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Possible Duplicate:
MySQL check if a table exists without throwing an exception

I have a dynamic mysql query builder in my project that creates select queries from different tables.
I need to check if the current processing table exists or not.
Imagine that my tables are table1, table2, and table3. My code is something like this:

<?php
for($i = 1 ; $i <= 3 ; $i++) {
   $this_table = 'table'.$i;
   $query = mysql_query("SELECT * FROM $this_table");
   // ...
}
?>

How can I do this check (Please tell me the simplest way).

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marked as duplicate by webbiedave, Book Of Zeus, hakre, edorian, Gordon Jan 26 '12 at 10:46

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
I believe this post has the answer – bowlerae Jan 25 '12 at 18:42
    
I don't know why this question must have 3 vote down ... – Mohammad Saberi Jan 25 '12 at 19:19
1  
Perhaps because it was duplicated. Check the link I posted above. – bowlerae Jan 25 '12 at 19:25
    
3343 views and no up-vote? – Mohammad Saberi Oct 29 '12 at 13:41
up vote 60 down vote accepted
if(mysql_num_rows(mysql_query("SHOW TABLES LIKE '".$table."'"))==1) 
    echo "Table exists";
else echo "Table does not exist";

Referenced from the PHP docs.

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2  
note that queries to information_schema (like SHOW TABLES) for DB with lots of tables use a lot of CPU, even if files are cached. True for the latest 5.6.x. – sivann Apr 29 '15 at 11:51
    
There is no more support for mysql_* functions, they are officially deprecated, no longer maintained and will be removed in the future. You should update your code with PDO or MySQLi to ensure the functionality of your project in the future. – TRiG Jun 10 at 10:38

Taken from another post

$checktable = mysql_query("SHOW TABLES LIKE '$this_table'");
$table_exists = mysql_num_rows($checktable) > 0;
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This is the best solution – bozdoz Oct 13 '12 at 23:22
    
Correct me if I'm wrong (I'm genuinely asking you to, I'm NOT a database expert by any means, I'm actually wondering) but isn't it possible for a table to exist but have 0 rows? Doesn't this check if it exists AND has at least one row, as opposed to testing if it exists? Will the value of $checktable be different if the table doesn't exist at all vs. it existing without any content? – Jimbo Jonny Feb 24 at 16:25
    
@JimboJonny Since nobody has responded I'll address this - the query searches for tables (this will be running a query against the information schema - worth a google), and as such the rows it returns will be tables. Therefore if the table exists, it will show as a row in the result of this query. The number of rows in the table is irrelevant here. – Luke Mar 22 at 14:25
$query = mysqli_query('SELECT TABLE_NAME FROM information_schema.TABLES WHERE TABLE_NAME IN ("table1","table2","table3") AND TABLE_SCHEMA="yourschema"');
$tablesExists = array();
while( null!==($row=mysqli_fetch_row($query)) ){
    $tablesExists[] = $row[0];
}
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2  
You can replace TABLE_SCHEMA="yourschema" by TABLE_SCHEMA=database() – Vincent Robert Feb 25 '13 at 15:49

You can try this

$query = mysql_query("SELECT * FROM $this_table") or die (mysql_error());

or this

$query = mysql_query("SELECT * FROM $this_table") or die ("Table does not exists!");

or this

$query = mysql_query("SELECT * FROM $this_table");

if(!$query)
   echo "The ".$this_table." does not exists";

Hope it helps!

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Nice!! Works well! – George Zafiris Jul 19 at 0:19
$result = mysql_query("SHOW TABLES FROM $dbname");

while($row = mysql_fetch_row($result)) 
{
    $arr[] = $row[0];
}

if(in_array($table,$arr))
{
  echo 'Table exists';
}
share|improve this answer

Use this query and then check the results.

$query = 'show tables like "test1"';
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MySQL way:

SHOW TABLES LIKE 'pattern';

There's also a deprecated PHP function for listing all db tables, take a look at http://php.net/manual/en/function.mysql-list-tables.php

Checkout that link, there are plenty of useful insight on the comments over there.

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