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I'm learning PHP right now and I'm trying to insert data into a MySQL database called "pumpl2" The table is set up like this.

create table product
 ( productid int unsigned not null auto_increment primary key,
   price int(9) not null,
   value int(9) not null,
   description text
 );

I have a form and want to insert the fields from the form in the database. Here is what the php file looks like.

<?php

// create short variable names
$price = $_POST['price'];
$value = $_POST['value'];
$description = $_POST['description'];

if (!$price || !$value || !$description) {
 echo "You have not entered all the required details.<br />"
  ."Please go back and try again.";
 exit;
}

@ $db = new mysqli('localhost', 'pumpl', '********', 'pumpl2');

if (mysqli_connect_errno()) {
 echo "Error: Could not connect to database. Please try again later.";
 exit;
}

$query = "insert into pumpl2 values
 ('".$price."', '".$value."', '".$description."')";
$result = $db->query($query);

if ($result) {
 echo  $db->affected_rows." product inserted into database.";
} else {
 echo "An error has occurred.  The item was not added.";
}

$db->close();

?>

When I submit the form, I get an error message "An error has occurred. The item was not added."

Does anyone know what the problem is? Thank you!

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2  
You are concatenating raw post values into an INSERT statement which is a VERY bad idea. You should look into PDO and prepared statements: php.net/manual/en/pdo.prepare.php –  Colonel Sponsz May 12 '10 at 10:36
    
I will check it out now. Thanks! –  Victor May 12 '10 at 10:47
    
@Colonel actually, PDO hold no monopoly for the parametrized queries. mysqli has similar mechanism. –  Your Common Sense May 12 '10 at 11:11
    
Another way of formatting queries would be: $sql = "SELECT * FROM table"; $result = mysql_query($sql) or die("Error Occured".mysql_error()); –  John M May 12 '10 at 14:16
    
@Col. Shrapnel: It doesn't but PDO supports multiple databases, so you only have to learn the syntax for using DBs once, then apply it regardless of which DB types you actually use. –  Powerlord May 12 '10 at 14:32
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7 Answers

This should give you more information:

echo "An error has occurred: " . $db->error();
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1  
+1 for telling the OP how to diagnose the problem himself! –  symcbean May 12 '10 at 10:39
    
Thank you. I added this to the script. I'm sure it will help in the future. –  Victor May 12 '10 at 10:46
1  
@Victor, actually, that's wrong approach. trigger_error() should be used instead of echo. and to add a query itself to the error message would be also good idea. –  Your Common Sense May 12 '10 at 11:09
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You only insert three columns but have four defined in your table. Thus you have to name the columns explicitly:

 INSERT INTO tableName (ColumnA, ColumnB, ColumnC) VALUES ('A', 'B', 'C')
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+1 nice catch.. –  zaf May 12 '10 at 10:36
    
Thank you! This fixed the problem. –  Victor May 12 '10 at 10:40
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You are trying to insert into the table called pumpl2, but the CREATE TABLE statement created a table called product.

In addition, as ZeissS noted, you have to consider the following:

CREATE TABLE product ( 
    productid int unsigned not null auto_increment primary key,
    price int(9) not null,
    value int(9) not null,
    description text
);
Query OK, 0 rows affected (0.09 sec)

INSERT INTO product VALUES (1, 1, 'test');
ERROR 1136 (21S01): Column count doesn't match value count at row 1

To solve that error, you need to explicitly specify the list of the columns:

INSERT INTO product (price, value, description) VALUES (1, 1, 'test');
Query OK, 1 row affected (0.03 sec)
share|improve this answer
    
Thank you. I believe this is correct. I combined this advice with advice above and it helped me fix the problem. –  Victor May 12 '10 at 10:41
    
No, you should'nt insert NULL here, since the column is defined as not null and auto_increment. I would say, working with NULL here is beeing dependent on the underlying database too much. Make it clear (other people are not confused by the null value) and simple: Don't insert this column. –  ZeissS May 12 '10 at 10:47
    
@ZeissS: Good point. Fixed. (In fact, it wouldn't have worked in strict mode.) –  Daniel Vassallo May 12 '10 at 11:10
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$query = "insert into pumpl2.product (price, value, description) values('" .
         $db->read_escape_string($price) . "', '".
         $db->read_escape_string($value) . "', '" .
         $db->read_escape_string($description) . "')";
$result = $db->query($query);

And an obligatory XKCD cartoon:

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Your query is wrong, you didn't have the columns specified. Try it with:

"INSERT INTO pumpl2 (price, value, description) VALUES ('".$price."', '".$value."', '".$description."')"

Besides that, do not use the $_POST values to enter them directly into the database. Search for SQL Injection on this one. Use mysql_real_escape_string on the $_POST data first, or even better use prepared statements.

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Specifying the values is not necessary if you're inserting a value for every column, and in the correct order. However, it is good practice to specify them. EDIT: ah right, the OP wasn't inserting into all columns. –  DisgruntledGoat May 12 '10 at 10:41
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It could be several reasons.

Try

echo "Errormessage: ".$db->error;

to get more details, why the Insert didn't work.

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Your table is called products not pumpl2. Furthermore you should do:

insert into product (price, value, description) values ( ...
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