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Using

int main(int argc, char *argv[])

{
    double number1, number2;
    char operator;

    number1 =atof (argv[0]);
    operator =argv[1];        // line 29
    number2 =atof (argv[2]);

Compiler complains saying

29 warning: assignment makes integer from pointer without a cast [enabled by default]

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Since nobody said it yet: argv[0] is the name of the executable usually [could be other things, you can call a member of the exec family passing whatever for argv[0]], the command line arguments you want start at argv[1]. –  Daniel Fischer Dec 10 '12 at 14:00

3 Answers 3

up vote 3 down vote accepted

argv[1] is a pointer to char, you can't assign it to a char. either transform operator to char * or try operator = *(argv[1]);

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operator =argv[1];        // line 29

Here, argv[1] is of type char*. But operator is type char. That's the reason for error.

If you want to get only the operator which a single character you pass from command line then:

operator=argv[1][0];

will do.

Note that it's better to use strto* for conversion as ato* functions don't detect errors.

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Why would operator=argv[1][0]; work? –  Duncan Dec 10 '12 at 11:33
1  
@Duncan It's the first character in argv[1]. For example, if you pass + in the commandline as argv[1] then it would be "+". So when you do argv[1][0], it's the first character in argv[1] which is + here. –  Blue Moon Dec 10 '12 at 11:36

The variable operator is of type char while argv[1] is of type char *.

One is a single character, the other is a pointer to characters (i.e. a string).

PS. Even if it works when you only use pure C, you should refrain from using C++ keywords (like operator) as it will make it harder to port to C++.

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