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.

I'm doing an integration of PHP and MySQL. The following code is working fine:

<?php
include_once("conf.php");

$sql = "SELECT Name,Address FROM customers";
$rs = mysqli_query($connect,$sql) or die("can't connect to DB");
$temp = mysqli_num_rows($rs);


while($row = mysqli_fetch_array($rs))
{
  $convert = mb_convert_encoding ($row['Name'],"UTF-8","gbk");
  $print .= "<tr><td>".$convert."</td><td>".$row['Address']."</td><td>".$sql2."</td></tr>\n";
}

This code is working, but now I need to select specific information from ANOTHER table, BASED on the result (Name) of this one.

So, this would be the other MySQL select:

$sql2 = "select History from Delivery where Name="$convert";

Based on the "Name" of my customer (from customer table), I need to get his "History" at the Delivery table.

So, I will print his: Name + Address + History

What would be the best solution??

@@@@@@@@@ SOLVED @@@@@@@@@@

$sql = 'SELECT * FROM customers c 
            INNER JOIN Delivery d 
            ON c.Name = d.Name';

$result = mysqli_query($connect, $sql);
$temp = mysqli_num_rows($rs);


while($row = mysqli_fetch_array( $result))
{
  $convert = mb_convert_encoding ($row['Name'],"UTF-8","gbk");
  $print .= "<tr><td>".$convert."</td><td>".$row['Address']."</td><td>".$row['History']."</td></tr>\n";
}

My current situation is: I have three tables from which I need to get info.

Tables: customers, users, history.

From customers I need ammount of customers.

From Delivery I need History (based on ammount of customers).

From users I need Name (actually it's almost a nickname).

Since that these three tables have a 'Name' column and I CAN'T change column names, how can I get the Name from USERS instead of CUSTOMERS or DELIVERY using that INNER JOIN statement??

share|improve this question

3 Answers 3

up vote 1 down vote accepted

Do a join on the first table to grab all the data you need at one time:

$sql = 'SELECT * FROM customers c 
            INNER JOIN Delivery d 
            ON c.Name = d.Name';

$result = mysqli_query($connect, $sql);

while($row = mysqli_fetch_array( $result))
{
    echo $row['History'] . ' ' . $row['Name'];
}

This saves you from needing the second query.

share|improve this answer
    
I don't get it... How would I print that? –  Darkeden Apr 30 '12 at 21:47
    
@Darkeden - I've added a more complete example –  nickb Apr 30 '12 at 21:50
    
Please, read again my question, I have also updated it. –  Darkeden Apr 30 '12 at 21:54
    
I just figured out. Now I'm using INNER JOIN. I was trying to use custom columns instead of all columns (*). Thank you NickB –  Darkeden May 1 '12 at 2:08

It sounds like you just want to do an INNER JOIN with these two tables on name?

share|improve this answer
    
Dweiss, I have updated my question, please check it –  Darkeden Apr 30 '12 at 21:56

Darkeden, you can do SELECT customers.* or you could do SELECT customers.name as 'CName' and etc. Using aliases like this, you can later do echo $row['CName'].

share|improve this answer
    
customers.* = customers.Name ?? Like: SELECT * FROM customers c INNER JOIN Delivery d ON users.Name as 'c.Name' = users.Name as 'd.Name''; –  Darkeden May 1 '12 at 3:32
    
Instead of selecting * (every column from every table), you could select customers.* which would select each column from the table customers. In that case, you would know that 'name' would be the customer's name. You'll want to only select the columns that you're using. You can still use columns in the where clause even if you are not using them in the select statement. –  dweiss May 1 '12 at 3:34
    
'SELECT users.* FROM customers c INNER JOIN Delivery d ON c.Name = d.Name INNER JOIN users e ON d.Name = e.Name'; –  Darkeden May 1 '12 at 3:38
    
I'm not being able to manage aliases... –  Darkeden May 1 '12 at 3:40
    
SELECT users.id as 'userID', users.name as 'userName' etc. –  dweiss May 1 '12 at 3:43

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.