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Is there any way to get the length of int variable e.g In string we get the length by simply writing int size = string.length();

#include<iostream>
#include<conio.h>
using namespace std;

int main()
{
int i = 0;
cout<<"Please Enter the value of i"<<endl;
cin>>i;

//if user enter 123

//then size be 3 . 

// Is it possible to find that size

}
7
  • 1
    An integer doesn't have a length. However, a decimal representation of that integer does. – Oliver Charlesworth May 8 '16 at 15:44
  • "The length of int variable" (memory size) is fixed in the environment and I don't think there is simple way as you think to get the number of digits of integer. – MikeCAT May 8 '16 at 15:44
  • "Is it possible to find that size" Yes, just count it by yourself (by your program). – MikeCAT May 8 '16 at 15:45
  • Note that for decimal numbers, log₁₀ increases by 1 per factor of 10 in the number. That's a relatively common trick. – chris May 8 '16 at 15:46
  • Write a function for yourself – Joe May 8 '16 at 15:48
0
#include <cassert>
#include <cmath>
#include <iostream>

using namespace std;

int main () {
    assert(int(log10(9))   + 1 == 1);
    assert(int(log10(99))  + 1 == 2);
    assert(int(log10(123)) + 1 == 3);
    assert(int(log10(999)) + 1 == 3);
    return 0;}
0

You have a few options here:

(This answer assumes you mean number of printable characters in the integer input)

  1. Read the input as a string and get its length before converting to an int. Note that this code avoids error handling for brevity.

    #include <iostream>
    #include <sstream>
    using namespace std;
    int main(int argc, char** argv) { cout << "Please enter the value of i" << endl; string stringIn = ""; cin >> stringIn; cout << "stringIn = " << stringIn << endl; size_t length = stringIn.length(); cout << "input length = " << length << endl; int intIn; istringstream(stringIn) >> intIn; cout << "integer = " << intIn << endl; }

  2. Read in an integer and count the digits directly:

    Many other answer do this using log. I'll give one that will properly count the minus sign as a character.

    int length_of_int(int number) {
        int length = 0;
        if (number < 0) {
            number = (-1) * number;
            ++length;
        }
        while (number) {
            number /= 10;
            length++;
        }
        return length;
    }

    Derived from granmirupa's answer.

0

Not sure whether it fits your requirement but you could use std::to_string to convert your numeric data to string and then return its length.

0

For length i assume you mean the number of digits in a number:

#include <math.h>  

.....
int num_of_digits(int number)
{  
   int digits;
   if(number < 0)
       number = (-1)*number;
   digits = ((int)log10 (number)) + 1;
   return digits;
 }

Or:

int num_of_digits(int number)
{
    int digits = 0;
    if (number < 0) number = (-1) * number; 
    while (number) {
        number /= 10;
        digits++;
    }
    return digits;
}

Onother option could be this (can works with float too, but the result is not guaranteed):

 #include <iostream>
 #include <sstream>
 #include <iomanip>  

...........

 int num_of_digits3(float number){
    stringstream ss;
    ss << setprecision (20) << number;
    return ss.str().length();
 }
1

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