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    echo $t1, $t2, $t3, $t4, $uid;
$querytotal = "update customer_det set `t1` = $t1, `t2` = $t2, `t3` = $t3, `t4` = $t4 WHERE `id` = $uid "; 
echo $querytotal;

So I echo the variables, and I see them fine. When I go to do the update statement and echo the statement afterwards, it drops all the variables. I have no idea how that's even possible. Mysql_error: ...for the right syntax to use near ' t2 = , t3 = , t4 = WHERE id =' at line 1. So it's skipping error on t1, but then kicks out at t2? Is there something i'm missing here?

Here's the echo'd query before it's ran update customer_det sett1= '215',t2= '240',t3= '265',t4= '300' WHEREid= '273'

and after update customer_det sett1= '',t2= '',t3= '',t4= '' WHEREid= ''

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what are the data types of the columns? –  John Woo Nov 1 '12 at 15:14
    
It's trying to update with rounded integer values, and the column types are INT(15) –  user1718270 Nov 1 '12 at 15:15
1  
Why are you not using PDO/MySQLi and prepared statements? That eliminates 90% of all PHP/MySQL problems on SO. –  DCoder Nov 1 '12 at 15:24
    
First of all I don't know how to implement either of those. Second, it is my task to finish what was started. The server runs without MySQLi module in PHP 4 –  user1718270 Nov 1 '12 at 15:27
1  
Do you have the query inside a function, and echoing it outside the function? –  Teena Thomas Nov 1 '12 at 15:45
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3 Answers

echo $t1, $t2, $t3, $t4, $uid;
$querytotal = "update customer_det set t1 = '$t1', t2 = '$t2', t3 = '$t3', t4 = '$t4' WHERE id = '$uid' "; 
echo $querytotal;

You need to have 'single quotes' around your variable names inside the "double quotes" in php for them to show

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Even with the single quotes, it kicks the same error –  user1718270 Nov 1 '12 at 15:18
    
try doing the string in a java-like format then String str = "Hello" + variable +" World"; –  Gene Parmesan Nov 1 '12 at 15:20
    
Permesan What's that mean? Forgive my ignorance. –  user1718270 Nov 1 '12 at 15:21
    
"update customer_det set t1` = "+t1+", t2 = "+$t2+", t3 = "+$t3+", t4 = "+$t4+" WHERE id = "+$uid;` –  Gene Parmesan Nov 1 '12 at 15:23
    
You're missing the single quotes in your last comment –  Juan - devtopia.coop Nov 1 '12 at 15:24
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Try this code:

echo $t1, $t2, $t3, $t4, $uid;
$querytotal = "update customer_det set t1 = '{$t1}', t2 = '{$t2}', t3 = '{$t3}', t4 = '{$t4}' WHERE id = {$uid}"; 
echo $querytotal;

Variables are not being dropped. Your query is just not correct.

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This is the correct way. –  Juapo2Services Nov 2 '12 at 3:34
    
If you think that this answer is correct, feel free to check this answer. Cheers! –  Lao Nov 2 '12 at 4:04
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Try this

echo $t1, $t2, $t3, $t4, $uid; $querytotal = "update customer_det set t1 = '". $t1 ."', t2 = '". $t2 ."', t3 = '". $t3 ."', t4 = '". $t4 ."' WHERE id = ". $uid; echo $querytotal;

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