684

If I have these strings:

  1. "abc" = false

  2. "123" = true

  3. "ab2" = false

Is there a command, like IsNumeric() or something else, that can identify if a string is a valid number?

  • 78
    from their examples you can see they meant if the whole string represents a number. – Lucas May 21 '09 at 18:32
  • 44
    return str.All(Char.IsDigit); – Mohsen Oct 23 '13 at 5:45
  • 11
    str.All(Char.IsDigit) will declare "3.14" false as well as "-2" and "3E14". Not to speak of: "0x10" – Harald Coppoolse Oct 20 '14 at 11:52
  • 4
    It depends on what type of number you are trying to check. For integer numbers without separator (i.e. strings of decimal digits) this check works, and is the same of the accepted answer and the one implied in OP. – Alex Mazzariol Aug 22 '15 at 10:01
  • 1
    @Lucas thank you for your comment, you have NO idea how long I've been trying to parse a string double as an int and wondering why it was failing... – Novastorm Mar 22 '18 at 14:52

25 Answers 25

1075
int n;
bool isNumeric = int.TryParse("123", out n);

Update As of C# 7:

var isNumeric = int.TryParse("123", out int n);

The var s can be replaced by their respective types!

  • 119
    Though, I would use double.TryParse, since we want to know if it represents a number at all. – John Gietzen May 21 '09 at 18:31
  • 5
    Function will return true if I pass string as "-123" or "+123". I Understand that integer has positive and negative values. But If this string is coming from user entered textbox then it should return false. – user2323308 Aug 28 '13 at 13:58
  • 9
    This is a good solution, until a user enters a value beyond -2,147,483,648 to 2,147,483,647, and then this silently fails – BlackTigerX Oct 23 '14 at 22:05
  • try parsing 0,60 (that is a comma!) it is an invalid number but will be parsed as 60! – Paul Zahra Dec 2 '16 at 12:12
  • 1
    I prefer to have extension method for this check: public static bool IsNumeric(this string text) { double _out; return double.TryParse(text, out _out); } – Hamid Naeemi Jan 21 '18 at 19:05
350

This will return true if input is all numbers. Don't know if it's any better than TryParse, but it will work.

Regex.IsMatch(input, @"^\d+$")

If you just want to know if it has one or more numbers mixed in with characters, leave off the ^ + and $.

Regex.IsMatch(input, @"\d")

Edit: Actually I think it is better than TryParse because a very long string could potentially overflow TryParse.

  • 2
    Building the regex once and for all would be much more efficient, though. – Clément Jan 5 '11 at 17:30
  • 2
    @CFP +1...RegEx are always better than usual functions, when applicable! – MAXE Jun 27 '12 at 15:32
  • 19
    @MAXE: I would not agree. Regular expression checks are quite slow, so there are often better solutions if performance is under consideration. – Michal B. Dec 18 '12 at 12:49
  • 6
    edit: you can add RegexOptions.Compiled as a parameter if you're running thousands of these for a possible speed increase Regex.IsMatch(x.BinNumber, @"^\d+$", RegexOptions.Compiled) – Simon_Weaver Nov 22 '13 at 22:39
  • 6
    will also fail on negatives and things with . – Noctis May 15 '14 at 23:13
184

You can also use:

stringTest.All(char.IsDigit);

It will return true for all Numeric Digits (not float) and false if input string is any sort of alphanumeric.

Please note: stringTest should not be an empty string as this would pass the test of being numeric.

  • 16
    That's very cool. One thing to be aware of though: an empty string will pass that test as being numeric. – dan-gph Jun 5 '15 at 6:04
  • 2
    @dan-gph : I am glad, you like it. Yes, you are correct. I have updated note above. Thanks! – Kunal Goel Jun 6 '15 at 7:15
  • 1
    this also does not work for decimal cases. The right test will be stringTest.All(l => char.IsDigit(l) || '.' == l || '-' == l); – Salman Hasrat Khan Feb 24 '16 at 14:28
  • Thanks for your input Salman, To specifically check decimal out of a string, you can go for - if (Decimal.TryParse(stringTest2, out value)) { /* Yes, Decimal / } else { / No, Not a Decimal*/ } – Kunal Goel Feb 26 '16 at 5:38
  • 4
    Salman, it's not that simple- this would pass ..--..-- as a valid number. Clearly not. – Flynn1179 Apr 11 '16 at 12:26
128

