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I have the following in C#:

public static bool IsAlphaAndNumeric(string s)
{
    return Regex.IsMatch(s, @"[a-zA-Z]+") 
        && Regex.IsMatch(s, @"\d+");
}

I want to check if parameter s contains at least one alphabetical character and one digit and I wrote the above method to do so.

But is there a way I can combine the two regular expressions ("[a-zA-Z]+" and "\d+") into one ?

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2  
If you just want to verify at least 1 of these exists, don't use the + operator to match an unnecessarily longer string. –  KennyTM Jan 27 '10 at 9:25
2  
I think the original version is more elegant and readable than most answers. –  Kobi Jan 27 '10 at 11:51
3  
Seems to me this method should be called HasAlphaAndNumeric. You're only checking that it contains one of each; the rest of the characters could be anything, or nothing. For example, A1 and !@#1%^&A()_ both pass--is that what you intended? –  Alan Moore Jan 27 '10 at 11:58
    
@Alan Moore: yes, you are correct; your suggested method name is better than mine. –  Andreas Grech Jan 27 '10 at 12:39
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6 Answers

up vote 6 down vote accepted
@"^(?=.*[a-zA-Z])(?=.*\d)"

 ^  # From the begining of the string
 (?=.*[a-zA-Z]) # look forward for any number of chars followed by a letter, don't advance pointer
 (?=.*\d) # look forward for any number of chars followed by a digit)

Uses two positive lookaheads to ensure it finds one letter, and one number before succeding. You add the ^ to only try looking forward once, from the start of the string. Otherwise, the regexp engine would try to match at every point in the string.

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For C# with LINQ:

return s.Any(Char.IsDigit) && s.Any(Char.IsLetter);
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Please, somebody mark this as the answer! –  Benjol Jan 27 '10 at 13:07
    
This will require two full iteration of the string chars in worse case. –  affan Jan 28 '10 at 4:31
    
@affan - in the worst case you have to check every character twice; this is true for every possible solution. Whether It happens in one loop or two makes no difference, aside from creating another char iterator - for an in-memory string, this is a tiny overhead at most. –  Kobi Jan 28 '10 at 5:18
    
@affan - please read the instructions before you downvote, and check what the original function does. It says "at least one alphabetical character and one digit". You are the one with the wrong code, as @gnarf explained to you. –  Kobi Jan 28 '10 at 6:10
1  
If the OP isn't committed to using a regex, this is probably the best suggestion. –  Alan Moore Jan 28 '10 at 10:13
show 3 more comments

You could use [a-zA-Z].*[0-9]|[0-9].*[a-zA-Z], but I'd only recommend it if the system you were using only accepted a single regex. I can't imagine this would be more efficient than two simple patterns without alternation.

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Its not exactly what you want but let say i have more time. Following should work faster than regex.

    static bool IsAlphaAndNumeric(string str) {
        bool hasDigits = false;
        bool  hasLetters=false;

        foreach (char c in str) {
            bool isDigit = char.IsDigit(c);
            bool isLetter = char.IsLetter(c);
            if (!(isDigit | isLetter))
                return false;
            hasDigits |= isDigit;
            hasLetters |= isLetter;
        }
        return hasDigits && hasLetters;
    }

Why its fast let check it out. Following is the test string generator. It generate 1/3 of set completly correct string and 2/3 ad incorrect. In 2/3 1/2 is all alphs and other half is all digits.

    static IEnumerable<string> GenerateTest(int minChars, int maxChars, int setSize) {
        string letters = "abcdefghijklmnopqrstuvwxyzABCDEFGHIJKLMNOPQRSTUVWXYZ";
        string numbers = "0123456789";            
        Random rnd = new Random();
        int maxStrLength = maxChars-minChars;
        float probablityOfLetter = 0.0f;
        float probablityInc = 1.0f / setSize;
        for (int i = 0; i < setSize; i++) {
            probablityOfLetter = probablityOfLetter + probablityInc;
            int length = minChars + rnd.Next() % maxStrLength;
            char[] str = new char[length];
            for (int w = 0; w < length; w++) {
                if (probablityOfLetter < rnd.NextDouble())
                    str[w] = letters[rnd.Next() % letters.Length];
                else 
                    str[w] = numbers[rnd.Next() % numbers.Length];                    
            }
            yield return new string(str);
        }
    }

