40

I would just like to ask if this is a correct way of checking if number is prime or not? because I read that 0 and 1 are NOT a prime number.

int num1;

Console.WriteLine("Accept number:");
num1 = Convert.ToInt32(Console.ReadLine());
if (num1 == 0 || num1 == 1)
{
    Console.WriteLine(num1 + " is not prime number");
    Console.ReadLine();
}
else
{
    for (int a = 2; a <= num1 / 2; a++)
    {
        if (num1 % a == 0)
        {
            Console.WriteLine(num1 + " is not prime number");
            return;
        }

    }
    Console.WriteLine(num1 + " is a prime number");
    Console.ReadLine();
}
  • 1
    Yes, a prime number is defined to be greater than one. – Matthew Watson Apr 1 '13 at 12:10
  • 3
    would just like to ask if this is a correct way of checking - yes. Maybe you wanted to ask if it is a efficient way of checking? – Ilya Ivanov Apr 1 '13 at 12:10
  • 3
    Nope. Trivially, you can start a at 3 and increment it by 2 instead of 1 (and handle 2 being prime as a special case). But see here: en.wikipedia.org/wiki/Sieve_of_Eratosthenes – Matthew Watson Apr 1 '13 at 12:17
  • 2
    @MatthewWatson A sieve is good if one wants to generate all the primes up to some limit, but to check whether one number is prime, it's useless. – Daniel Fischer Apr 1 '13 at 19:48
  • 2
    @Servy What do you mean with "If it's sufficiently small it's not even going to be inefficient"? If you sieve up to sqrt(n) to get the primes you need for trial division, the sieving is more work than the unnecessary divisions by composites, if you avoid multiples of 2, 3, and maybe 5, if you're enterprisy. If you're sieving to n to look up whether n is prime in the sieve, you have an asymptotically worse algorithm (and the constant factors don't let it win for small numbers either). – Daniel Fischer Apr 1 '13 at 20:34

21 Answers 21

69
var number;

Console.WriteLine("Accept number:");
number = Convert.ToInt32(Console.ReadLine());
if(IsPrime(number))
{
  Console.WriteLine("It is prime");
}
else
{
  Console.WriteLine("It is not prime");
}       

public static bool IsPrime(int number)
{
    if (number <= 1) return false;
    if (number == 2) return true;
    if (number % 2 == 0) return false;

    var boundary = (int)Math.Floor(Math.Sqrt(number));

    for (int i = 3; i <= boundary; i+=2)
        if (number % i == 0)
            return false;

    return true;        
}

I changed number / 2 to Math.Sqrt(number) because from in wikipedia, they said:

This routine consists of dividing n by each integer m that is greater than 1 and less than or equal to the square root of n. If the result of any of these divisions is an integer, then n is not a prime, otherwise it is a prime. Indeed, if n = a*b is composite (with a and b ≠ 1) then one of the factors a or b is necessarily at most square root of n

  • 7
    Good solution. Note though that you are recalculating the square root every time through the loop. – Eric Lippert Apr 1 '13 at 14:49
  • 3
    Consider three cases. If the number is actually prime then it doesn't matter when you stop at the ceiling or the floor; either way you are going to deduce correctly that it is prime. Now suppose that it is composite and a perfect square. Then the ceiling and the floor are equal, so again, it doesn't matter which you choose because they are the same. Now suppose that it is composite and not a perfect square. Then it has a factor that is less than its square root, so the floor is correct. No matter which of these three cases we're in, you can take the floor. – Eric Lippert Apr 1 '13 at 15:25
  • 2
    Note that this argument requires that my second claim is true: that for every perfect square, the ceiling and floor of the square root are equal. If Math.Sqrt ever says that the square root of 10000 is 99.9999999999999 instead of 100.0000000000000, my claim is wrong and you should use the ceiling. Are there any cases where my claim is wrong? – Eric Lippert Apr 1 '13 at 15:27
  • 4
    So lets think about other ways that your algorithm is inefficient. Suppose you are checking a large prime. You check to see if it is divisible by 2 first. It isn't. Then you check 3. It isn't. Then you check 4. Why are you checking 4? If it is divisible by 4 then it must have already been divisible by 2. You then check 5. Then 6. Again, why check 6? It can only be divisible by 6 if it is divisible by 2 and 3, which you've already checked. – Eric Lippert Apr 1 '13 at 15:35
  • 1
    @SonerGönül That depends. If you test one number, finding the primes to the square root is much more work than simply doing trial division omitting even numbers (except 2) and multiples of 3 (except 3 itself). If you test a lot of numbers, getting the primes for the trial divisions absolutely is worth it. – Daniel Fischer Apr 1 '13 at 20:00
10

