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Editorial Team
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Asked: 2026-06-17T09:01:08+00:00

double *f(int n, double v) { double *a, *p; a = malloc(n * sizeof(double));

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double *f(int n, double v)
{
  double *a, *p;
  a = malloc(n * sizeof(double));
  if (a != NULL)
    for (p = a; p < a + n; p++)
      *p = v;
  return a;
}

Can you explain me what this function is needed for? Does it copy the content of v in n? If yes, why does it return a? I really don’t get it… Thanks in advance.

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1 Answer

  1. Editorial Team
    double *f(int n, double v) 
{
  double *a, *p;
  a = malloc(n * sizeof(double));  // allocate memory enough for "n" doubles (an array)
  if (a != NULL)                   // if the allocation was successful
    for (p = a; p < a + n; p++)    // loop from the beginning of the array to the end
      *p = v;                // fill every element of the array with the value "v"
  return a;                  // return the new array
}

    So if I called this function:

    double * myarray;
myarray = f(3, 1.3);

    Now I have:

    myarray[0] = 1.3
myarray[1] = 1.3
myarray[2] = 1.3

    So to answers your questions:

    Can you explain me what this function is needed for?

    • allocates and initializes an array of doubles.

    Does it copy the content of v in n?

    • No. Considering v is a double and n is an int, that doesn’t even make sense. It makes an array n large and initializes it with the value v.

    If yes, why does it return a?

    • It returns a so you have a reference to the newly created array. (see example above on how it could be used)
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