Following is darin two solution. One has compiled and other is noncompiled version.

class DarinDimitrovSolution
{
    const string regExpression = @"^(?=.*[a-z])(?=.*[A-Z])(?=.*\d).+$";
    private static readonly Regex _regex = new Regex(
        regExpression, RegexOptions.Compiled);

    public static bool IsAlphaAndNumeric_1(string s) {
        return _regex.IsMatch(s);
    }
    public static bool IsAlphaAndNumeric_0(string s) {
        return Regex.IsMatch(s, regExpression);
    }

Following is the main of the test loop

    static void Main(string[] args) {

        int minChars = 3;
        int maxChars = 13;
        int testSetSize = 5000;
        DateTime start = DateTime.Now;
        foreach (string testStr in
            GenerateTest(minChars, maxChars, testSetSize)) {
            IsAlphaNumeric(testStr);
        }
        Console.WriteLine("My solution : {0}", (DateTime.Now - start).ToString());

        start = DateTime.Now;
        foreach (string testStr in
            GenerateTest(minChars, maxChars, testSetSize)) {
            DarinDimitrovSolution.IsAlphaAndNumeric_0(testStr);
        }
        Console.WriteLine("DarinDimitrov  1 : {0}", (DateTime.Now - start).ToString());

        start = DateTime.Now;
        foreach (string testStr in
            GenerateTest(minChars, maxChars, testSetSize)) {
            DarinDimitrovSolution.IsAlphaAndNumeric_1(testStr);
        }
        Console.WriteLine("DarinDimitrov(compiled) 2 : {0}", (DateTime.Now - start).ToString());

        Console.ReadKey();
    }

Following is results

My solution : 00:00:00.0170017    (Gold)
DarinDimitrov  1 : 00:00:00.0320032  (Silver medal) 
DarinDimitrov(compiled) 2 : 00:00:00.0440044   (Gold)

So the first solution was the best. Some more result in release mode and following spec

   int minChars = 20;
   int maxChars = 50;
   int testSetSize = 100000;

My solution : 00:00:00.4060406
DarinDimitrov  1 : 00:00:00.7400740
DarinDimitrov(compiled) 2 : 00:00:00.3410341 (now that very fast)

I checked again with RegexOptions.IgnoreCase flag. rest of param same as above

My solution : 00:00:00.4290429 (almost same as before)
DarinDimitrov  1 : 00:00:00.9700970 (it have slowed down )
DarinDimitrov(compiled) 2 : 00:00:00.8440844 ( this as well still fast but look at .3 in last result)

After gnarf mention that there was a problem with my algo it was checking if string only consist of letter and digits so i change it and now it check that string show have atleast one char and one digit.

    static bool IsAlphaNumeric(string str) {
        bool hasDigits = false;
        bool hasLetters = false;

        foreach (char c in str) {
            hasDigits |= char.IsDigit(c);
            hasLetters |= char.IsLetter(c);
            if (hasDigits && hasLetters)
                return true;
        }
        return false;
    }

Results

My solution : 00:00:00.3900390 (Goody Gold Medal)
DarinDimitrov  1 : 00:00:00.9740974 (Bronze Medal)
DarinDimitrov(compiled) 2 : 00:00:00.8230823 (Silver)

Mine is fast by a big factor.

