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Please tell me why the following code runs even on a strict C-99 compiler:

#include <stdio.h>
int main()
{
    int n;
    scanf("%d",&n);
    int a[n];
    a[1]=10;
    a[2]=5;
    printf("%d %d",a[1],a[2]);
}

The variable declaration must occur before any other statements in C right? If we so want a dynamically allocated array, we have to use memory allocation functions like malloc() but how come it is taking and input integer and allocating that sized array?

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Both variable-length arrays and intermingled declarations/code were added in C99. –  Mysticial Jul 17 '12 at 5:15

4 Answers 4

up vote 5 down vote accepted

This is known as a variable-length array, and is supported by the C99 standard.
This does not work in C89 or any version of C++.

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this is working on normal C compiler too, but i thought the original C standard doesn't allow it –  sasidhar Jul 17 '12 at 5:15
1  
@sasidhar: Define "normal C compiler", please. Most C compilers don't fully support any language standard by default; you typically have to add additional command-line arguments. For gcc, -ansi -pedantic causes it to conform quite closely to C89/C90; for (almost) C99 conformance, use -std=c99 -pedantic. –  Keith Thompson Jul 17 '12 at 5:16
1  
Right! C89/C90 requires all variable declarations to be at the beginning of a block. This is very definitely only valid C99 code. –  Prashant Kumar Jul 17 '12 at 5:16
1  
@Prashant: Or it could be taking advantage of a compiler-specific extension; gcc supports mixed declarations and statements even when not in C99 mode. –  Keith Thompson Jul 17 '12 at 5:18
2  
If "it" means using non-constant expressions to allocate variable-length arrays, then no. If "it" means intermixing declarations and statements, then yes. –  Prashant Kumar Jul 17 '12 at 5:37

In fact, there are two mechanisms in this code snippet that are not allowed in C90, but are in C99. The first is the variable size array declaration, using a[n]. The second is the mixing of declaration and code, with a being declared after a line of code.

I find this list by David Tribble handy. It is focused around C++ but gives you a good overview about the differences between C90 and C99 as well.

If we so want a dynamically allocated array, we have to use memory allocation functions like malloc()

Apparently you already know, but worth mentioning anyway: malloc() is used to allocate memory on the heap. The array in your example is allocated on the stack, which is a different mechanism. See this answer for an excellent explanation of the differences.

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agreed, i am not more concerned about where the allocation is done. My question is weather the C Standard allows it? –  sasidhar Jul 17 '12 at 5:17
    
C99 does. See here for more information about C99 and C90 -- I know that page is mostly about C++ but has good information about C as well, with exact references where to look in the language specifications. –  Reinier Torenbeek Jul 17 '12 at 5:22

The feature is called variable length arrays, and to answer your question specifically, they were introduced in the C99 standard (probably some C compilers had them before, but any C99-compliant compiler must have them).

You'll find plenty of SO answers recommending you don't use them. With malloc(), there is a defined interface for memory allocation to fail: the call returns NULL. With VLA, there is no such interface: it's undefined behavior what happens when an allocation fails.

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C99 allows for variable length arrays as in your example.

here is an artcile about it explaining more

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