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I have the below mentioned function in a large piece of code(in c++):

void startup(const char *&      start,
    const char *&   stop);

After this function has been called I want to access the character values i.e string stored between 'start' and 'stop'.

The way I am trying to access the same is:

 char *var=(c.start);
  cout<<"\n Iterating over char pointer \n";
  while(var<=(c.stop))
  {
      cout<<*var;
      var++;
  }
  cout<<"\n";

However, while trying to access it this way I am getting the below mentioned error:

  error: invalid conversion from ‘const char*’ to ‘char*’ [-fpermissive]

Can someone be kind enough to rectify the error...and help me access the character values

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What is c? Why startup changes the value of its arguments? –  K-ballo Jun 6 '12 at 3:22
    
What is c.start? –  Robᵩ Jun 6 '12 at 3:22

2 Answers 2

up vote 2 down vote accepted

All you need to do is replace the line:

char *var=(c.start);

with:

const char *var=(c.start);

Note that that const refers to the character pointed to by the pointer, not the pointer itself. So an expression like var++ is perfectly fine, since the pointer isn't const.

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@user1355603, it makes no difference in the way you use it. It only makes a difference because C++ is preventing you from doing something wrong. If the pointer wasn't to a const char then you could accidentally try to modify the string. By using const this is not allowed. –  Mark Ransom Jun 6 '12 at 3:31
    
Because start and stop were const char pointers. You're generally not allowed to copy a pointer-to-const to a pointer-to-non-const (unless you use a cast, but you should only do that if you understand what you're doing). –  Edward Loper Jun 6 '12 at 3:32

You may try this conversion in the assigning statement:

char *pc = (char *)(c.start);
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What I have here is based on my experience dealing with GCC C++ compiler, and the Visual C++ behaves a lot different, so you may just try. –  Maxthon Chan Jun 6 '12 at 3:26

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