70

What is a way in C that someone could find the length of a character array?

I will happily accept pseudo-code, but am not averse to someone writing it out if they'd like to :)

8
  • You mean other than looking for the NUL? – Ignacio Vazquez-Abrams Nov 15 '10 at 1:44
  • 5
    Either strlen(), either sizeof(). It depends on what you need. – ruslik Nov 15 '10 at 1:46
  • a string is a specific kind of object stored in a Character array (a Character array may not contain a string) – user166390 Nov 15 '10 at 1:50
  • 1
    @pst: The question is sufficiently vague that we can interpret it any way we like. Whether our interpretation is correct depends on what the asker decides to come back with. – Ignacio Vazquez-Abrams Nov 15 '10 at 1:51
  • @pst considering the way the OP put the question, we have the right to assume anything. – ruslik Nov 15 '10 at 1:52
92

Provided the char array is null terminated,

char chararray[10] = { 0 };
size_t len = strlen(chararray);
2
  • 9
    sizeof() asnd strlen() both return size_t, which differs from int in that it's potentially larger or smaller and certainly unsigned. – Chris Lutz Nov 15 '10 at 1:55
  • Note that in the example given, strlen(chararray) returns 0 because the array is empty. – Generic Ratzlaugh Aug 12 '20 at 15:10
28

If you have an array, then you can find the number of elements in the array by dividing the size of the array in bytes by the size of each element in bytes:

char x[10];
int elements_in_x = sizeof(x) / sizeof(x[0]);

For the specific case of char, since sizeof(char) == 1, sizeof(x) will yield the same result.

If you only have a pointer to an array, then there's no way to find the number of elements in the pointed-to array. You have to keep track of that yourself. For example, given:

char x[10];
char* pointer_to_x = x;

there is no way to tell from just pointer_to_x that it points to an array of 10 elements. You have to keep track of that information yourself.

There are numerous ways to do that: you can either store the number of elements in a variable or you can encode the contents of the array such that you can get its size somehow by analyzing its contents (this is effectively what null-terminated strings do: they place a '\0' character at the end of the string so that you know when the string ends).

2
  • sizeof() asnd strlen() both return size_t, which differs from int in that it's potentially larger or smaller and certainly unsigned. – Chris Lutz Nov 15 '10 at 1:55
  • This should be the accepted answer. It will return the size of initialized array . – LUser Mar 20 '20 at 18:26
14

Although the earlier answers are OK, here's my contribution.

//returns the size of a character array using a pointer to the first element of the character array
int size(char *ptr)
{
    //variable used to access the subsequent array elements.
    int offset = 0;
    //variable that counts the number of elements in your array
    int count = 0;

    //While loop that tests whether the end of the array has been reached
    while (*(ptr + offset) != '\0')
    {
        //increment the count variable
        ++count;
        //advance to the next element of the array
        ++offset;
    }
    //return the size of the array
    return count;
}

In your main function, you call the size function by passing the address of the first element of your array.

For example:

char myArray[] = {'h', 'e', 'l', 'l', 'o'};
printf("The size of my character array is: %d\n", size(&myArray[0]));
3
  • 1
    Why have a separate variable for the offset when you could simply use count? Here's a shorter (but harder to understand) version: int strlen(const char* pStr){ int i = 0; while (*pStr) { ++i; } return i; } – DividedByZero May 25 '15 at 15:27
  • char myArray[] = {'h', 'e', 'l', 'l', 'o'}; does not end with '\0' automatically. You need to assign '\0' to myArray manually. myArray[6] = '\0'; at least on my MacOS. g++ 4.2.1, Apple LLVM version 9.1.0 (clang-902.0.39.2) – 1234 Nov 25 '19 at 20:06
  • if you use char myArray[] = "hello"; then your code is working. – 1234 Nov 25 '19 at 20:18
7

You can use strlen

strlen(urarray);

You can code it yourself so you understand how it works

size_t my_strlen(const char *str)
{
  size_t i;

  for (i = 0; str[i]; i++);
  return i;
}

if you want the size of the array then you use sizeof

char urarray[255];
printf("%zu", sizeof(urarray));
1
  • 4
    Any strlen() should return size_t (which is unsigned) not int (which is signed). And the printf() specifier for size_t is "%zu" (or "%zx" or "%zo" for hex or octal). – Chris Lutz Nov 15 '10 at 2:03
6

If you want the length of the character array use sizeof(array)/sizeof(array[0]), if you want the length of the string use strlen(array).

0
2

There is also a compact form for that, if you do not want to rely on strlen. Assuming that the character array you are considering is "msg":

  unsigned int len=0;
  while(*(msg+len) ) len++;
1

using sizeof()

char h[] = "hello";
printf("%d\n",sizeof(h)-1); //Output = 5

using string.h

#include <string.h>

char h[] = "hello";
printf("%d\n",strlen(h)); //Output = 5

using function (strlen implementation)

int strsize(const char* str);
int main(){
    char h[] = "hello";
    printf("%d\n",strsize(h)); //Output = 5
    return 0;
}
int strsize(const char* str){
    return (*str) ? strsize(++str) + 1 : 0;
}
0

By saying "Character array" you mean a string? Like "hello" or "hahaha this is a string of characters"..

Anyway, use strlen(). Read a bit about it, there's plenty of info about it, like here.

3
  • 1
    If it's a literal or a char[#], you can use sizeof, but be careful not to try using it on a char * – Chris Lutz Nov 15 '10 at 1:46
  • If you do use sizeof, don't forget to subtract 1 for the null terminator. – dan04 Nov 15 '10 at 1:50
  • @dan04: Only if the array is initialized with implicit length like in char s[] = "sup";. – Matt Joiner Nov 15 '10 at 2:00
0

You can use this function:

int arraySize(char array[])
{
    int cont = 0;
    for (int i = 0; array[i] != 0; i++)
            cont++;
    return cont;
}

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