Using Soner's routine, but with a slight variation: we will run until i equals Math.Ceiling(Math.Sqrt(number)) that is the trick for the naive solution:

boolean isPrime(int number)
{

    if (number == 1) return false;
    if (number == 2) return true;

    var limit = Math.Ceiling(Math.Sqrt(number)); //hoisting the loop limit

    for (int i = 2; i <= limit; ++i)  {
       if (number % i == 0)  return false;
    }

    return true;

}
  • 2
    +1 . . . for efficiency! – PaRiMaL RaJ Apr 1 '13 at 12:17
  • Calculating square root each time in the loop? Isn't it inefficient? – Mangesh Feb 11 '17 at 11:36
  • 1
    @Mangesh you are right only if I am calling isPrime for a range of number. Then I would be able to amortize a lookup table of square root of preceding numbers. Anyway there is a tradeoff between space vs. time complexity. There are no free lunch – 0x90 Feb 11 '17 at 13:07
  • 1
    What @Mangesh meant is that the for loop recalculates the Sqrt each time around testing each possible divisor - apparently optimization won't hoist the constant expression out since it can't know what Math.Ceiling or Math.Sqrt compute (imagine if it was (new Random()).Next(number)) so you should be hoisting it out. – NetMage Mar 14 '17 at 18:21
8

Here's a nice way of doing that.

    static bool IsPrime(int n)
    {
        if (n > 1)
        {
            return Enumerable.Range(1, n).Where(x => n%x == 0)
                             .SequenceEqual(new[] {1, n});
        }

        return false;
    }

And a quick way of writing your program will be:

        for (;;)
        {
            Console.Write("Accept number: ");
            int n = int.Parse(Console.ReadLine());
            if (IsPrime(n))
            {
                Console.WriteLine("{0} is a prime number",n);
            }
            else
            {
                Console.WriteLine("{0} is not a prime number",n);
            }
        }
  • 4
    3 years after, do you still write code like for(;;) ? – Dementic Jul 22 '16 at 8:39
  • If you have a large number that requires a long, this doesn't appear to work since Enumerable.Range doesn't have an overload for long. In addition, you're consuming a lot of memory and allocation time to create a list of all numbers between 1 and n. Finally, you don't need to check every value since all even numbers are known to be not prime (i.e. divisible by 2). – Matt Ruwe Dec 18 '16 at 12:24
  • 2
    After having given that criticism, I will say that I like the succinctness of your solution. – Matt Ruwe Dec 19 '16 at 12:44
  • 2
    I disagree with @MattRuwe 's comment about "create a list of all numbers between ...". AFAIK, Range, Where, & SequenceEqual work by streaming the sequence without storing any element except the last read one. – Thariq Nugrohotomo Feb 23 '17 at 8:42
  • Interesting - I didn't know that about Range, Where and SequenceEqual. – Matt Ruwe Mar 2 '17 at 13:36
5

Here's a good example. I'm dropping the code in here just in case the site goes down one day.

using System;

class Program
{
    static void Main()
    {
    //
    // Write prime numbers between 0 and 100.
    //
    Console.WriteLine("--- Primes between 0 and 100 ---");
    for (int i = 0; i < 100; i++)
    {
        bool prime = PrimeTool.IsPrime(i);
        if (prime)
        {
        Console.Write("Prime: ");
        Console.WriteLine(i);
        }
    }
    //
    // Write prime numbers between 10000 and 10100
    //
    Console.WriteLine("--- Primes between 10000 and 10100 ---");
    for (int i = 10000; i < 10100; i++)
    {
        if (PrimeTool.IsPrime(i))
        {
        Console.Write("Prime: ");
        Console.WriteLine(i);
        }
    }
    }
}

