Dismiss
Announcing Stack Overflow Documentation

We started with Q&A. Technical documentation is next, and we need your help.

Whether you're a beginner or an experienced developer, you can contribute.

Sign up and start helping → Learn more about Documentation →
  1. I'm trying to pull data from 2 tables and when I add this in the $query, the results are all messed up when I click my link ex. /leads.php?contactstatus=Hot

  2. How can I by default display all contactstatus types when I only have "Hot" "Warm" "Cold" as options in the table row contactstatus?

    <?
    mysql_connect ("xxxx","xxxx","xxxx") or die ('Error: ' .mysql_error());
    mysql_select_db ("xxxx");
    
    if(isset($_GET['contactstatus'])
    && in_array($_GET['contactstatus'], array('Hot', 'Warm', 'Cold'))){     
    $status = $_GET['contactstatus']; 
    } 
    else {      
    $status = ''; // what do I put here so by default users for all contactstatus types show in results 
    }  
    
     $query = "SELECT * FROM contacts,contacttodo WHERE contacts.contactstatus =    `'".$status."' OR contacttodo.type = 'Appointment'";`  
    
    $result=mysql_query($query);
    
    while($row = mysql_fetch_array($result)){
    
    ?>
    

UPDATE:

This works:

<div class="nav">
<table width="100%">
<tr>
<td>
<li><a href="/dbs/a.php?type=Appointment">Appointments</a></li> 
<li><a href="/dbs/a.php?contactstatus=Hot">Hot</a></li> 
<li><a href="/dbs/a.php?contactstatus=Warm">Warm</a></li> 
<li><a href="/dbs/a.php?contactstatus=Cold">Cold</a></li>
</td>
</tr>
</table>
</div>

$status = ''; 
$todotype = '';  

if(isset($_GET['contactstatus']) 
&& in_array($_GET['contactstatus'], array('Hot', 'Warm', 'Cold')))
{     
$status = $_GET['contactstatus'];     
 $query = "SELECT * FROM contacts,contacttodo,contactnotes WHERE contacts.ID = contacttodo.contacts_id = contactnotes.contacts_id AND contacts.contactstatus = '".$status."' ORDER BY contacts.firstname ASC"; 
}  

if(isset($_GET['type']) 
&& in_array($_GET['type'], array('Appointment', 'Email', 'Call')))
{     
$todotype = $_GET['type'];     
$query = "SELECT * FROM contacts,contacttodo,contactnotes WHERE contacts.ID = contacttodo.contacts_id = contactnotes.contacts_id AND contacttodo.type = '".$todotype."' ORDER BY contacts.firstname ASC"; 
} 
$result=mysql_query($query);

while ($row = mysql_fetch_array($result)) {

<div id="contact-results">
<table width="100%" cellspacing="0" cellpadding="0" class="contact-results"> 
<tr>
<td align="left" width="15%"><a href="/dbs/editcontact.php?ID=<? echo $row['ID']; ?>"><strong><? echo $row['firstname']; ?> <? echo $row['lastname']; ?></strong></a></td>
<td align="left" width="5%"><? echo $row['contactstatus']; ?></td>
<td align="left" width="15%"><? echo $row['contacttype']; ?></td>
</tr>
</table>
</div>
<?
}
mysql_close();
?>

By default how can I display all 'Hot' 'Warm' 'Cold' leads?

share|improve this question
    
(Waits for someone to tell poster he didnt sanitize his queries). – luckytaxi Aug 2 '11 at 16:20
up vote 0 down vote accepted

try

if(isset($_GET['contactstatus']) && in_array($_GET['contactstatus'], array('Hot', 'Warm', 'Cold')))
{
  $status = contacts.contactstatus = '".$_GET['contactstatus']."' ; 
} 
else 
{       
 $status = '0'; 
}

$query = "SELECT * FROM contacts,contacttodo WHERE contacttodo.id =  contacts.id AND (  ".$status." OR contacttodo.type = 'Appointment')";

The contacttodo.id = contacts.id need to be updated for your structure

share|improve this answer
    
Did this and get invalid Mysql result: $query = "SELECT * FROM contacts,contacttodo WHERE contacttodo.contacts_id = contacts.ID AND ( ".$status." OR contacttodo.type = 'Appointment')"; – joshua76 Aug 2 '11 at 16:55

You've got no join condition linking the contacts and contacttodo tables, so you're getting a cross product. You'd need something like:

SELECT * 
    FROM contacts c
        INNER JOIN contacttodo ctd
            ON c.contact_id = ctd.contact_id /* Obviously, I guessed on the column names */
    WHERE c.contactstatus = '".$status."' 
        OR ctd.type = 'Appointment'
share|improve this answer
    
This give me an invalid Mysql result: $query = "SELECT * FROM contacts INNER JOIN contacttodo ON contacts.ID = contacttodo.contacts_id WHERE contacts.contactstatus = '".$status."' OR contacttodo.type = 'Appointment'"; $result=mysql_query($query); while ($row = mysql_fetch_array($result)) { ?> – joshua76 Aug 2 '11 at 16:52
    
When I remove the OR contacttodo.type = 'Appointment' it seems to work okay but when I put that back in it says I have an invalid mysql result. – joshua76 Aug 2 '11 at 17:23
    
updated my code, can you direct me on how to make a default selection? – joshua76 Aug 3 '11 at 1:29
if(isset($_GET['contactstatus']) && in_array($_GET['contactstatus'], array('Hot', 'Warm', 'Cold'))){
    $status = "'" . $_GET['contactstatus'] . "'";
} else {
    $status = 'contact.contactstatus';
    // since contact.contactstatus ALWAYS equals contact.contactstatus
    // I wonder about the wisdom of doing it this way, but this is roughly how I do it anyway
}

$query = "SELECT *
    FROM contacts
        INNER JOIN contacttodo ON contacts.contact_id=contacttodo.contact_id
    WHERE contacts.contactstatus = " . $status . " OR contacttodo.type = 'Appointment'";

Also, takes a bit from Joe's answer about the join since putting the join condition in the WHERE clause will really screw up the result if you put in a condition that's always true.

share|improve this answer
    
get invalid mysql results using $query = "SELECT * FROM contacts INNER JOIN contacttodo ON contacts.ID=contacttodo.contacts_id WHERE contacts.contactstatus = ". $status . " OR contacttodo.type = 'Appointment'"; – joshua76 Aug 2 '11 at 17:00

I am updating my answer after your feedback about table definition.

$query = "SELECT DISTINCT t2.type FROM contacts t1, contacttodo t2 WHERE t1.id=t2.contacts_id AND (t1.contactstatus IN ('Hot', 'Warm', 'Cold') OR t2.type = 'Appointment')";
share|improve this answer
    
table1=contacts - ID, firstname, lastname, contactstatus and table2=contacttodo - id, contacts_id, reminder_date, type – joshua76 Aug 2 '11 at 17:03
    
Thanks, so I tried the following and it gave me an error saying invalid argument. I'm confused as to why this isn't working. All the table names and columns are correct. $query = "SELECT DISTINCT contacttodo.type FROM contacts, contacttodo WHERE contacts.ID=contacttodo.contacts_id AND (contacts.contactstatus IN ('Hot', 'Warm', 'Cold') OR contacttoto.type = 'Appointment'"; – joshua76 Aug 2 '11 at 17:41
    
I would say, try the query in a sql terminal and see if you see your expected result and then try to find if there is any typo in your code. – Mohammad Khan Aug 2 '11 at 18:15
    
My bad.. I was missing a parentheses. I have corrected answer. – Mohammad Khan Aug 2 '11 at 18:41

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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