I've used this function several times:

public static bool IsNumeric(object Expression)
{
    double retNum;

    bool isNum = Double.TryParse(Convert.ToString(Expression), System.Globalization.NumberStyles.Any, System.Globalization.NumberFormatInfo.InvariantInfo, out retNum);
    return isNum;
}

But you can also use;

bool b1 = Microsoft.VisualBasic.Information.IsNumeric("1"); //true
bool b2 = Microsoft.VisualBasic.Information.IsNumeric("1aa"); // false

From Benchmarking IsNumeric Options

alt text
(source: aspalliance.com)

alt text
(source: aspalliance.com)

  • 78
    referencing Microsoft.VisualBasic.dll from C# app? eww :P – Lucas May 21 '09 at 18:44
  • I have no problem to use "IsNumeric" it works good. Also you can see that there's little efficience difference between TryParse and IsNumeric. Remember that TryParse is new in 2.0 and before then it was better to use IsNumeric that any other strategy. – Nelson Miranda May 21 '09 at 19:02
  • 10
    Well, VB.NET's IsNumeric() internally uses double.TryParse(), after a number of gyrations that are needed (among other things) for VB6 compatibility. If you don't need compatibility, double.TryParse() is just as simple to use, and it saves you from wasting memory by loading Microsoft.VisualBasic.dll in your process. – Euro Micelli May 21 '09 at 20:06
  • 4
    Quick note: using a regular expression will be much faster if you manage to have the underlying finite-state machine built once and for all. Generally, building the state machine takes O(2^n) where n is the length of the regex, whereas reading is O(k) where k is the length of the string being searched. So rebuilding the regex every time introduces a bias. – Clément Jan 5 '11 at 17:29
  • 2
    @Lucas Actually, there's some really nice stuff in there, like a full csv parser. No reason not to use it if it exists in there. – Nyerguds Apr 4 '16 at 12:04
32

This is probably the best option in C#.

If you want to know if the string contains a whole number (integer):

string someString;
// ...
int myInt;
bool isNumerical = int.TryParse(someString, out myInt);

The TryParse method will try to convert the string to a number (integer) and if it succeeds it will return true and place the corresponding number in myInt. If it can't, it returns false.

Solutions using the int.Parse(someString) alternative shown in other responses works, but it is much slower because throwing exceptions is very expensive. TryParse(...) was added to the C# language in version 2, and until then you didn't have a choice. Now you do: you should therefore avoid the Parse() alternative.

If you want to accept decimal numbers, the decimal class also has a .TryParse(...) method. Replace int with decimal in the above discussion, and the same principles apply.

  • Why is TryParse better than comparing all the characters with integer characters? – Arjang Nov 7 at 6:09
25

You can always use the built in TryParse methods for many datatypes to see if the string in question will pass.

Example.

decimal myDec;
var Result = decimal.TryParse("123", out myDec);

Result would then = True

decimal myDec;
var Result = decimal.TryParse("abc", out myDec);

Result would then = False

  • I think I may have done that more in VB style syntax than C#, but the same rules apply. – TheTXI May 21 '09 at 18:10
19

In case you don't want to use int.Parse or double.Parse, you can roll your own with something like this:

public static class Extensions
{
    public static bool IsNumeric(this string s)
    {
        foreach (char c in s)
        {
            if (!char.IsDigit(c) && c != '.')
            {
                return false;
            }
        }

        return true;
    }
}
  • 3
    you might as well return s.All(c => c.IsDigit(c) || c == '.'), but... – Lucas May 21 '09 at 18:42
  • 6
    What if they meant integers only? What about locales where '.' is the group separator, not the comma (e.g. pt-Br)? what about negative numbers? group separators (commas in English)? currency symbols? TryParse() can manage all of these as required using NumberStyles and IFormatProvider. – Lucas May 21 '09 at 18:43
  • 11
    1.3.3.8.5 is not really a number, though, while 1.23E5 is. – Clément Jan 5 '11 at 17:31
  • 4
    the logic is flawed. -1 – Russel Yang Apr 29 '13 at 21:33
  • 1
    @Lucas I agree that TryParse handles more, but sometimes that's not needed. I just need to validate my credit card number boxes (which can only have digits). This solution is almost definitely faster than try parse. – Millie Smith Sep 12 '14 at 16:41
14