Here is the class that contains the IsPrime method:

using System;

public static class PrimeTool
{
    public static bool IsPrime(int candidate)
    {
    // Test whether the parameter is a prime number.
    if ((candidate & 1) == 0)
    {
        if (candidate == 2)
        {
        return true;
        }
        else
        {
        return false;
        }
    }
    // Note:
    // ... This version was changed to test the square.
    // ... Original version tested against the square root.
    // ... Also we exclude 1 at the end.
    for (int i = 3; (i * i) <= candidate; i += 2)
    {
        if ((candidate % i) == 0)
        {
        return false;
        }
    }
    return candidate != 1;
    }
}
  • 2
    OP just wanted to check if a given number is prime or not, not calculate all primes between two numbers. – Paras Wadehra Apr 9 '16 at 7:19
5

I've implemented a different method to check for primes because:

  • Most of these solutions keep iterating through the same multiple unnecessarily (for example, they check 5, 10, and then 15, something that a single % by 5 will test for).
  • A % by 2 will handle all even numbers (all integers ending in 0, 2, 4, 6, or 8).
  • A % by 5 will handle all multiples of 5 (all integers ending in 5).
  • What's left is to test for even divisions by integers ending in 1, 3, 7, or 9. But the beauty is that we can increment by 10 at a time, instead of going up by 2, and I will demonstrate a solution that is threaded out.
  • The other algorithms are not threaded out, so they don't take advantage of your cores as much as I would have hoped.
  • I also needed support for really large primes, so I needed to use the BigInteger data-type instead of int, long, etc.

Here is my implementation:

public static BigInteger IntegerSquareRoot(BigInteger value)
{
    if (value > 0)
    {
        int bitLength = value.ToByteArray().Length * 8;
        BigInteger root = BigInteger.One << (bitLength / 2);
        while (!IsSquareRoot(value, root))
        {
            root += value / root;
            root /= 2;
        }
        return root;
    }
    else return 0;
}

private static Boolean IsSquareRoot(BigInteger n, BigInteger root)
{
    BigInteger lowerBound = root * root;
    BigInteger upperBound = (root + 1) * (root + 1);
    return (n >= lowerBound && n < upperBound);
}

