0

what's problem here? it shows a bug, help me I'm a beginner. can I use double in array?

    #include <stdio.h>
    int main()
    {
    double a;
    scanf("%lf",&a);
    double s[a];
    double b,c=0, d;
    for(b=0;b<a;b++){
    scanf("%lf",&s[b]);
    }
    for(b=0;b<a;b++){
    c = c + s[b];
    d=b+1;
    printf("%lf\n",c/d);
    }
    return 0;
    }
  • 1
    Size of array can't be non-integer for obvious reasons. – Eugene Sh. Jan 29 at 17:54
  • Elaborating on Eugene's comment, the simplest/easiest way to fix this is: int a; scanf("%d",&a); – Craig Estey Jan 29 at 17:59
3

Use this :

int a;
scanf("%d",&a);

Rest of your code is just fine .

  • 1
    Not a fan of making it a user-supplied signed int, since that may be negative – Govind Parmar Jan 29 at 18:02
  • still shows a bug – Md. Masrur Saqib Jan 29 at 18:04
  • That same old problem . You need to use Integer , when you are accessing element using index . But you have declared variable 'b' as Double , that must be an Integer. – Maifee Ul Asad Jan 29 at 18:11
  • Here is the code , you actually wanted . – Maifee Ul Asad Jan 29 at 18:13
  • Mr. Govid good point . We can create a function of our own , for that . – Maifee Ul Asad Jan 29 at 18:24
4

In case it isn't clear, your array cannot be of double length. It's undefined behavior.

This is because a double is not an integer, but a rational number that could be an integer. A simple way to understand this issue is to take some floating point value, say 3.5.

What is an array of length 3.5 Is it 3 and a half slots of some size in contiguous memory? Is is enough slots for 3? 4? 3.5 slots would likely be useless and unintended, and if it's not a fractional slot, it might be unclear and likely unintended, hence undefined behaviour.

While the other people have proposed solutions creating an integral type, you cannot create an array of double length. You can create an array of doubles, ie

double arr[5];

But you can't create an array of double length like

int arr[3.3];
  • thanks, but can I compare a double with a int? – Md. Masrur Saqib Jan 29 at 18:05
  • You can, but there can be issues - stackoverflow.com/questions/11189026/… – Daniel Jan 29 at 18:08
  • I didn't understand that, pls simplify if you can... Thanks in advance – Md. Masrur Saqib Jan 29 at 18:15
  • A floating point number has finite precision and comparisons might not function as intended, but afaik it's well-defined and you can compare them. – Daniel Jan 29 at 18:17
  • Thanks brother. – Md. Masrur Saqib Jan 29 at 18:20
2

While variable length arrays are supported in modern C, the size of an array must be positive and integral.

What you could do instead is round to the nearest size_t:

size_t ASIZE = ceil(fabs(a));
double s[ASIZE];

Include <math.h> to access ceil and fabs.

2

You cannot use floating-point types (float or double) to specify an array size or array index:

6.7.6.2 Array declarators

Constraints

1 In addition to optional type qualifiers and the keyword static, the [ and ] may delimit an expression or *. If they delimit an expression (which specifies the size of an array), the expression shall have an integer type. If the expression is a constant expression, it shall have a value greater than zero. The element type shall not be an incomplete or function type. The optional type qualifiers and the keyword static shall appear only in a declaration of a function parameter with an array type, and then only in the outermost array type derivation.

C 2011 Online Draft

6.5.2.1 Array subscripting

Constraints

1 One of the expressions shall have type ‘‘pointer to complete object type’’, the other expression shall have integer type, and the result has type ‘‘type’’.

ibid.

So a and b must be of integral type - I typically use size_t for array size and index variables:

size_t a;

printf( "Gimme the array size: " );
scanf( "%zu", &a );

double s[a];

for ( size_t b = 0; b < a; b++ )
  scanf( "%lf", &s[b] );
  • I find it a bit curious that the standard doesn't declare an array size given in an expression evaluating to a negative integral value to be undefined behavior. It is definitely something to avoid. – Govind Parmar Jan 29 at 18:34
  • 1
    @GovindParmar: If the array size is a constant expression, then a negative value is a constraint violation and requires a diagnostic. If it's not a constant expression, and is negative, then it is indeed undefined behavior (see 6.7.6.2/5). – John Bode Jan 29 at 18:42

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