I know this is an old thread, but none of the answers really did it for me - either inefficient, or not encapsulated for easy reuse. I also wanted to ensure it returned false if the string was empty or null. TryParse returns true in this case (an empty string does not cause an error when parsing as a number). So, here's my string extension method:

public static class Extensions
{
    /// <summary>
    /// Returns true if string is numeric and not empty or null or whitespace.
    /// Determines if string is numeric by parsing as Double
    /// </summary>
    /// <param name="str"></param>
    /// <param name="style">Optional style - defaults to NumberStyles.Number (leading and trailing whitespace, leading and trailing sign, decimal point and thousands separator) </param>
    /// <param name="culture">Optional CultureInfo - defaults to InvariantCulture</param>
    /// <returns></returns>
    public static bool IsNumeric(this string str, NumberStyles style = NumberStyles.Number,
        CultureInfo culture = null)
    {
        double num;
        if (culture == null) culture = CultureInfo.InvariantCulture;
        return Double.TryParse(str, style, culture, out num) && !String.IsNullOrWhiteSpace(str);
    }
}

Simple to use:

var mystring = "1234.56789";
var test = mystring.IsNumeric();

Or, if you want to test other types of number, you can specify the 'style'. So, to convert a number with an Exponent, you could use:

var mystring = "5.2453232E6";
var test = mystring.IsNumeric(style: NumberStyles.AllowExponent);

Or to test a potential Hex string, you could use:

var mystring = "0xF67AB2";
var test = mystring.IsNumeric(style: NumberStyles.HexNumber)

The optional 'culture' parameter can be used in much the same way.

It is limited by not being able to convert strings that are too big to be contained in a double, but that is a limited requirement and I think if you are working with numbers larger than this, then you'll probably need additional specialised number handling functions anyway.

  • 2
    Works great, except that Double.TryParse doesn't support NumberStyles.HexNumber. See MSDN Double.TryParse. Any reason why you TryParse before checking for IsNullOrWhiteSpace? TryParse returns false if IsNullOrWhiteSpace doesn't it? – Harald Coppoolse Nov 16 '15 at 8:02
12

If you want to catch a broader spectrum of numbers, à la PHP's is_numeric, you can use the following:

// From PHP documentation for is_numeric
// (http://php.net/manual/en/function.is-numeric.php)

// Finds whether the given variable is numeric.

// Numeric strings consist of optional sign, any number of digits, optional decimal part and optional
// exponential part. Thus +0123.45e6 is a valid numeric value.

// Hexadecimal (e.g. 0xf4c3b00c), Binary (e.g. 0b10100111001), Octal (e.g. 0777) notation is allowed too but
// only without sign, decimal and exponential part.
static readonly Regex _isNumericRegex =
    new Regex(  "^(" +
                /*Hex*/ @"0x[0-9a-f]+"  + "|" +
                /*Bin*/ @"0b[01]+"      + "|" + 
                /*Oct*/ @"0[0-7]*"      + "|" +
                /*Dec*/ @"((?!0)|[-+]|(?=0+\.))(\d*\.)?\d+(e\d+)?" + 
                ")$" );
static bool IsNumeric( string value )
{
    return _isNumericRegex.IsMatch( value );
}

Unit Test:

static void IsNumericTest()
{
    string[] l_unitTests = new string[] { 
        "123",      /* TRUE */
        "abc",      /* FALSE */
        "12.3",     /* TRUE */
        "+12.3",    /* TRUE */
        "-12.3",    /* TRUE */
        "1.23e2",   /* TRUE */
        "-1e23",    /* TRUE */
        "1.2ef",    /* FALSE */
        "0x0",      /* TRUE */
        "0xfff",    /* TRUE */
        "0xf1f",    /* TRUE */
        "0xf1g",    /* FALSE */
        "0123",     /* TRUE */
        "0999",     /* FALSE (not octal) */
        "+0999",    /* TRUE (forced decimal) */
        "0b0101",   /* TRUE */
        "0b0102"    /* FALSE */
    };

    foreach ( string l_unitTest in l_unitTests )
        Console.WriteLine( l_unitTest + " => " + IsNumeric( l_unitTest ).ToString() );

    Console.ReadKey( true );
}

Keep in mind that just because a value is numeric doesn't mean it can be converted to a numeric type. For example, "999999999999999999999999999999.9999999999" is a perfeclty valid numeric value, but it won't fit into a .NET numeric type (not one defined in the standard library, that is).

