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I haven't used regular expressions soo much, so I'm having difficulty . I want regex that only validates that the field contains digits, but that does not care about how many.

It should approve 77 and 2377? But do not approve 77.43 or xyz777.

How can I get this using regular expression? Is this expression ^[0-9]+$ ok or not

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3 Answers 3

up vote 3 down vote accepted

It's OK. You can just use ^\d+$ for all it matters anyway.

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iam trying but getting error –  Somi Meer Dec 14 '11 at 9:52
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@SomiMeer Which language/tool/flavor are you using? –  FailedDev Dec 14 '11 at 9:56
    
simple javascript –  Somi Meer Dec 14 '11 at 12:12
    
@SomiMeer It should work then –  FailedDev Dec 14 '11 at 12:17
    
How can i get this behaviour 2011 + 3 digits . example 2011999 or 2012999 –  Somi Meer Dec 14 '11 at 12:31

Yes, this regex is perfectly valid and does what you think it does, although if your regex engine supports this you could use \d, whichs stands for [0-9].

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\d might also match decimal digits in other scripts and does not need to be identical to [0-9]. In .NET for example it matches 0123456789٠١٢٣٤٥٦٧٨٩۰۱۲۳۴۵۶۷۸۹߀߁߂߃߄߅߆߇߈߉०१२३४५६७८९০১২৩৪৫৬৭৮৯੦੧੨੩੪੫੬੭੮੯૦૧૨૩૪૫૬૭૮‌​૯୦୧୨୩୪୫୬୭୮୯௦௧௨௩௪௫௬௭௮௯౦౧౨౩౪౫౬౭౮౯೦೧೨೩೪೫೬೭೮ ೯൦൧൨൩൪൫൬൭൮൯๐๑๒๓๔๕๖๗๘๙໐໑໒໓໔໕໖໗໘໙༠༡༢༣༤༥༦༧༨༩၀၁၂၃၄၅၆၇၈၉႐႑႒႓႔႕႖႗႘႙០១២៣៤៥៦៧៨៩᠐᠑᠒᠓᠔᠕᠖᠗᠘‌​᠙᥆᥇᥈᥉᥊᥋᥌᥍᥎᥏᧐᧑᧒᧓᧔᧕᧖᧗᧘᧙᭐᭑᭒᭓᭔᭕᭖᭗᭘᭙᮰᮱᮲᮳᮴᮵᮶᮷ ᮸᮹᱀᱁᱂᱃᱄᱅᱆᱇᱈᱉᱐᱑᱒᱓᱔᱕᱖᱗᱘᱙꘠꘡꘢꘣꘤꘥꘦꘧꘨꘩꣐꣑꣒꣓꣔꣕꣖꣗꣘꣙꤀꤁꤂꤃꤄꤅꤆꤇꤈꤉꩐꩑꩒꩓꩔꩕꩖꩗꩘꩙0123456789 –  Joey Dec 14 '11 at 9:46

A simpler regex would be to invert your match and check for non-digit numbers: \D.

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wht u mean by invert ur match –  Somi Meer Dec 14 '11 at 10:00
    
Well, if you're doing a check like this: if (preg_match("/^\d$/") { ...}, you could change this to: if (!preg_match('/\D/')) { ... }, which translates to "If no non-digit numbers are found, then..." –  pgl Dec 14 '11 at 10:52

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