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I have used lenA and lenB of int type in my program. When i passed this variable to consensus_a[] or consensus_b[], this error shown:

expression must have a constant value.

How can i pass these variables (lenA or lenB) to char consensus_a[] or consensus_b[].

A small part of my program:

    int lenA=10, lenB=15;
    char consensus_a[lenA],consensus_b[lenB];
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1  
The code in the loop doesn't have anything to do with the declarations of the arrays below. –  Joachim Pileborg Mar 3 '13 at 17:29
    
The code is valid C code. Variable length arrays are part of C99 standard. Are you compiling it as a C++ code ? –  Mahesh Mar 3 '13 at 17:29
1  
Also, what compiler do you use? Variable length array declaration was introduced in C99, if the compiler doesn't compile in C99 (or later standard) mode then that you can not use declarations like that. –  Joachim Pileborg Mar 3 '13 at 17:31
    
Where are lenA,lenB defined? –  user1944441 Mar 3 '13 at 17:34
1  
If you're writing C code, the proper solution would be to use a proper C compiler. Microsoft abandoned C for some time now, and only ships an old compiler. Try instead something like Code Blocks (codeblocks.org) or Orwell Dev-C++ (orwelldevcpp.blogspot.com) which come with GCC as their compiler, which supports C99 very well. –  Nikos C. Mar 3 '13 at 17:40

2 Answers 2

up vote 4 down vote accepted

You may be running a compiler that does not comply with C99 (possibly because it's older than that) (as already stated, the code should compile with a C99 compliant compiler).

With these compilers, for arrays in the form

char a[x];

x needs to be constant.

You could use const:

const int lenA=10, lenB=15;
char consensus_a[lenA],consensus_b[lenB];

Or enum:

enum
{
  lenA = 10,
  lenB = 15
};
char consensus_a[lenA], consensus_b[lenB];

Or #define:

#define lenA 10
#define lenB 15
char consensus_a[lenA], consensus_b[lenB];

Or malloc (if you don't want them to be constant):

char *consensus_a = malloc(lenA),
     *consensus_b = malloc(lenB);

Technically it would be:

char *consensus_a = malloc(lenA*sizeof(char)),
     *consensus_b = malloc(lenB*sizeof(char));

but sizeof(char) is 1, so including the term is unnecessary.

When using malloc, do remember to also free them after using them:

free(consensus_a);
free(consensus_b);
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i used char consensus_a = (char)malloc(lenAsizeof(char)) and char *consensus_b = (char)malloc(lenB*sizeof(char)). it's works. thanks:-) –  mahdimb Mar 3 '13 at 17:45

You compiler complains that you're trying to declare an array with variable length. That's not possible for compiler not complying to C99 standard or newer. Use constant value instead of lenA/lenB.

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1  
Variable length arrays are part of C99 standard. –  Mahesh Mar 3 '13 at 17:31
    
Yes you can. Since 14 years now. It's a long time. –  Nikos C. Mar 3 '13 at 17:32
    
can i use pointers for this problem, how? –  mahdimb Mar 3 '13 at 17:32
1  
Apparently, not for OP. Or for MSVC. @NikosC. The question is not about knowing one standard or the other. –  icepack Mar 3 '13 at 17:32
    
I'm not the one who downvoted, but maybe clarifying the answer would be nice. Like, making sure that C99 is enabled in the compiler, or not using MSVC :-) –  Nikos C. Mar 3 '13 at 17:34

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