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My code is following:

/counting number of digits in an integer

#include <iostream>
using namespace std;

int countNum(int n,int d){
    if(n==0)
    return d;
    else
    return (n/10,d++);
}
int main(){
    int n;
    int d;
    cout<<"Enter number"<<endl;
    cin>>n;
   int x=countNum();
    cout<<x;
    return 0;
}

i cannot figure out the error,it says that : too few arguments to function `int countNum(int, int)' what is issue?

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4  
Look at countNum(int n,int d). Then look at countNum();. Now look back at countNum(int n,int d). See the problem? –  Mike Christensen Feb 6 '14 at 17:43
    
Is this for an assignment? Using recursion for this (and not taking advantage of tail-end-recursion), would flood the call stack for no good reason ... –  Zac Howland Feb 6 '14 at 17:51

8 Answers 8

Because you declared the function to take two arguments:

int countNum(int n,int d){

and you are passing none in:

int x = countNum();

You probably meant to call it like this, instead:

int x = countNum(n, d);

Also this:

return (n/10,d++);

should probably be this:

return countNum(n/10,d++);

Also you are not initializing your n and d variables:

int n;
int d;

Finally you don't need the d argument at all. Here's a better version:

int countNum(int n){
    return (n >= 10)
        ? 1 + countNum(n/10)
        : 1;
}

and here's the working example.

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thanks i got it –  mahnoor fatima Feb 6 '14 at 17:44

int x=countNum(); the caller function should pass actual arguments to calling function. You have defined function countNum(int, int) which means it will receive two ints as arguments from the calling function, so the caller should pass them which are missing in your case. Thats the reason of error too few arguments.

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ok thanks it works :) –  mahnoor fatima Feb 6 '14 at 17:43

Your code here:

int x=countNum();

countNum needs to be called with two integers. eg

int x=countNum(n, d);
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Because you haven't passed parameters to the countNum function. Use it like int x=countNum(n,d);

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Assuming this is not for an assignment, there are better ways to do this (just a couple of examples):

Convert to string

unsigned int count_digits(unsigned int n)
{
    std::string sValue = std::to_string(n);
    return sValue.length();
}

Loop

unsigned int count_digits(unsigned int n)
{
    unsigned int cnt = 1;
    if (n > 0)
    {
        for (n = n/10; n > 0; n /= 10, ++cnt);
    }
    return cnt;
}

Tail End Recursion

unsigned int count_digits(unsigned int n, unsigned int cnt = 1)
{
    if (n < 10)
        return cnt;
    else
        return count_digits(n / 10, cnt + 1);
}

Note: With tail-end recursion optimizations turned on, your compiler will transform this into a loop for you - preventing the unnecessary flooding of the call stack.

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it was our lab activity only through recursion..thanks anyways –  mahnoor fatima Feb 6 '14 at 18:21

Change it to:

int x=countNum(n,0);

You don't need to pass d in, you can just pass 0 as the seed.

Also change countNum to this:

int countNum(int n,int d){
    if(n==0)
    return d;
    else
    return coutNum(n/10,d+1); // NOTE: This is the recursive bit!
}
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when i passed arguments and my code finally compiled without error but when i runned my code but after entering the number and pressing enter but after pressing enter the black output screen vanishes why is that so?is my code fine?or i have to cout something else? –  mahnoor fatima Feb 6 '14 at 17:48
    
It's because your program writes to the console and then exits. The moment it exit it closes the console. You could add another read just before the return to pause the program, or put a breakpoint on the return statement so you can see the output before the program exits. –  Sean Feb 6 '14 at 17:50
    
what was that something systempause ? what was the actual thing..thanks –  mahnoor fatima Feb 6 '14 at 17:56
    
thanks im getting output fine but when i entered 123 it gives output 0 when i should be 3 is my code fine? –  mahnoor fatima Feb 6 '14 at 18:00
    
@mahnoorfatima - I've corrected your countNum code. It wasn't recursing on the second return. Note that the d++ is now d+1. The d++ would cause 0 to always be passed. –  Sean Feb 6 '14 at 20:20
#include <iostream>
using namespace std;

int countNum(int n,int d){
    if(n<10)
        return d;
    else
        return countNum(n/10, d+1);
}
int main(){
    int n;
    cout<<"Enter number"<<endl;
    cin>>n;
    int x=countNum(n, 1);
    cout<<x;
    return 0;
}
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Why don't you run it first and then post ? –  P0W Feb 6 '14 at 17:49
    
its not giving error but when i run it and enter the number but after entering the number,screen vanishes?why is that so? also tell me that in countNum(n,d) you have passed n and d arguments and in calling function you have taken an argument zero.. shouldnt arguments same? –  mahnoor fatima Feb 6 '14 at 17:53
    
Sorry. Fixed and tested. –  Sergii Khaperskov Feb 6 '14 at 20:49

Your function is written incorrectly. For example it is not clear why it has two parameters or where it calls recursively itself.

I would write it the following way

int countNum( int n )
{
   return 1 + ( ( n /= 10 ) ? countNum( n ) : 0 );
}

Or even it would be better to define it as

constexpr int countNum( int n )
{
   return 1 + ( ( n / 10 ) ? countNum( n/10 ) : 0 );
}
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4  
Aaaaaand segmentation fault. –  Jefffrey Feb 6 '14 at 17:50
    
I don't doubt that you would write it in that way so, strictly speaking, your answer is not wrong. Unfortunately, it is an incorrect way. –  Lightning Racis in Obrit Feb 6 '14 at 17:56
    
@Jefffre I made a typo. I uodated my post. –  Vlad from Moscow Feb 6 '14 at 17:58
    
BTW there is some problem with your keyboard. It keeps changing and dropping random characters in your posts. –  Lightning Racis in Obrit Feb 6 '14 at 18:00
1  
@mahnoorfatima: No, it does not even compile. Please take more care over your posts. –  Lightning Racis in Obrit Feb 6 '14 at 18:05

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