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echo ltrim('12Hello World', '\x30..\x39');
echo "<br />";
echo ltrim('12Hello World', '0123456789');

Gives the output:

ello World
Hello World

Why? I understand that it is an array of characters and every character is stripped but if that's the case why is the H removed in the first case?

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Are you sure you are showing us all your code? Please show any code at the beginning. –  nl-x Jun 16 '14 at 7:52
@nl-x it's reproduceable. On 5.5 At least. –  Alma Do Jun 16 '14 at 7:53
It strips \, x, 3, range 0 to \, 3, 9. \ is between lowercase letters and uppercase letters in ASCII table. –  Marek Jun 16 '14 at 7:57

3 Answers 3

up vote 7 down vote accepted

'\x30..\x39' is the following character mask:

  • \
  • x
  • 3
  • 0..\, i.e. anything from 0 through \, which includes H
  • 9

You need to use double quotes, otherwise the \xXX escape sequences aren't interpreted as bytes:


That's the character mask for anything from byte x30 through x39, which is 0 - 9 in ASCII and compatible encodings.

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Didn't got that he meant the ..\ literally.. –  hek2mgl Jun 16 '14 at 8:03

Escape sequences aren't interpreted inside single quotes. So your second argument is interpreted literally. It says to trim the following characters:

  • \
  • x
  • 3
  • 0 through \
  • x
  • 3
  • 9

If you take a look at an ASCII chart, you'll see that the range 0 through \ includes all the uppercase letters.

Change to a double-quoted string to have the hex escape sequence interpreted:

echo ltrim("12Hello World", "\x30..\x39")


Hello World
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You have to use double quote when you mean to use hexadecimal ascii character.

// range 0 to 9
echo ltrim('12Hello World', "\x30..\x39"); // output will be Hello World

If you use single quote, then the character_mask '\x30..\x39' will be explained as

the characters '\', 'x', '3', range from char '0' to '\', and 'x', '3', '9'.

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