  • Not trying to be a smart alec here, but this seems to fail for string "0". My Regex is non-existent. Is there a simple tweak for that? I get "0" and possibly "0.0" and even "-0.0" as possible valid numerics. – Steve Hibbert Mar 25 '14 at 10:41
  • @SteveHibbert - Everyone knows that "0" isn't a number! Seriously though... adjusted the regex to match 0. – JDB Mar 25 '14 at 13:30
  • Hmmm, is it me, or is "0" still not recognised as numeric? – Steve Hibbert Mar 25 '14 at 15:35
  • 1
    Being lazy, and regex-ignorant, I cut'n'pasted the code above, which looks like it includes the "0.0" type change. I ran a test to check that a string "0" running .IsNumeric(), and that returns false. I'm thinking that the Octal test will return true for anything that has two numeric chars where the first is zero (and the second is zero to seven), but will return false for just a big fat lonely zero on it's own. If you test "0", with the code above, do you get false? Apologies, if I knew more regex I'd be able to give better feedback. Must read up. – Steve Hibbert Mar 26 '14 at 9:21
  • 1
    !Doh! Just re-read your comment above, I had missed the additional asterisk, I only updated the decimal line. With that in place, you're right, "0" IsNumeric. Apologies for the faffing about, and thanks very much for the update, hope it helps others out too. Much obliged. – Steve Hibbert Mar 26 '14 at 13:58
9

You can use TryParse to determine if the string can be parsed into an integer.

int i;
bool bNum = int.TryParse(str, out i);

The boolean will tell you if it worked or not.

9

If you want to check if a string is a number (I'm assuming it's a string since if it's a number, duh, you know it's one).

  • Without regex and
  • using Microsoft's code as much as possible

you could also do:

public static bool IsNumber(this string aNumber)
{
     BigInteger temp_big_int;
     var is_number = BigInteger.TryParse(aNumber, out temp_big_int);
     return is_number;
}

This will take care of the usual nasties:

  • Minus (-) or Plus (+) in the beginning
  • contains decimal character BigIntegers won't parse numbers with decimal points. (So: BigInteger.Parse("3.3") will throw an exception, and TryParse for the same will return false)
  • no funny non-digits
  • covers cases where the number is bigger than the usual use of Double.TryParse

You'll have to add a reference to System.Numerics and have using System.Numerics; on top of your class (well, the second is a bonus I guess :)

8

I guess this answer will just be lost in between all the other ones, but anyway, here goes.

I ended up on this question via Google because I wanted to check if a string was numeric so that I could just use double.Parse("123") instead of the TryParse() method.

Why? Because it's annoying to have to declare an out variable and check the result of TryParse() before you know if the parse failed or not. I want to use the ternary operator to check if the string is numerical and then just parse it in the first ternary expression or provide a default value in the second ternary expression.

Like this:

var doubleValue = IsNumeric(numberAsString) ? double.Parse(numberAsString) : 0;

It's just a lot cleaner than:

var doubleValue = 0;
if (double.TryParse(numberAsString, out doubleValue)) {
    //whatever you want to do with doubleValue
}

I made a couple extension methods for these cases:


Extension method one

public static bool IsParseableAs<TInput>(this string value) {
    var type = typeof(TInput);

    var tryParseMethod = type.GetMethod("TryParse", BindingFlags.Static | BindingFlags.Public, Type.DefaultBinder,
        new[] { typeof(string), type.MakeByRefType() }, null);
    if (tryParseMethod == null) return false;

    var arguments = new[] { value, Activator.CreateInstance(type) };
    return (bool) tryParseMethod.Invoke(null, arguments);
}

Example:

"123".IsParseableAs<double>() ? double.Parse(sNumber) : 0;

Because IsParseableAs() tries to parse the string as the appropriate type instead of just checking if the string is "numeric" it should be pretty safe. And you can even use it for non numeric types that have a TryParse() method, like DateTime.

The method uses reflection and you end up calling the TryParse() method twice which, of course, isn't as efficient, but not everything has to be fully optimized, sometimes convenience is just more important.

