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Im having trouble with my sql statements. I dont know what im doing wrong but it keeps adding to the database much rather than uploading

$result = mysql_query("SELECT id FROM users where fbID=$userID");
if (mysql_num_rows($result) > 0) {
  mysql_query("UPDATE users 
               SET firstName='$firstName'
                 , lastName='$lastName'
                 , facebookURL='$link'
                 , birthday='$birthday'
                 , update='$today'
                 , accessToken='$accessToken'
                 , parentEmailOne='$parentEmailOne'
               , WHERE fbID='$userID'");
} else {
  mysql_query("INSERT INTO users 
                 (fbID, firstName, lastName, facebookURL, birthday
                 , updated, accessToken, parentEmailOne ) 
              VALUES ('$userId', '$firstName', '$lastName', '$link', '$birthday'
                 , '$today', '$accessToken', '$parentEmailOne')");
}
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What is the type of the fbID column? –  Gavin Schulz May 4 '11 at 20:53
1  
did you mean insert rather than update? uploading is unclear –  Dagon May 4 '11 at 20:53
    
Temporarily change the first line to mysql_query("SELECT id FROM users where fbID=$userID") or die(mysql_error()); to see if an error is being returned. –  webbiedave May 4 '11 at 20:56
1  
I hope none of your variables are coming from external sources. The way you're doing your queries have made you wide open to SQL injection attacks. –  CanSpice May 4 '11 at 21:01
    
Did you try DIEing the query and then execing it via copy/paste to phpmysqladmin or whatever? –  James May 4 '11 at 21:32

8 Answers 8

i see that in the first query you use $userID , while in the INSERT you are using $userId

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There is an extra comma in your first (I mean the UPDATE) query:

'... $parentEmailOne', WHERE fbID='$userID'");
                     ^
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You have an extra comma in your UPDATE statement before the WHERE clause:

parentEmailOne='$parentEmailOne', WHERE fbID='$userID'"
                              ^^^^

But, also you should make sure that your variable $userID isn't empty and echo out mysql_num_rows() to see what you're getting back from the SELECT

Also, in your SELECT you use the variable $userID but in your INSERT you are using $userId. Note the capitalization difference.

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You need quotes on the first query, fbID='$userID'

Also, you dont need this , before where, on the second SQL

And last, you use userID on the first reference, and userId on the last

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Do the names contain any apostrophes?

You'll want to be sure to use mysql_real_escape_string

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Are you saying it inserts rather than updating? In other words, it's failing to find existing records that you expect it to find?

I recommend that instead of doing "update if the record exists, otherwise insert" logic yourself, you look into MySQL's built-in functionality.

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update is keyword and you must use from delimiter. and one comma in first query is extra

$result = mysql_query("SELECT `id` FROM `users` where `fbID`=$userID");
if (mysql_num_rows($result) > 0) {
mysql_query("UPDATE `users` SET `firstName`='$firstName', `lastName`='$lastName', `facebookURL`='$link', `birthday`='$birthday', `update`='$today', `accessToken`='$accessToken', `parentEmailOne`='$parentEmailOne' WHERE `fbID`='$userID'");
} else {
mysql_query("INSERT INTO `users` (`fbID`, `firstName`, `lastName`, `facebookURL`, `birthday`, `updated`, `accessToken`, `parentEmailOne` ) VALUES ('$userId', '$firstName', '$lastName', '$link', '$birthday', '$today', '$accessToken', '$parentEmailOne')");
}

this is standard code

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if the userID column is a varchar, you should quote the $userID variable in your first query

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