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What regex would match any ASCII character in java?

I've already tried:

^[\\p{ASCII}]*$

but found that it didn't match lots of things that I wanted (like spaces, parentheses, etc...). I'm hoping to avoid explicitly listing all 127 ASCII characters in a format like:

^[a-zA-Z0-9!@#$%^*(),.<>~`[]{}\\/+=-\\s]*$
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up vote 6 down vote accepted

I have never used \\p{ASCII} but I have used ^[\\u0000-\\u007F]*$

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Should there really be two slashes before the u ? i.e. isn't ^[\u0000-\u007F]*$ correct? – Nic Cottrell Apr 14 '15 at 12:43
    
I tried, single slash works as well. Normally you need double slash because it's an escape command. By the way, I had problems with an String because it has chars from the extended ASCII, but \\p{ASCII} is only the standard. For extended ASCII you can use ^[\\u0000-\\u00FE]*$ (FE instead of 7F) – Krazy Kalle Feb 5 at 9:02

The first try was almost correct

"^\\p{ASCII}*$"
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Although I would use "^\\p{ASCII}+$" so as to not match the empty string, but that might be philosophical... :) – David Jan 19 at 9:05

For JavaScript it'll be /^[\x00-\x7F]*$/.test('blah')

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I think question about getting ASCII characters from a raw string which has both ASCII and special characters...

public String getOnlyASCII(String raw) {
    Pattern asciiPattern = Pattern.compile("\\p{ASCII}*$");
    Matcher matcher = asciiPattern.matcher(raw);
    String asciiString = null;
    if (matcher.find()) {
        asciiString = matcher.group();
    }
    return asciiString;
}

The above program will remove the non ascii string and return the string. Thanks to @Oleg Pavliv for pattern.

For ex:

raw = ��+919986774157

asciiString = +919986774157

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