run the code, what response do you get? –  Chibuzo Mar 11 '13 at 19:52
    
@MysticXG It didn't work..because even when I entered a 6-digit number that is already in our database it still responded "Sorry, we couldn't find...." –  Vowel Chu Mar 11 '13 at 20:20
    
@Chibuzo I tried entering a wrong 6digit number...it led me to "Sorry, We couldn't find..." When I tried pressing search button w/o entering anything..it led me to "Please enter a valid 6-digit ID number".. But when I entered a valid 6digit ID that is already in my database, it still led me to "Sorry We couldn't find any..." –  Vowel Chu Mar 11 '13 at 20:24

2 Answers 2

You have two obvious problems:

  • $tablename is never defined
  • $searchMember is a string not an associative array so $searchMember['displayname'] makes no sense
share|improve this answer
    
$tablename has already been defined in db.php would that work? In what way I can have certain column like displayName to be output then? –  Vowel Chu Mar 11 '13 at 20:09
1  
Step 1. Throw out the mysql_* code. Step 2. Read an introductory PDO tutorial. That will tell you how to use the data returned from a query. –  Quentin Mar 11 '13 at 20:13
    
Thank you! will do it and come back if I've encountered any obstacles –  Vowel Chu Mar 11 '13 at 20:25
    
I've changed something. Would you mind to help take a look of it? –  Vowel Chu Mar 11 '13 at 22:25

There are a lot of things wrong here though if any of them are your actual problem i cant say:

$var = @$_POST['find'];

Dont supress errors, instead test for the proper input:

$var = isset($_POST['find']) ? $_POST['find'] : '';

This i highly vulnerable to SQL injection:

$searchMember = "SELECT * FROM $tablename WHERE id='$var'";

Instead escape the variable properly:

$searchMember = sprinf("SELECT * FROM $tablename WHERE id='%s'", mysql_real_escape_string($var));

Furthermore $tablename is never defined unless its in the file youre including.

$searchMember is not an array. I think you mean to reference a result from the query but to do that you need to do:

$memberResult = mysql_fetch_assoc($numrows);
echo $memberResult['displayname'];

And lastly you shouldnt be using mysql_* you should use PDO or Mysqli.

share|improve this answer
    
I will go ahead and read a PDO tutorial first and let you know after I fix it:) Thank you for the patience thou! –  Vowel Chu Mar 11 '13 at 20:26
    
I've changed something.. Mind to check it for me? I am still stuck here –  Vowel Chu Mar 11 '13 at 22:26
    
PDOStatement::fetchAll will give you an array of rows so in order to access a given row you need to do $result[0]['displayname'] where 0 is the index of the row you want. –  prodigitalson Mar 11 '13 at 22:59

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