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#include <iostream>

using namespace std;

int main()
    char strin[206];

    strin = "sds";

Why do I get this error?

error: incompatible types in assignment of 'const char [4]' to 'char [206]' //on line strin = "sds"

I am following this beginner tutorial

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Use : strcpy. Oh wait why not simply use std::string? –  Alok Save Apr 9 '13 at 9:00
Hehe, Ankur asks "why" and everybody answers "what to do" :) –  Roman Saveljev Apr 9 '13 at 9:02
I recommend ignoring that tutorial. It is... how to put this in nice wor-- nevermind the nice words. It is terrible. You won't learn C++ from it. –  R. Martinho Fernandes Apr 9 '13 at 9:03
Duplicate: –  Francisco Presencia Apr 9 '13 at 9:10
@R.MartinhoFernandes +1. I'd just add that for learning C++, SO keeps a list of good books. –  Angew Apr 9 '13 at 9:11

5 Answers 5

up vote 5 down vote accepted

The error comes from the fact that you're trying to assign one array into another. The assignment operator can't do that; you'd have to copy the array using strcpy() or std::copy().

However, since you want to work in C++, you should really be using std::string instead of char[] to store strings.

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You can not assign an array to another directly. It should be copied element to element.

Use std::strcpy from <cstring> header

char strin[206];
std::strcpy(strin, "sds");


Use std::string from <string> header

std::string strin;
strin = "sds";


Since you're using C++, choose second one.

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Your code;

strin = "sds";

should be:

strcpy(strin, "sds");
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C/C++ doesn't have string opertions built-in. You need to use either function:

strcpy(strin, "sds"); // will work in C and C++
// strncpy(strin, "sds", 205); // safer if you want to copy user-given string

or std::string:

std::string strin(206, 0);

strin = "sds"; // only C++
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strin is a array which is a const pointer to chars, not a pointer to chars. You tried to change the const pointer and this is forbidden

you need to copy the string. e.g. this way

strcpy (string, "sds");

(Aware buffer overflows in general cases!)

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So what i understood is that when copying an array, you do not actually clone the array but just get a reference to the original array, is that right? –  Joe Slater Apr 9 '13 at 9:16
xys = "123" does not copy, it just changes the pointer (if allowed). In this way it is right –  stefan bachert Apr 9 '13 at 9:19

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