This method can also be used to easily parse a list of numeric strings into a list of double or some other type with a default value without having to catch any exceptions:

var sNumbers = new[] {"10", "20", "30"};
var dValues = sNumbers.Select(s => s.IsParseableAs<double>() ? double.Parse(s) : 0);

Extension method two

public static TOutput ParseAs<TOutput>(this string value, TOutput defaultValue) {
    var type = typeof(TOutput);

    var tryParseMethod = type.GetMethod("TryParse", BindingFlags.Static | BindingFlags.Public, Type.DefaultBinder,
        new[] { typeof(string), type.MakeByRefType() }, null);
    if (tryParseMethod == null) return defaultValue;

    var arguments = new object[] { value, null };
    return ((bool) tryParseMethod.Invoke(null, arguments)) ? (TOutput) arguments[1] : defaultValue;
}

This extension method lets you parse a string as any type that has a TryParse() method and it also lets you specify a default value to return if the conversion fails.

This is better than using the ternary operator with the extension method above as it only does the conversion once. It still uses reflection though...

Examples:

"123".ParseAs<int>(10);
"abc".ParseAs<int>(25);
"123,78".ParseAs<double>(10);
"abc".ParseAs<double>(107.4);
"2014-10-28".ParseAs<DateTime>(DateTime.MinValue);
"monday".ParseAs<DateTime>(DateTime.MinValue);

Outputs:

123
25
123,78
107,4
28.10.2014 00:00:00
01.01.0001 00:00:00
  • 4
    I believe you may have invented one of the most inefficient approaches I've seen yet. Not only are you parsing the string twice (in the case that it's parseable), you are also calling reflection functions multiple times to do it. And, in the end, you don't even save any keystrokes using the extension method. – JDB Mar 25 '14 at 16:53
  • Thank you for just repeating what I wrote myself in the second to last paragraph. Also if you take my last example into account you definitely save keystrokes using this extension method. This answer doesn't claim to be some kind of a magic solution to any problem, it's merely a code example. Use it, or don't use it. I think it's convenient when used right. And it includes examples of both extension methods and reflection, maybe someone can learn from it. – Hein Andre Grønnestad Mar 25 '14 at 21:40
  • 5
    Have you tried var x = double.TryParse("2.2", new double()) ? double.Parse("2.2") : 0.0;? – JDB Mar 26 '14 at 14:42
  • 2
    Yes, and it doesn't work. Argument 2 must be passed with the 'out' keyword and if you specify out as well as new you get A ref or out argument must be an assignable variable. – Hein Andre Grønnestad Oct 22 '15 at 7:50
  • 1
    Performance TryParse is better than all exposed here. Results: TryParse 8 Regex 20 PHP IsNumeric 30 Reflections TryParse 31 Test code dotnetfiddle.net/x8GjAF – prampe Aug 25 '17 at 7:42
6

If you want to know if a string is a number, you could always try parsing it:

var numberString = "123";
int number;

int.TryParse(numberString , out number);

Note that TryParse returns a bool, which you can use to check if your parsing succeeded.

6

Double.TryParse

bool Double.TryParse(string s, out double result)
3

UPDATE of Kunal Noel Answer

stringTest.All(char.IsDigit);
// This returns true if all characters of the string are digits.

But, for this case we have that empty strings will pass that test, so, you can:

if (!string.IsNullOrEmpty(stringTest) && stringTest.All(char.IsDigit)){
   // Do your logic here
}
2

With c# 7 it you can inline the out variable:

if(int.TryParse(str, out int v))
{
}
2

Use these extension methods to clearly distinguish between a check if the string is numerical and if the string only contains 0-9 digits

public static class ExtensionMethods
{
    /// <summary>
    /// Returns true if string could represent a valid number, including decimals and local culture symbols
    /// </summary>
    public static bool IsNumeric(this string s)
    {
        decimal d;
        return decimal.TryParse(s, System.Globalization.NumberStyles.Any, System.Globalization.CultureInfo.CurrentCulture, out d);
    }

    /// <summary>
    /// Returns true only if string is wholy comprised of numerical digits
    /// </summary>
    public static bool IsNumbersOnly(this string s)
    {
        if (s == null || s == string.Empty)
            return false;

        foreach (char c in s)
        {
            if (c < '0' || c > '9') // Avoid using .IsDigit or .IsNumeric as they will return true for other characters
                return false;
        }

        return true;
    }
}
2
public static bool IsNumeric(this string input)
{
    int n;
    if (!string.IsNullOrEmpty(input)) //.Replace('.',null).Replace(',',null)
    {
        foreach (var i in input)
        {
            if (!int.TryParse(i.ToString(), out n))
            {
                return false;
            }