static bool IsPrime(BigInteger value)
{
    Console.WriteLine("Checking if {0} is a prime number.", value);
    if (value < 3)
    {
        if (value == 2)
        {
            Console.WriteLine("{0} is a prime number.", value);
            return true;
        }
        else
        {
            Console.WriteLine("{0} is not a prime number because it is below 2.", value);
            return false;
        }
    }
    else
    {
        if (value % 2 == 0)
        {
            Console.WriteLine("{0} is not a prime number because it is divisible by 2.", value);
            return false;
        }
        else if (value == 5)
        {
            Console.WriteLine("{0} is a prime number.", value);
            return true;
        }
        else if (value % 5 == 0)
        {
            Console.WriteLine("{0} is not a prime number because it is divisible by 5.", value);
            return false;
        }
        else
        {
            // The only way this number is a prime number at this point is if it is divisible by numbers ending with 1, 3, 7, and 9.
            AutoResetEvent success = new AutoResetEvent(false);
            AutoResetEvent failure = new AutoResetEvent(false);
            AutoResetEvent onesSucceeded = new AutoResetEvent(false);
            AutoResetEvent threesSucceeded = new AutoResetEvent(false);
            AutoResetEvent sevensSucceeded = new AutoResetEvent(false);
            AutoResetEvent ninesSucceeded = new AutoResetEvent(false);
            BigInteger squareRootedValue = IntegerSquareRoot(value);
            Thread ones = new Thread(() =>
            {
                for (BigInteger i = 11; i <= squareRootedValue; i += 10)
                {
                    if (value % i == 0)
                    {
                        Console.WriteLine("{0} is not a prime number because it is divisible by {1}.", value, i);
                        failure.Set();
                    }
                }
                onesSucceeded.Set();
            });
            ones.Start();
            Thread threes = new Thread(() =>
            {
                for (BigInteger i = 3; i <= squareRootedValue; i += 10)
                {
                    if (value % i == 0)
                    {
                        Console.WriteLine("{0} is not a prime number because it is divisible by {1}.", value, i);
                        failure.Set();
                    }
                }
                threesSucceeded.Set();
            });
            threes.Start();
            Thread sevens = new Thread(() =>
            {
                for (BigInteger i = 7; i <= squareRootedValue; i += 10)
                {
                    if (value % i == 0)
                    {
                        Console.WriteLine("{0} is not a prime number because it is divisible by {1}.", value, i);
                        failure.Set();
                    }
                }
                sevensSucceeded.Set();
            });
            sevens.Start();
            Thread nines = new Thread(() =>
            {
                for (BigInteger i = 9; i <= squareRootedValue; i += 10)
                {
                    if (value % i == 0)
                    {
                        Console.WriteLine("{0} is not a prime number because it is divisible by {1}.", value, i);
                        failure.Set();
                    }
                }
                ninesSucceeded.Set();
            });
            nines.Start();
            Thread successWaiter = new Thread(() =>
            {
                AutoResetEvent.WaitAll(new WaitHandle[] { onesSucceeded, threesSucceeded, sevensSucceeded, ninesSucceeded });
                success.Set();
            });
            successWaiter.Start();
            int result = AutoResetEvent.WaitAny(new WaitHandle[] { success, failure });
            try
            {
                successWaiter.Abort();
            }
            catch { }
            try
            {
                ones.Abort();
            }
            catch { }
            try
            {
                threes.Abort();
            }
            catch { }
            try
            {
                sevens.Abort();
            }
            catch { }
            try
            {
                nines.Abort();
            }
            catch { }
            if (result == 1)
            {
                return false;
            }
            else
            {
                Console.WriteLine("{0} is a prime number.", value);
                return true;
            }
        }
    }
}

Update: If you want to implement a solution with trial division more rapidly, you might consider having a cache of prime numbers. A number is only prime if it is not divisible by other prime numbers that are up to the value of its square root. Other than that, you might consider using the probabilistic version of the Miller-Rabin primality test to check for a number's primality if you are dealing with large enough values (taken from Rosetta Code in case the site ever goes down):

// Miller-Rabin primality test as an extension method on the BigInteger type.
// Based on the Ruby implementation on this page.
public static class BigIntegerExtensions
{
  public static bool IsProbablePrime(this BigInteger source, int certainty)
  {
    if(source == 2 || source == 3)
      return true;
    if(source < 2 || source % 2 == 0)
      return false;

    BigInteger d = source - 1;
    int s = 0;

    while(d % 2 == 0)
    {
      d /= 2;
      s += 1;
    }

    // There is no built-in method for generating random BigInteger values.
    // Instead, random BigIntegers are constructed from randomly generated
    // byte arrays of the same length as the source.
    RandomNumberGenerator rng = RandomNumberGenerator.Create();
    byte[] bytes = new byte[source.ToByteArray().LongLength];
    BigInteger a;

    for(int i = 0; i < certainty; i++)
    {
      do
      {
        // This may raise an exception in Mono 2.10.8 and earlier.
        // http://bugzilla.xamarin.com/show_bug.cgi?id=2761
        rng.GetBytes(bytes);
        a = new BigInteger(bytes);
      }
      while(a < 2 || a >= source - 2);

