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I've been trying to get some head start on my programming diploma and decided to teach myself some C++ just to know what I'm getting into. So my situation is that I've initialized a string variable called thisIsAString by assigning it the value of a deferenced pointer pointing to an integer variable. I thought it wouldn't work since they're not really compatible variable types but it did gave me \350 when outputting the result to the console. I'm looking to understand what it actually means. This is the code:

#include <iostream>
using namespace std; 

int main()
{
   string thisIsAString; 
   int randomVariable = 32; 

   int *ptrRandomVar = &randomVariable;
   *ptrRandomVar = 1000; 

   thisIsAString = *ptrRandomVar; 

   cout << thisIsAString << endl;
 }

So when I output this it gives me the result \350 and I don't have a clue what it means.

All help is appreciated :) ! Thank you for your time.

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4  
It's not supposed to mean anything, what you are doing it just wrong. –  Joachim Pileborg Jul 5 '13 at 7:51
    
You are trying to assign an int to a std::string –  Alexis Jul 5 '13 at 7:52
    
This is the equivalent of sticking fish into your pillow and then being amazed that the pillow smells of fish when you go to sleep :-) Like Joachim Pileborg said above -- what you did does not make sense. –  Cristina Jul 5 '13 at 7:54
2  
possible duplicate of Why does C++ allow an integer to be assigned to a string? –  djf Jul 5 '13 at 8:00
2  
@JoachimPileborg For fairness' sake it should be said that what we have here is an implicit conversion from int to char, which is a standard conversion (even though it causes a loss of precision), and doesn't get a warning by default, not even with -W -Wall. On GCC and Clang, you need to add -Wconversion explicitly to get a warning here. Not sure about other compilers. –  jogojapan Jul 5 '13 at 8:14

3 Answers 3

   thisIsAString = *ptrRandomVar; 

is the key line. *ptrRandomVar has the value 1000 (in decimal). This is converted into a char using the standard conversion rules, which will truncate it to 232 (1000 in hex is 0x3e8, which truncated gives 0xe8 == 232). That gives you a string containing the character with the value 232.

When you print that character your standard library does not know how to print the character with the value 232, so it is writing it out in octal for you (I have no idea if this is standard), which gives you the character "\350" where 0350 is 232 in octal.

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Your answer has been saved ! I'm going to do a bit of googling on that for sure. Thanks for your time. –  Confiture Jul 5 '13 at 8:04

;TLDR 1000 = 0x3E8 -> char 0xE8 = 232 = \350 (octal)

This is what happens step by step:

  • *ptrRandomVar = 1000; 1000 gets encoded as 0x3E8, meaning in memory you get E8030000... assuming you're using a little-endian platform.

  • thisIsAString = *ptrRandomVar; Now you assign this int to your string. Your compiler does not complain ! You can initialize a string with a char (which is also a 1 byte integer type), and you can use an implicit numeric conversion from int to char. So your string is now size 1 and char has value 0xE8 (the rest got truncated)

  • cout << thisIsAString << endl; You ask to ouput the string : with no other specific code, the output is standard ASCII encoding. However 0xE8 (=232) is out of standard ASCII scope (which stops at 127). So the default behaviour is to output its octal value, preceded by a backslash. And 232 (0xE8) gives you \350 in octal.

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Thanks a loooot. –  Confiture Jul 5 '13 at 8:20

You can convert integer to character string and then assigned it.

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