        }
        return true;
    }
    return false;
}
2

The best flexible solution with .net built-in function called- char.IsDigit. It works with unlimited long numbers. It will only return true if each character is a numeric number. I used it lot of times with no issues and much easily cleaner solution I ever found. I made a example method.Its ready to use. In addition I added validation for null and empty input. So the method is now totally bulletproof

public static bool IsNumeric(string strNumber)
    {
        if (string.IsNullOrEmpty(strNumber))
        {
            return false;
        }
        else
        {
            int numberOfChar = strNumber.Count();
            if (numberOfChar > 0)
            {
                bool r = strNumber.All(char.IsDigit);
                return r;
            }
            else
            {
                return false;
            }
        }
    }
1

Hope this helps

string myString = "abc";
double num;
bool isNumber = double.TryParse(myString , out num);

if isNumber 
{
//string is number
}
else
{
//string is not a number
}
0

Pull in a reference to Visual Basic in your project and use its Information.IsNumeric method such as shown below and be able to capture floats as well as integers unlike the answer above which only catches ints.

    // Using Microsoft.VisualBasic;

    var txt = "ABCDEFG";

    if (Information.IsNumeric(txt))
        Console.WriteLine ("Numeric");

IsNumeric("12.3"); // true
IsNumeric("1"); // true
IsNumeric("abc"); // false
  • A potential problem with this approach is that IsNumeric does a character analysis of the string. So a number like 9999999999999999999999999999999999999999999999999999999999.99999999999 will register as True, even though there is no way to represent this number using a standard numeric type. – JDB Mar 25 '14 at 16:35
0

Try the reges below

new Regex(@"^\d{4}").IsMatch("6")    // false
new Regex(@"^\d{4}").IsMatch("68ab") // false
new Regex(@"^\d{4}").IsMatch("1111abcdefg") ```
0

All the Answers are Useful. But while searching for a solution where the Numeric value is 12 digits or more (in my case), then while debugging, I found the following solution useful :

double tempInt = 0;
bool result = double.TryParse("Your_12_Digit_Or_more_StringValue", out tempInt);

Th result variable will give you true or false.

-1

Here is the C# method. Int.TryParse Method (String, Int32)

  • you could at least mention the method name in your answer... – Lucas May 21 '09 at 18:55
  • method name specified! – Syed Tayyab Ali May 21 '09 at 19:01
-7
//To my knowledge I did this in a simple way
static void Main(string[] args)
{
    string a, b;
    int f1, f2, x, y;
    Console.WriteLine("Enter two inputs");
    a = Convert.ToString(Console.ReadLine());
    b = Console.ReadLine();
    f1 = find(a);
    f2 = find(b);

    if (f1 == 0 && f2 == 0)
    {
        x = Convert.ToInt32(a);
        y = Convert.ToInt32(b);
        Console.WriteLine("Two inputs r number \n so that addition of these text box is= " + (x + y).ToString());
    }
    else
        Console.WriteLine("One or two inputs r string \n so that concatenation of these text box is = " + (a + b));
    Console.ReadKey();
}

static int find(string s)
{
    string s1 = "";
    int f;
    for (int i = 0; i < s.Length; i++)
       for (int j = 0; j <= 9; j++)
       {
           string c = j.ToString();
           if (c[0] == s[i])
           {
               s1 += c[0];
           }
       }

    if (s == s1)
        f = 0;
    else
        f = 1;

    return f;
}
  • 1
    Four downvotes, but nobody has said why? I presume it's because TryParse/Parse would be a better option, but not everybody coming here will know that. – njplumridge May 26 '17 at 13:07
  • 2
    You made it so complicated that even C programmer would say "gosh, there have to be an easier way to write that" – Ch3shire Oct 20 '17 at 22:31
  • 1. There is no reason to read TWO numbers from console and adding them. Where the string comes from is irrelevant anyways, so there is no reason to read anything from the console at all. – Algoman Jul 13 '18 at 9:57
  • 2. The variable for f is unnecessary, you could return 0 or 1 directly - if you want a single return, you could use the ternary operator for that. int is also the wrong return type for find, it should be bool and you could return s==s1 – Algoman Jul 13 '18 at 9:59
  • 3. you copy the digits of s to s1 and then compare s to s1. This is much slower than it needs to be. Also why do you continue the inner loop even if c[0]==s[i] has happened? Do you expect s[i] to be equal to other digits, too? – Algoman Jul 13 '18 at 10:01

protected by Matt Fenwick Oct 31 '13 at 18:51

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