      BigInteger x = BigInteger.ModPow(a, d, source);
      if(x == 1 || x == source - 1)
        continue;

      for(int r = 1; r < s; r++)
      {
        x = BigInteger.ModPow(x, 2, source);
        if(x == 1)
          return false;
        if(x == source - 1)
          break;
      }

      if(x != source - 1)
        return false;
    }

    return true;
  }
}
  • 1
    so you increment by 10 at a time, and only check 4 of the 10. But you can increment by 30, and only check 8 of the 30. Of course, 8/30 = 4/15 < 4/10. Then there's 48/210. – Will Ness Jun 26 '14 at 14:32
  • 1
    starting with 7, increment by 30. which numbers from 7 to 36 do you really need? such that aren't multiples of 2,3 or 5. There are only 8 of them. – Will Ness Jun 26 '14 at 14:36
  • 1
    you increment each of the eight numbers by 30, each time. see "Wheel factorization" (although WP article is badly written IMO). also: stackoverflow.com/a/21310956/849891 -- 2*3*5 = .... – Will Ness Jun 26 '14 at 14:47
  • 1
    there is no limit but the returns are quickly diminishing for the rapidly growing investments: it's 1/2, 2/6, 8/30, 48/210, 480/2310, ... = 0.5, 0.3333, 0.2667, 0.2286, 0.2078, ... so the gains are 50%, 25%, 16.67%, 10%, ... for 2x, 4x, 6x, 10x, ... more numbers on the wheel to deal with. And if we do it with loop unrolling, it means 2x, ..., 10x, ... code blowup. – Will Ness Jun 26 '14 at 22:03
  • 1
    ... so "return on investment" is 25%, 6.25%, 2.8%, 1%, ... so it doesn't pay much to enlarge the wheel past 11. Each wheel of circumference PRODUCT(p_i){i=1..n} contains PRODUCT(p_i - 1){i=1..n} spikes but gets us without composites only up to (p_(n+1))^2. Rolling the 100-primes wheel we only get primes up to 547^2=299209, but there are 4181833108490708127856970969853073811885209475016770818056714802062057564305290‌348961566798327912719763961768373051814396765475489229643362657214962862299679072‌90044555142202583817713509990400000000000000000000000000000 spikes on that wheel. – Will Ness Jun 27 '14 at 21:11
1

Based on @Micheal's answer, but checks for negative numbers and computes the square incrementally

    public static bool IsPrime( int candidate ) {
        if ( candidate % 2 <= 0 ) {
            return candidate == 2;
        }
        int power2 = 9;
        for ( int divisor = 3; power2 <= candidate; divisor += 2 ) {
            if ( candidate % divisor == 0 )
                return false;
            power2 += divisor * 4 + 4;
        }
        return true;
    }
1

Find this example in one book, and think it's quite elegant solution.

 static void Main(string[] args)
    {
        Console.Write("Enter a number: ");
        int theNum = int.Parse(Console.ReadLine());

        if (theNum < 3)  // special case check, less than 3
        {
            if (theNum == 2)
            {
                // The only positive number that is a prime
                Console.WriteLine("{0} is a prime!", theNum);
            }
            else
            {
                // All others, including 1 and all negative numbers, 
                // are not primes
                Console.WriteLine("{0} is not a prime", theNum);
            }
        }
        else
        {
            if (theNum % 2 == 0)
            {
                // Is the number even?  If yes it cannot be a prime
                Console.WriteLine("{0} is not a prime", theNum);
            }
            else
            {
                // If number is odd, it could be a prime
                int div;

                // This loop starts and 3 and does a modulo operation on all
                // numbers.  As soon as there is no remainder, the loop stops.
                // This can be true under only two circumstances:  The value of
                // div becomes equal to theNum, or theNum is divided evenly by 
                // another value.
                for (div = 3; theNum % div != 0; div += 2)
                    ;  // do nothing

                if (div == theNum)
                {
                    // if theNum and div are equal it must be a prime
                    Console.WriteLine("{0} is a prime!", theNum);
                }
                else
                {
                    // some other number divided evenly into theNum, and it is not
                    // itself, so it is not a prime
                    Console.WriteLine("{0} is not a prime", theNum);
                }
            }
        }

        Console.ReadLine();
    }
1

You can also find range of prime numbers till the given number by user.

