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I have an executable called as a shell script:

./lineGraph argv[1] argv[2] ... argv[9]

It creates an instance of the class lineGraph (code simplified tremendously here):

class lineGraph
{
  string z[3];

  lineGraph(string lumi, string label, char *typeArg, string volume, string axisStyle, string theLine, string z1, string z2, string z3)
  {
    this->z[0]=z1;
    this->z[1]=z2;
    this->z[2]=z3;
  }
}

public int main(int argc, char* argv[])
{
  lineGraph *graphData = new lineGraph(argv[1], argv[2], argv[3], argv[4], argv[5], argv[6], argv[7], argv[8], argv[9]);
};

And I get:

lineGraph.cc:251: error: cannot convert ‘std::string’ to ‘char’ in assignment
lineGraph.cc:252: error: cannot convert ‘std::string’ to ‘char’ in assignment
lineGraph.cc:253: error: cannot convert ‘std::string’ to ‘char’ in assignment

Here:

this->z[0]=z1;
this->z[1]=z2;
this->z[2]=z3;

I'm curious about a solution, and also an explanation of why it's giving me an error (I'm setting an element of a string[] to a string, which I'd think would be permissible). There's probably something fundamental I'm missing, as my C++ is rusty.

Thanks in advance!

Edit: issue resolved. Was a sneaky variable declaration overwriting the z[] declaration.

share|improve this question

closed as unclear what you're asking by 0x499602D2, rightfold, khr055, bensiu, Graviton Jul 12 '13 at 2:53

Please clarify your specific problem or add additional details to highlight exactly what you need. As it's currently written, it’s hard to tell exactly what you're asking. See the How to Ask page for help clarifying this question.If this question can be reworded to fit the rules in the help center, please edit the question.

5  
Please post real code. argv is not declared in main above. – John Dibling Jul 2 '13 at 16:28
1  
Well, for a start, argv doesn't exist. That's how we know this testcase is nonsense. Show us your real code; the code that you've been debugging; the code that you've been attempting to compile.. the code that actually contains the fault. – PreferenceBean Jul 2 '13 at 16:28
2  
Just a guess but it looks like z in your real code is probably declared as a string instead of an array of strings. Post your real code and you'll get a real solution. – Captain Obvlious Jul 2 '13 at 16:30
1  
(code simplified tremendously here) Well done for doing this, but you really should have done it before doing your final debugging, and you definitely should have tested it before posting it here! It makes the problem go away (and introduces a new one). – PreferenceBean Jul 2 '13 at 16:31
4  
Why you no lineGraph graphData(argv[1], argv[2], argv[3], argv[4], argv[5], argv[6], argv[7], argv[8], argv[9]);? – milleniumbug Jul 2 '13 at 16:32

There are several errors in the code:

  1. Missing ; after the class declaration.
  2. argv is not declared, you should write int main(int argc, char *argv[]).
  3. Constructor of the class is private (should be public).

But after correcting these errors the code compiles just fine. There is no any cannot convert std::string to char error.

Probably you are trying to compile something different, not the code you show us.

share|improve this answer

The only way I was able to reproduce the errors you get is to change z to a single string instead of an array of strings. The example below produces the same results you are gettings

class lineGraph
{
    string z;

public:
    lineGraph(string lumi, string label, char * /*typeArg*/, string volume, string axisStyle, string theLine, string z1, string z2, string z3)
    {
        this->z[0]=z1;
        this->z[1]=z2;
        this->z[2]=z3;
    }
};

This produces the following results on VS2010. The error codes may vary slightly depending on the toolchain you are using.

main.cpp(587): error C2440: '=' : cannot convert from 'std::string' to 'char'
1> No user-defined-conversion operator available that can perform this conversion, or the operator cannot be called
1>main.cpp(588): error C2440: '=' : cannot convert from 'std::string' to 'char'
1> No user-defined-conversion operator available that can perform this conversion, or the operator cannot be called
1>main.cpp(589): error C2440: '=' : cannot convert from 'std::string' to 'char'
1> No user-defined-conversion operator available that can perform this conversion, or the operator cannot be called

Double check your actual code and make sure z is decalred as an array like so

class lineGraph
{
    string z[3];

    // ...more REAL code...
};
share|improve this answer
    
This fixed the issue: I had a sneaky "string z" hiding somewhere, overwriting the "string z[]". – Michael Farmer Jul 2 '13 at 18:18

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