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I have to WAP to print the smallest & largest prime no of a array of given size without sorting . I have written the code for largest number but for smallest number it doesn't run because i am comparing the value of a prime number with min which is initialised 0 , but if i break the If_else in two parts

  1. containg c==2 check
  2. containg a[i]

then it runs because then in c==2 , min has been supplied with a value from the array but if i run them together they dont so any work around here to get me smallest number without breaking the if_else . the code is follow

#include <iostream.h>
#include <conio.h>
#include <stdio.h>
#include <ctype.h>

void main ()
{
  int i,j,m;
  clrscr();
  int a[20],x,min=0,c=0;
  cout<<"Enter size of array "<<endl;
  cin>>m;
  cout<<"Enter "<<m<<" Numbers "<<endl;
  for(i=0;i<m;i++)
  {
    cin>>a[i];
  }
  for(i=0;i<m;i++)
  {
    for(j=1;j<=a[i];j++)
    {
      if(a[i]%j==0)
      {
        c++;
      }
    }
    if(c==2 && a[i]<min)//problem is here 
    {
      min=a[i];
    }
    c=0;
  }
  cout<<endl<<"the min prime no out of array is " <<min;
  getch();
}
share|improve this question
7  
Initialize min with INT_MAX then the check to find min will work... –  Nim Sep 26 '13 at 10:15
4  
Or with any element of the array. –  Sebastian-Laurenţiu Plesciuc Sep 26 '13 at 10:17
    
@Nim how do you suggest doing that ? can't do it with any other element because only prime no have to be checked –  Sanchit Bansal Sep 26 '13 at 10:20
2  
If you're trying to find the min and max, why is there no min variable? @SanchitBansal you have if(c==2 && a[i]>max){max=a[i];}... initializa a min as suggested and add if(c==2 && a[i]<min){min=a[i];}. Further, move your prime-checking code to its own function such as isPrime(int);, returning 0 for not prime, 1 for prime.... then if (isPrime(a[i])) { if (a[i]>max)...; if (a[i]<min)...; } –  mah Sep 26 '13 at 10:22
3  
I don't understand why it has been downvoted (twice). He has tried something on his own, posted his code and now asking for the logical error and responding to the comments the way he understands them. I think this is what this forum is for. So upvoting... –  Vikram.exe Sep 26 '13 at 10:40

3 Answers 3

Split your problem:

  • Filter prime number
  • then find_min_max

For min_max, you may use something like this:

void find_min_max(const std::vector<int>& primes, int& minValue, int& maxValue)
{
    assert(!primes.empty());

    auto result = std::minmax_element(primes.begin(), primes.end());
    minValue = *result.first;
    maxValue = *result.second;
}
share|improve this answer
    
If you have already filtered the collection to contain only the primes, then you could just use std::max_element and std::min_element to do the hard work for you. That said, your system finds the min and max at the same time, meaning only one loop through the code. –  icabod Sep 26 '13 at 10:57
    
@Jarod42 now +1 :-) BTW, I coded up something myself to also show how the first step is done. See my answer below. –  TemplateRex Sep 26 '13 at 11:51
    
pastebin.com/s5B46aHM how is this ? by storing in 2nd array and then comparing –  Sanchit Bansal Sep 26 '13 at 14:08

I believe you are starting with the programming stuff and haven't read about complexities and function calls, so putting it in a simple way that a beginner can understand it.

take a variable to check if a prime number is present or not

int foundPrime = 0; // Use boolean here if you are comfortable

Since you want to find both max and min, change this part:

if(c==2 && a[i]>max)//problem is here 
{
    max=a[i];
}

TO:

if (c == 2)
{
    if (foundPrime == 0)
    {
        foundPrime = 1;
        max = a[i];
        min = a[i];
    }
    else
    {
        if (a[i] < min)
            min = a[i];

        if (a[i] > max)
            max = a[i];
    }
}

And change the final print statement:

cout<<endl<<"the min prime no out of array is " <<min;

to something like:

if (foundPrime == 1)
{
cout<<endl<<"the min prime no out of array is " <<min;
cout<<endl<<"the max prime no out of array is " <<max;
}
else
{
cout<<endl<<"No prime numbers found in the array."
}
share|improve this answer
    
Sir i thought of an another way, by storing the prime numbers in another array and then initializing minimum value as b[0] and then comparing . see this code and tell how it is because it tells you when there are no prime numbers too just like your code . only a little shorter (no offence meant) and i will wait for your reply , make improvements if possible sir pastebin.com/s5B46aHM –  Sanchit Bansal Sep 26 '13 at 14:04

Here is a worked example that defines an is_prime predicate, then uses boost::filter_iterator and std::minmax_element to get the smallest and largest prime from an unsorted range in one pass over the data

#include <iostream>
#include <algorithm>
#include <boost/iterator/filter_iterator.hpp>

struct is_prime
{
    bool operator()(int n) const
    {
        int small_primes[] = { 2, 3, 5, 7, 11, 13, 17, 19 };
        return std::all_of(std::begin(small_primes), std::end(small_primes), [=](int const& p) {
            return n == p || n % p != 0;
        });
    }    
};

int main() 
{
    int numbers[] = { 24, 12, 7, 8, 11, 95, 47 };
    auto pb = boost::make_filter_iterator(is_prime{}, std::begin(numbers), std::end(numbers));
    auto pe = boost::make_filter_iterator(is_prime{}, std::end(numbers), std::end(numbers));

    auto result = std::minmax_element(pb, pe);
    if (result != std::make_pair(pb, pb))
        std::cout << *(result.first.base()) << " " << *(result.second.base());
}

Live example.

share|improve this answer
    
You may check if iterators in result are "valid" (empty case). –  Jarod42 Sep 27 '13 at 11:19
    
@Jarod42 tnx, good point. Updated the answer by checking the resulting iterator pair against std::make_pair(pb, pb), which is what std::minmax_element returns in case there are no primes in the input. –  TemplateRex Sep 27 '13 at 13:17

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