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I've already asked a question on this code I'm working on, just not about the same problem. Either way sorry for the repost!

So I'm having trouble with the code, as follows:

<?php
// Create connection

$host = "localhost";
$username="tudor";
$password="passw0rd";

$con=mysqli_connect($host, $username, $password);
if(! $con )
{
  die('Could not connect: ' . mysqli_error());
}
echo 'Connected successfully<br />';


$db_1 = mysqli_select_db( $con, 'db_1' );
if (! $db_1) {
die('Could not select database: ' . mysqli_error());
}
else {
echo "Database successfully selected<br />===============================<br />";
}

//===================================



$a = 1;
$b = 2234;

$table = "CREATE TABLE info (id INT NOT NULL AUTO_INCREMENT, city CHAR(40), country CHAR(40))";
 if (! $table) {
die('Could not create table ' . mysqli_error($con));
}
else {
echo "Table created<br />";
}

$insert = "INSERT INTO info (city, country) VALUES ($a, $b)";
 if (! $insert) {
die('Could not insert ' . mysqli_error($con));
}
else {
echo "Inserted<br />";
}

$select = "SELECT * FROM info";  


$result = mysqli_query ($con, $insert);
 if (! $result) {
die('Result not working ' . mysqli_error($con));
}
else {
echo "Result working<br />";
}

echo "result: ".$result['city']. " ";


mysqli_close($con);

?>

This outputs (blockquote doesn't display page breaks):

Connected successfully Database successfully selected =============================== Table created Inserted Result not working Table 'db_1.info' doesn't exist

What does it mean by "Table 'db.info'" not existing? It clearly says that my info table was created... What I tried doing is inverting the variables in the $result query: $result = mysqli_query ($insert, $con);, because I had seen that syntax in a book. However all it gave was the following message in the output:

Warning: mysqli_query() expects parameter 1 to be mysqli, string given in C:\wamp...

Thoughts anyone? Thanks in advance!

Edit: really appreciate the help everyone, thanks a lot!

share|improve this question

3 Answers 3

up vote 0 down vote accepted

ok. Here is your code.

if(! $con )
{
  die('Could not connect: ' . mysqli_error());
}
echo 'Connected successfully<br />';
if (!$con) {trigger_error("Could not connect to MySQL: " . mysqli_connect_error()); }   
else { echo "Database successfully connected<br />===============================<br />"; }
$a = 1;
$b = 2234;
$table = mysqli_query($con,"CREATE TABLE IF NOT EXISTS info (`id` int(11) unsigned NOT NULL auto_increment,
`city` CHAR(40), 
`country` CHAR(40), PRIMARY KEY  (`id`) )ENGINE=MyISAM  DEFAULT CHARSET=utf8");
  if (!$table) {
die('Could not create table ' . mysqli_error($con));
}
else {
echo "Table created<br />";
}
$insert = mysqli_query ($con,"INSERT INTO info (city, country) VALUES ('$a', '$b')");
 if (!$insert) {
die('Could not insert ' . mysqli_error($con));
}
else {
echo "Inserted<br />";
}
$select =  mysqli_query ($con,"SELECT * FROM info");  
$res=mysqli_fetch_array($select);
 if (! $res) {
die('Result not working ' . mysqli_error($con));
}
else {
echo "Result working<br />";
}

echo "result: ".$res['city']. " ";
echo "result: ".$res['country']. " ";
mysqli_close($con); 
share|improve this answer
    
1) You forgot to add mysqli_query on CREATE TABLE --2) this connection way is faster--3) also forgot to set PRIMARY KEY (id) on CREATE TABLE –  Nikos Mar 31 '13 at 17:24
    
Amazing! Works like a charm, thanks so much! I saw two changes: the details added in the table creation part, and a change from ($con, $insert) to ($con, $result). Although the latter was a problem, I think it was what you changed in the table syntax that made the difference in the table error. Can you explain why this made it work? Edit: sorry I just saw your comment. Why is this connection faster? And does there always have to be a query for the table creation? –  Tudor Manole Mar 31 '13 at 17:29
    
