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I know how to perform an SQL LIKE % query for a single value like so:

SELECT * FROM users WHERE name LIKE %tom%;

but how do I do this if the search terms for my LIKE comes from an array? For example, let's say we have an array like this:

$words = array("Tom", "Smith", "Larry");

How do I perform my SQL LIKE % to search for the words in my array like:

SELECT * FROM users WHERE name LIKE %[each_element_from_my_array]%

WITHOUT putting the whole query inside a foreach loop or something

EDIT : I forgot to mention that I'm doing this in cakePHP inside the conditions of the cakePHP find('all') method, so that complicates things a little bit.

Thanks

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Your question has at least 5 votes for the like-operator tag. Could I kindly request that you suggest sql-like as a synonym? –  Kermit Apr 2 '13 at 18:41
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5 Answers

up vote 10 down vote accepted
$sql = array('0'); // Stop errors when $words is empty

foreach($words as $word){
    $sql[] = 'name LIKE %'.$word.'%'
}

$sql = 'SELECT * FROM users WHERE '.implode(" OR ", $sql);

Edit: code for CakePHP:

foreach($words as $word){
    $sql[] = array('Model.name LIKE' => '%'.$word.'%');
}

$this->Model->find('all', array(
    'conditions' => array(
        'OR' => $sql
    )
));

Read up on this stuff: http://book.cakephp.org/1.3/en/view/1030/Complex-Find-Conditions

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my thought exactly. nice answer! just need to be careful when having an empty array which would cause SQL error... –  jperovic Feb 23 '12 at 15:37
    
Just fixing that, is OR 1=0 valid SQL, or just OR 0? –  472084 Feb 23 '12 at 15:38
    
I think OR 0 would do just fine... ;) –  jperovic Feb 23 '12 at 15:45
    
This will work, but how do I do this inside the cakePHP find('all') function (See edit) –  user765368 Feb 23 '12 at 15:45
    
Check my edit.. –  472084 Feb 23 '12 at 15:54
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In case of standard SQL, it would be:

SELECT * FROM users WHERE name LIKE '%tom%' 
                       OR name LIKE '%smith%' 
                       OR name LIKE '%larry%';

Since you're using MySQL you can use RLIKE (a.k.a. REGEXP)

SELECT * FROM users WHERE name RLIKE 'tom|smith|larry';
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RLIKE happened to be an absolutely great solution for me, thanks!! ;) –  Ilia Rostovtsev Dec 5 '12 at 17:24
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You can't. It'll have to be a chained field like %..% or field like %..% or .... A where ... in clause only does extract string matches, with no support for wildcards.

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try using REGEXP

SELECT * FROM users where fieldName REGEXP 'Tom|Smith|Larry';
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i just took the code of 472084.

$sql = array('0'); // Stop errors when $words is empty

foreach($words as $word){
    $sql[] = 'name LIKE %'.$word.'%'
}

$sql = 'SELECT * FROM users WHERE '.implode(" OR ", $sql);

For my self, i had to modify it because it's returned me an error SQL. I Post it for people who gonna read the thread.

foreach($words as $word){
    $sql[] = 'name LIKE \'%'.$word.'%\'';
}

$sql = 'SELECT * FROM users WHERE '.implode(" OR ", $sql);

The difference between them is about quote, my mysql DB said there is a problem ! so i had to escape quote from $sql[] = 'name LIKE %'.$word.'%' and now it's work perfectly.

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