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Any justification why this would be faster than regex? –  Amarghosh Jan 27 '10 at 10:26
    
And if it is faster, the difference will be trivial. You'd have to be testing millions of strings in a tight loop to make this worth the effort. –  Alan Moore Jan 27 '10 at 11:01
2  
Also - your version checks that all the characters are digits or numbers... The OP is only testing that it has an alpha, and a numeric character... Maybe try adjusting your loop to return true once it finds one of each and it might catch up to the regexp compiled versions (which don't check the whole string, they scan through for a letter, then scan through for a number. The worst test case for this is a string which contains one letter at the very end, and no numbers, it will take the most amount of time in the regexp engine –  gnarf Jan 27 '10 at 19:00
2  
Whats the time performance in regards to maintaining that monstrosity? –  Andrew Dyster Jan 28 '10 at 10:33
3  
@affan - Why keep the inaccurate version(s) around? None of the functions mentioned in the top half of your answer do what the OP wanted, I'd just rewrite/test it using methods that return the correct answers. –  gnarf Jan 29 '10 at 2:35
show 5 more comments
private static readonly Regex _regex = new Regex(
    @"^(?=.*[a-z])(?=.*[A-Z])(?=.*\d).+$", RegexOptions.Compiled);

public static bool IsAlphaAndNumeric(string s)
{
    return _regex.IsMatch(s);
}

If you want to ignore case you could use RegexOptions.Compiled | RegexOptions.IgnoreCase.

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+1 But OP wants case insensitive it seems. –  Amarghosh Jan 27 '10 at 9:24
    
For OP, lookup positive lookahead on this page: msdn.microsoft.com/en-us/library/1400241x(VS.85).aspx –  Aryabhatta Jan 27 '10 at 9:31
1  
This regex only matches strings that contain a lowercase AND an uppercase letter... –  gha.st Jan 27 '10 at 11:06
    
Also, it will require either RegexOptions.Singleline or not match strings that contain a newline before one of the three required characters (uppercase letter, lowercase letter and number) –  gha.st Jan 27 '10 at 11:08
3  
If you pass RegexOptions.IgnoreCase there's no need to have the (?=.*[A-Z]) lookahead. –  KennyTM Jan 27 '10 at 11:11
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The following is not only faster than the other lookahead constructs, it is also (in my eyes) closer to the requirements:

[a-zA-Z\d]((?<=\d)[^a-zA-Z]*[a-zA-Z]|[^\d]*\d)

On my (admittedly crude test) it runs in about half the time required by the other regex solutions, and has the advantage that it will not care about newlines in the input string. (And if for some reason it should, it is obvious how to include it).

Here is how (and why) it works:

Step 1: It matches a single character (let us call it c) that is a number or a letter.
Step 2: It does a lookbehind to check if c is a number. If so:
Step 2.1: It allows an unlimited number of characters that are not a letter, followed by a single letter. If this matches, we have a number (c) followed by a letter.
Step 2.2: If c is not a number, it must be a letter (otherwise it would not have been matched). In this case we allow an unlimited number of non-digits, followed by a single digit. This would mean we have a letter (c) followed by a number.

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Logically this is similar to Anonymous' answer, but more complex. Are you sure this is quick? in case of a fail, wouldn't it test for each and every matching letter? (for example, 600 'X's) –  Kobi Jan 27 '10 at 11:40
    
As with @affan's answer, it's extremely unlikely that this would be worth the effort anyway. People worry way too much about regex performance. –  Alan Moore Jan 27 '10 at 11:48
    
@Anonymous answer will match any character before the first letter twice if the first branch fails, since the second branch does a backtrack to the very beginning. If you can be reasonably sure that the input string has a letter close to the beginning, it will result in the same performance (and after replacing the dots even with the same meaning). -- also thanks for putting in the missing caret - no idea how i killed that during the posting ;) –  gha.st Jan 27 '10 at 13:24
    
Oh, and for worrying about regex performance: I am here for fun, not for bucks ;) –  gha.st Jan 27 '10 at 13:26
    
You can avoid the backtracking problem entirely by prepending ^(?>[^A-Za-z0-9]*) to the regex. With that done, I think the lookbehind wouldn't really be pulling its weight any more. For maximum performance, I'd go with ^(?>[^A-Za-z0-9]*)(?:[a-zA-Z](?>[^0-9]*)[0-9]|[0-9](?>[^A-Za-z]*)[a-zA-Z]). If I were worried about performance, that is... ;) –  Alan Moore Jan 27 '10 at 13:55
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