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Hi I'm trying to pull one member of a string and set that equal to an int. I understand that you can't simply put the int equal to the string value but I'm not sure how else to do it.

Here is the code snippet thats not working.

void zipcode::getZipCode(){
    int part[5];

    //This is what isn't correct.
    part[1] = strzip[1];

    cout << strzip[1] << " is equal to: " << part[1] << endl;

}

Can I use memcpy to copy the string member to an int value?

The string in question is: " 0010101001110000110011000"

and the output I'm getting now is:

0 is equal to: 48

Press any key to continue . . .

6
  • Atoi my friend, atoi ;) cplusplus.com/reference/cstdlib/atoi – Tymoteusz Paul Jul 3 '14 at 22:09
  • std::stoi :V – user123 Jul 3 '14 at 22:11
  • 3
    @Puciek, No, please no. And why on bloody earth does that documentation not mention that failure to convert it returns 0? – chris Jul 3 '14 at 22:12
  • 1
    part[1] = strzip[1] - '0'; – M.M Jul 3 '14 at 22:13
  • 1
    Ok, I've been informed it does mention that, just not in the right section, and not visibly enough that I saw it reading through. Better than nothing. rage detensifies – chris Jul 3 '14 at 22:19
1

Each element in a string is castable to an int implicitly (a basic_string contains char type items which are mapped to ascii characters in standard in/out methods.) Since each character is a number from 0 to 255 mapping to this table you can see how this plays out:

if('0' == 48){cout << "0 char is 48 int";}

C++ has several conversion methods. With simple char types you can exploit the basic ascii table layout and treat it as a number:

int resultNumber = mystring[i] - '0';

Using the above method, you would be wise to check the character is in the range of '0' to '9' first. The following does that check and returns -1 in the case of an error.

int resultNumber = (mystring[i] >= '0' && mystring[i] <= '9')?mystring[i] - '0':-1;

But you can also use stoi because char will implicitly convert to a string. This has the distinct benefit of working for more than a simple char. There is minor overhead for casting a single character to a string vs the previous method, however.

int resultNumber = stoi(mystring[i]);

You can cast a whole string at once if you want (this will not work in your case because you want to check each character individually, but for a 2+ digit number it will work.)

C's atoi does the same thing but requires a char* (C style string) which will not implicitly work with a char type (casting to char* with &mystring[i] would also not work because it requires null termination).

2
  • Thank you for the helpful response – Pahjay Jul 3 '14 at 22:28
  • @Pahjay Thank you. I've included a few minor edits to further improve the quality of the answer. – M2tM Jul 3 '14 at 22:36
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This is a common mistake. Strings are merely arrays of characters, and a (basic) character is a number between 1 and 127 (excluding some special control characters). "0" as a char is represented by the number 48, and hence "0" really equals 48, since "0" is a char and 48 is an int, and they are different ways of representing the same basic data.

Luckily for you, there's a fairly easy way to solve your problem: Just convert each char to its equivalent int:

cout << strzip[1] << " is equal to: " << strzip[1] - '0' << endl;

Please notice that you cannot use cstdlib's atoi() function here since it will convert your whole string to a number, and in your case that will cause the loss of your leading zeroes, and probably overflow your int.

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