CODE:

class Program
    {
        static void Main(string[] args)
        {
            Console.WriteLine("Input a number to find Prime numbers\n");
            int inp = Convert.ToInt32(Console.ReadLine());
            Console.WriteLine("\n Prime Numbers are:\n------------------------------");
            int count = 0;

            for (int i = 1; i <= inp; i++)
            {
                for (int j = 2; j < i; j++) // j=2 because if we divide any number with 1 the remaider will always 0, so skip this step to minimize time duration.
                {
                    if (i % j != 0)
                    {
                        count += 1;
                    }
                }
                if (count == (i - 2))
                    {
                        Console.Write(i + "\t"); 
                    }

                count = 0;
            }

            Console.ReadKey();

        }
    }

Prime numbers

  • I see this code as simplest so far. – Waqar Jan 24 '15 at 3:52
1

This version calculates a list of primes square roots and only checks if the list of prime numbers below the square root, and uses a binarysearch in the list to find known primes. I looped through to check the first 1,000,000 primes, and it took about 7 seconds.

using System;
using System.Collections.Generic;
using System.Linq;
using System.Text;
using System.Threading.Tasks;

namespace ConsoleApplication5
{
    class Program
    {
        static void Main(string[] args)
        {
            //test();
            testMax();
            Console.ReadLine();
        }

        static void testMax()
        {
            List<int> CheckPrimes = Enumerable.Range(2, 1000000).ToList();
            PrimeChecker pc = new PrimeChecker(1000000);
            foreach (int i in CheckPrimes)
            {
                if (pc.isPrime(i))
                {
                    Console.WriteLine(i);
                }
            }
        }
    }

    public class PrimeChecker{
        public List<int> KnownRootPrimesList;
        public int HighestKnownPrime = 3;

        public PrimeChecker(int Max=1000000){
            KnownRootPrimesList = new List<int>();
            KnownRootPrimesList.Add(2);
            KnownRootPrimesList.Add(3);
            isPrime(Max);
        }

        public bool isPrime(int value)
        {
            int srt = Convert.ToInt32(Math.Ceiling(Math.Sqrt(Convert.ToDouble(value))));
            if(srt > HighestKnownPrime)
            {
                for(int i = HighestKnownPrime + 1; i <= srt; i++)
                {
                    if (i > HighestKnownPrime)
                    {
                        if(isPrimeCalculation(i))
                        {
                                KnownRootPrimesList.Add(i);
                                HighestKnownPrime = i;
                        }
                    }
                }
            }
            bool isValuePrime = isPrimeCalculation(value);
            return(isValuePrime);
        }

        private bool isPrimeCalculation(int value)
        {
            if (value < HighestKnownPrime)
            {
                if (KnownRootPrimesList.BinarySearch(value) > -1)
                {
                    return (true);
                }
                else
                {
                    return (false);
                }
            }
            int srt = Convert.ToInt32(Math.Ceiling(Math.Sqrt(Convert.ToDouble(value))));
            bool isPrime = true;
            List<int> CheckList = KnownRootPrimesList.ToList();
            if (HighestKnownPrime + 1 < srt)
            {
                CheckList.AddRange(Enumerable.Range(HighestKnownPrime + 1, srt));
            }
            foreach(int i in CheckList)
            {
                isPrime = ((value % i) != 0);
                if(!isPrime)
                {
                    break;
                }
            }
            return (isPrime);
        }

        public bool isPrimeStandard(int value)
        {
            int srt = Convert.ToInt32(Math.Ceiling(Math.Sqrt(Convert.ToDouble(value))));
            bool isPrime = true;
            List<int> CheckList = Enumerable.Range(2, srt).ToList();
            foreach (int i in CheckList)
            {
                isPrime = ((value % i) != 0);
                if (!isPrime)
                {
                    break;
                }
            }
            return (isPrime);
        }
    }
}
1

This is basically an implementation of a brilliant suggestion made by Eric Lippert somewhere above.

    public static bool isPrime(int number)
    {
        if (number == 1) return false;
        if (number == 2 || number == 3 || number == 5) return true;
        if (number % 2 == 0 || number % 3 == 0 || number % 5 == 0) return false;

        var boundary = (int)Math.Floor(Math.Sqrt(number));