NO! Now!!! it is working! There was some more mistakes in the insert query. Just edited it. Please copy and review the mistakes of the second half –  Nikos Mar 31 '13 at 17:36
    
@Nik you are still missing a mysqli_query() on $insert in your suggested code. –  Sean Mar 31 '13 at 17:39
    
fewer code I meant. Also take care of VALUES ('$a', '$b') needed apostrophes AND didn't have any mysqli_fetch_array while reading the db. Do not forget that INSERT AND UPDATE needs just the mysqli_array, though SELECT needs also the mysqli_fetch_array to fetch the data.. –  Nikos Mar 31 '13 at 17:40

You are not doing a mysqli_query() on $table before your mysqli_query() on $insert, and you are not doing a mysqli_query() on $select

$table = "CREATE TABLE info (id INT NOT NULL AUTO_INCREMENT, city CHAR(40), country CHAR(40))";
 if (! $table)

$insert = "INSERT INTO info (city, country) VALUES ($a, $b)";
 if (! $insert) {

$select = "SELECT * FROM info";  

$result = mysqli_query ($con, $insert);
if (! $result) 

try adding the mysqli_query() -

$table_sql = "CREATE TABLE `info` (`id` INT NOT NULL AUTO_INCREMENT, `city` CHAR(40), `country` CHAR(40), PRIMARY KEY (`id`))";
$table = mysqli_query ($con, $table_sql);
 if (! $table) {
die('Could not create table ' . mysqli_error($con));
}
else {
echo "Table created<br />";
}

$insert_sql = "INSERT INTO `info` (`city`, `country`) VALUES ('$a', '$b')";
$insert = mysqli_query ($con, $insert_sql);
 if (! $insert) {
die('Could not insert ' . mysqli_error($con));
}
else {
echo "Inserted<br />";
}

$select = "SELECT * FROM `info`";  

$result = mysqli_query ($con, $select);
 if (! $result) {
die('Result not working ' . mysqli_error($con));
}
else {
echo "Result working<br />";
}

Edit Also, this line will fail -

echo "result: ".$result['city']. " ";

as you have to fetch the array from the query using mysqli_fetch_array()

$results = mysqli_fetch_array($result);
echo "result: ".$results['city']. " ";
share|improve this answer
    
I'm talking about this query at the end of the code: $result = mysqli_query ($con, $insert); –  Tudor Manole Mar 31 '13 at 17:07
    
See my updated answer. You have to do a mysqli_query() on $table, and $insert, before you can do it on $select. This line $result = mysqli_query ($con, $insert); fails because you are trying to insert $insert, when the $table was never created. You are also not actually doing your $select in that query as you are using $insert instead of $select. –  Sean Mar 31 '13 at 17:14
    
That makes sense, thanks a lot for the tips. However, now that I add the changes you showed me, the table can't be created. It gives the following error message: "Incorrect table definition; there can be only one auto column and it must be defined as a key" –  Tudor Manole Mar 31 '13 at 17:19
    
In order for a column to have AUTO_INCREMENT, it must be set to PRIMARY KEY (id) - see the MySQL docs - dev.mysql.com/doc/refman/5.0/en/example-auto-increment.html –  Sean Mar 31 '13 at 17:26
    
you're right, as someone mentioned, the id was missing. Works well now, thanks for the help! –  Tudor Manole Mar 31 '13 at 17:40

Table 'db_1.info' doesn't exist

Means, that table info does not exist in db db_1 so, make sure if that is the case.

share|improve this answer
    
@TudorManole table info in db db_1 does not exist, because the CREATE TABLE... query was never ran in a mysqli_query(). It was just set as a php variable. –  Sean Mar 31 '13 at 17:16
    
@Sean Well, it does not matter if it was created or not, because you are trying to get a data from non-existing table. which is info –  anon Mar 31 '13 at 17:22
    
I understood the problems everyone. Thanks for all the help, really appreciate it! –  Tudor Manole Mar 31 '13 at 17:35

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