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Currently, I am using PHP to get some from the backend and insert into the database using mysqli. Below is the code used:

$conn = new mysqli('localhost', 'username', 'pwd', 'db');

// check connection
if (mysqli_connect_errno()) {
  exit('Connect failed: '. mysqli_connect_error());
}

$sql = "INSERT INTO `birthday` (`birthday`) VALUES ('$birthday')";

// Performs the $sql query and get the auto ID
if ($conn->query($sql) === TRUE) {
  echo 'The auto ID is: '. $conn->insert_id;
}
else {
  echo 'Error: '. $conn->error;
}

Now if I am going to fetch the information again, how to I update this value? Currently, it will create another row and insert the value again.

Thanks In Advance

share|improve this question
up vote 2 down vote accepted

What I typically do is something like this.

Also, you need to make sure you have a field or something that is unique to this record. Basically, it will always INSERT the way it's written, since we're just checking one value (birthday)

Here's an example

$conn = new mysqli('localhost', 'username', 'pwd', 'db');

    // check connection
    if (mysqli_connect_errno()) {
      exit('Connect failed: '. mysqli_connect_error());
    }          
            // check to see if the value you are entering is already there      
            $result = $conn->query("SELECT * FROM birthday WHERE name='Joe'");
            if ($result->num_rows > 0){ 
                // this person already has a b-day saved, update it
                $conn->query("UPDATE birthday SET birthday = '$birthday' WHERE name = 'Joe'");
            }else{
                // this person is not in the DB, create a new ecord
                $conn->query("INSERT INTO `birthday` (`birthday`,`name`) VALUES ('$birthday','Joe')");
            }    
share|improve this answer
1  
Why do three queries when ON DUPLICATE KEY UPDATE does it all in one query? – JakeGould Jan 28 '13 at 2:53
2  
Jake - Fair enough, he still needs a unique key in there and that's what I was trying to show. In the example you posted, it's basically going to check if the b-day exists, if not create it, if it does, update it to the same value it already was. Also, it's only 2 queries :) One to check, then another as an action. – OrganizedChaos Jan 28 '13 at 2:55
    
Ahh, okay. I better understand your logic then. – JakeGould Jan 28 '13 at 2:58
    
@OrganizedChaos Your soln works. But is there a way to update without using WHERE name = 'Joe'? Because my table has only 1 column named birthday to store the value. – aandroidtest Jan 28 '13 at 3:18
    
@aandroidtest if you only have one field called birthday that stores a value that is a birthday (like 1/1/2000), then you really cant "update" that record because it's matching on the value you want to update to. If you just don't want it to keep inserting and growing the table with the same data you could use Jakes suggestion, or make the Birthday field unique with something like this. ALTER TABLE birthday ADD UNIQUE (birthday); – OrganizedChaos Jan 29 '13 at 2:14

This should work. But will say I find it confusing that you have the db name, table name and variable name set as “birthday”

$sql = "INSERT INTO `birthday` (`birthday`) VALUES ('$birthday') ON DUPLICATE KEY UPDATE birthday = $birthday;";
share|improve this answer
    
I tried your soln but it still adds in a new row and is not updating. Not sure what i did wrong, do i need to check for anything else? Basically i just want to replace the value of birthday. – aandroidtest Jan 28 '13 at 3:21
    
@aandroidtest do you just want to do this? Have one field called birthday (like you do) and no matter what value you send to it, have it update that field? – OrganizedChaos Jan 29 '13 at 2:19

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