I am using this query

"SELECT * FROM items WHERE itemname LIKE '%$name%'"

If $name="alex", then the query returns the correct information. But if $name="alex " with trailing whitespace, then no results are returned.

If $name="alex dude", then this is valid, but $name="alex dude " is not. I only want to remove whitespace at the end of the string.

I have written a function to clear out spaces at the end of name. This is the function.

function checkname($dataname)
{
    $func_name ="";
    $checker = substr($dataname, -1);
    if($checker == " ")
    {
        $func_name = substr_replace($dataname, "", -1)
        function checkname($dataname);
    }
    else
    {
        $dataname = $func_name;
    }
    return $dataname;
}

This gives me a PHP Parse error:

syntax error, unexpected 'function' (T_FUNCTION) in C:\inetpub\vhosts\httpdocs\compare.php on line 176`.

I don't understand why recursively calling a function is giving me an error.

Can you guys help out with this? Is there a better solution or better SQL query than I am using?

  • 1
    PHP has a built in function for trimming trailing whitespaces - check out php.net/manual/en/function.trim.php – Robbe Aug 12 '16 at 17:44
  • Rob if I enter $name="alex dude" then this is a valid name but $name="alex dude " this is not valid – Ar Ad Ali Soomro Aug 12 '16 at 17:45
  • I don't need to remove all the whitespaces – Ar Ad Ali Soomro Aug 12 '16 at 17:46
  • 1
    trim() only removes the trailing whitespaces, not the ones that are non trailing. – Robbe Aug 12 '16 at 17:48
  • 1
    @Rob trim also removes leading whitespace. – Don't Panic Aug 12 '16 at 18:06
up vote 0 down vote accepted

You can do direcly in sql

"SELECT * FROM items WHERE itemname LIKE concat('%', trim('$name'), '%')"

or rtrim

"SELECT * FROM items WHERE itemname LIKE concat('%', rtrim('$name'), '%')"

There are two reasons you'll get errors. The first reason, and the reason you're seeing the message:

Parse error: syntax error, unexpected 'function'

is that you're missing a semicolon after $func_name = substr_replace($dataname, "", -1).

function is unexpected because you haven't terminated the previous line.

If you fix that, you'll still get an error, because you're using function checkname($dataname); to do the recursive call, when it should be return checkname($dataname); If you use it the way you have it, you'll get a cannot redeclare function error.

If you want it to work recursively, it can be simplified to

function checkname($dataname) {
    if (substr($dataname, -1) == " ") {
        return checkname(substr_replace($dataname, "", -1));
    }
    return $dataname;
}

But as others have said, this does basically the same thing as trim() or rtrim().

  • Actually, you don't have to call the function it self :) – Chay22 Aug 12 '16 at 18:04
  • @Chay22 Please explain what you mean? – Don't Panic Aug 12 '16 at 18:07
  • return substr_replace($dataname, "", -1); is enough rather call the function twice. – Chay22 Aug 12 '16 at 18:09
  • @Chay22 That would only remove one extra space. The recursive call is used to remove multiple spaces. Kind of pointless considering there's a built-in function that does it, but since OP was trying to use recursion, I wanted to show them a way that it would work. – Don't Panic Aug 12 '16 at 18:13
  • Oh I see, I saw only $name="alex dude " as what OP needed to trim out which is a space. – Chay22 Aug 12 '16 at 18:18

You can use trim, it's PHP native function stripping whitespace from the beginning and end of a string.

$trimmed = trim(' my string ');
echo $trimmed; // 'my string'

You can find more informations regarding it in the documentation.

By default, it will remove ordinary space, tab, new line, carriage return, NUL-byte and vertical tabs.

You can also control which characters are removed at the start and end of the string by using a second parameter to the trim function as specified in the documentation.

Try

SELECT * FROM items WHERE itemname LIKE '%". trim($dataname) ."%'"

trim($string) Strip whitespace (or other characters) from the beginning and end of a string

I'm using str_replace function

$name="a l e x" ;
$abcd = str_replace (" ", "", $name);
$res=mysql_query("SELECT *  FROM `name` WHERE `name` LIKE '%$abcd%'") or die(mysql_error());
while($x=mysql_fetch_array($res))
{
    echo $x['name']."<br>";
}

str_replace (" ", "", $name) helps to your problem

or by using sql

"SELECT *  FROM `name` WHERE `name` LIKE '%".str_replace (" ", "", $name)."%'"

and it removes all your white spaces.

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