        // You can do less work by observing that at this point, all primes 
        // other than 2 and 3 leave a remainder of either 1 or 5 when divided by 6. 
        // The other possible remainders have been taken care of.
        int i = 6; // start from 6, since others below have been handled.
        while (i <= boundary)
        {
            if (number % (i + 1) == 0 || number % (i + 5) == 0)
                return false;

            i += 6;
        }

        return true;
    }
0

I think this is a simple way for beginners:

using System;
using System.Numerics;
public class PrimeChecker
{
    public static void Main()
    {
    // Input
        Console.WriteLine("Enter number to check is it prime: ");
        BigInteger n = BigInteger.Parse(Console.ReadLine());
        bool prime = false;

    // Logic
        if ( n==0 || n==1)
        {
            Console.WriteLine(prime);
        }
        else if ( n==2 )
        {
            prime = true;
            Console.WriteLine(prime);
        }
        else if (n>2)
        {
            IsPrime(n, prime);
        }
    }

    // Method
    public static void IsPrime(BigInteger n, bool prime)
    {
        bool local = false;
        for (int i=2; i<=(BigInteger)Math.Sqrt((double)n); i++)
        {
            if (n % i == 0)
            {
                local = true;
                break;
            }
        }
        if (local)
            {
                Console.WriteLine(prime);
            }
        else
        {
            prime = true;
            Console.WriteLine(prime);
        }
    }
}
  • 3
    It would be nice to also add a brief explanation of what the code does and what is the core idea behind it - that would make the answer more useful end easy to read for beginners. And welcome to StackOverflow! – plamut Dec 9 '15 at 18:43
0

The algorithm in the function consists of testing whether n is a multiple of any integer between 2 and sqrt (n). If it's not, then True is returned which means the number (n) is a prime number, otherwise False is returned which means n divides a number that is between 2 and the floor integer part of sqrt(n).

private static bool isPrime(int n)
        {
            int k = 2;
            while (k * k <= n)
            {
                if ((n % k) == 0)
                    return false;
                else k++;
            }
            return true;
        }
  • While this code snippet may solve the question, including an explanation really helps to improve the quality of your post. Remember that you are answering the question for readers in the future, and those people might not know the reasons for your code suggestion. Please also try not to crowd your code with explanatory comments, this reduces the readability of both the code and the explanations! – kayess May 25 '17 at 7:52
  • Please edit it into your answer. – kayess May 25 '17 at 12:40
0

The algorithm in the function consists of testing whether n is a multiple of any integer between 2 and sqrt (n). If it's not, then True is returned which means the number (n) is a prime number, otherwise False is returned which means n divides a number that is between 2 and the floor integer part of sqrt(n).

Recursive version

        // Always call it as isPrime(n,2)
        private static bool isPrime(int n, int k)
        {
            if (k * k <= n)
            {
                if ((n % k) == 0)
                    return false;
                else return isPrime(n, k + 1);
            }
            else
                return true;
        }
  • Any large number is going to cause a StackOverflowExcpetion. – Erik Philips Jan 3 '18 at 5:23
  • Correct. Because of the recursion deep level. That's way I first posted the iterative approach. Recursion is elegance ;) – Igor Micev Jan 12 '18 at 21:49
0

Prime numbers are numbers that are bigger than one and cannot be divided evenly by any other number except 1 and itself.

@This program will show you the given number is prime or not, and will show you for non prime number that it's divisible by (a number) which is rather than 1 or itself?@

        Console.Write("Please Enter a number: ");
        int number = int.Parse(Console.ReadLine());
        int count = 2; 
        // this is initial count number which is greater than 1

        bool prime = true;
        // used Boolean value to apply condition correctly

        int sqrtOfNumber = (int)Math.Sqrt(number); 
        // square root of input number this would help to simplify the looping.  

        while (prime && count <= sqrtOfNumber)
        {
            if ( number % count == 0)
            {
            Console.WriteLine($"{number} isn't prime and it divisible by 
                                      number {count}");  // this will generate a number isn't prime and it is divisible by a number which is rather than 1 or itself and this line will proves why it's not a prime number.
                prime = false;
            }

            count++;

        }
        if (prime && number > 1)

        {
            Console.WriteLine($"{number} is a prime number");
        }
        else if (prime == true)
        // if input is 1 or less than 1 then this code will generate
        {
            Console.WriteLine($"{number} isn't a prime");
        }
  • This is exactly the same principal solution as the most upvoted answer, except that it also checks all even numbers which is unnecessary. Not only was it not necessary to post yet another version of the most upvoted answer, posting a bad implementation of it is definitely not needed. – Lasse Vågsæther Karlsen Dec 2 '17 at 13:32
  • nope it's most simplify answer that anyone could understand as beginner,, i used here several number's to check because i want to find why the number isn't prime and which is the divisible number of it. i think you got my point of view – Ti Kanon Dec 2 '17 at 14:58
0

I'm trying to get some efficiency out of early exit when using Any()...

    public static bool IsPrime(long n)
    {
        if (n == 1) return false;
        if (n == 3) return true;

        //Even numbers are not primes
        if (n % 2 == 0) return false;

        return !Enumerable.Range(2, Convert.ToInt32(Math.Ceiling(Math.Sqrt(n))))
            .Any(x => n % x == 0);
    }
  • I like the solution, but it doesn't unclude 2 as a prime number – Mark Jun 13 '18 at 13:31
0

This is the simplest way to find prime number is

for(i=2; i<num; i++)
        {
            if(num%i == 0)
            {
                count++;
                break;
            }
        }
        if(count == 0)
        {
            Console.WriteLine("This is a Prime Number");
        }
        else
        {
            Console.WriteLine("This is not a Prime Number");
        }

Helpful Link: https://codescracker.com/java/program/java-program-check-prime.htm

0

Here is a version without the "clutter" of other answers and simply does the trick.

static void Main(string[] args)
{

    Console.WriteLine("Enter your number: ");
    int num = Convert.ToInt32(Console.ReadLine());
    bool isPrime = true;
    for (int i = 2; i < num/2; i++)
    {
        if (num % i == 0)
        {
            isPrime = false;
            break;
        }
    }
    if (isPrime)
        Console.WriteLine("It is Prime");
    else
        Console.WriteLine("It is not Prime");
    Console.ReadLine();
}
-1
   bool flag = false;


            for (int n = 1;n < 101;n++)
            {
                if (n == 1 || n == 2)
                {
                    Console.WriteLine("prime");
                }

                else
                {
                    for (int i = 2; i < n; i++)
                    {
                        if (n % i == 0)
                        {
                            flag = true;
                            break;
                        }
                    }
                }

                if (flag)
                {
                    Console.WriteLine(n+" not prime");
                }
                else
                {
                    Console.WriteLine(n + " prime");
                }
                 flag = false;
            }

            Console.ReadLine();
  • This code runs and finds whether each number up to 100 is prime or not. That is not the objective of this question. – Paras Wadehra Apr 9 '16 at 7:28
-1

Only one row code:

    private static bool primeNumberTest(int i)
    {
        return i > 3 ? ( (Enumerable.Range(2, (i / 2) + 1).Where(x => (i % x == 0))).Count() > 0 ? false : true ) : i == 2 || i == 3 ? true : false;
    }
  • 1
    .Where(x => (i % x == 0))).Count() > 0 ? false : true is more concisely (and efficiently) expressed as .All(x => i%x != 0). Also, ? true : false is unnecessary. Finally, this isn't code golf. What's the advantage of packing all that logic into one line? – Simon MᶜKenzie Jan 22 '15 at 22:45
-1

Try this code.

bool isPrimeNubmer(int n)
{
    if (n == 2 || n == 3) //2, 3 are prime numbers
        return true;
    else if (n % 2 == 0) //even numbers are not prime numbers
        return false;
    else
    {
        int j = 3;
        int k = (n + 1) / 2 ;

        while (j <= k)
        {
            if (n % j == 0)
                return false;
            j = j + 2;
        }
        return true;
    }
}
  • 2
    1 is not a prime number – Matt Overall Jun 28 '15 at 18:57
-1

You can also try this:

bool isPrime(int number)
    {
        return (Enumerable.Range(1, number).Count(x => number % x == 0) == 2);
    }

protected by Soner Gönül Feb 10 '16 at 7:54

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