1

I have three Pointers:

int *x,*y, *Temp;

And then I have done

x = (int *)malloc(sizeof(int)*m);
y = (int *)malloc(sizeof(int)*n);
Temp = (int *)malloc(sizeof(int)*(m+n));

where m and n are certain values.

Next, I have entered values into Temp.

  for(i=0; i < m+n; i++) {
  scanf("%d", Temp+i);
  }

I want half of Temp in x and the other half in y. How do I do this?

for(i=0; i < m; i++) {
  x[i] = Temp[i];
}

The code above to copy the contents is not working!

Also, how do I print the values?

  • 3
    Usual disclaimer: In C you should not cast the result of malloc (or any function returning void *). – Some programmer dude Oct 13 '15 at 5:29
  • 3
    As for your problem, can you please be more specific? Just saying "this is not working" doesn't really tell us much, how is it not working? Do you get build errors? Run-time errors? Unexpected results? Something else? And please try to create a Minimal, Complete, and Verifiable Example and show us. – Some programmer dude Oct 13 '15 at 5:32
  • Why did you add 2 to the size of Temp? – PC Luddite Oct 13 '15 at 5:33
  • It is compiling and running but getting a garbage value in the place. – Vidya Oct 13 '15 at 5:34
  • you may use calloc which initializes the allocated memory or use memset to set the memory locations to NULL. – Pawan Oct 13 '15 at 5:37
5

Using memcpy is probably the easiest way to accomplish what you want:

memcpy(x, Temp, m * sizeof*Temp);
memcpy(y, &Temp[m], n * sizeof*Temp);

To print the values, just use printf:

puts("Values in x:");
for(int i = 0; i < m; ++i) {
      printf("%d\n", x[i]); 
}

puts("Values in y:");
for(int i = 0; i < n; ++i) {
      printf("%d\n", y[i]);
}
  • So in this, first m values are copied to X from Temp. Then I need to increment 1 place and assign the rest (everything but the last) to y. how do i go about that? – Vidya Oct 13 '15 at 5:40
  • @Vidya Just use the example that I gave – PC Luddite Oct 13 '15 at 5:46
  • @PCLuddite Please see it once running . I think it throws garbage . – ameyCU Oct 13 '15 at 5:51
  • memcpy() is copying only half the array correctly. The other half is 0s. – Vidya Oct 13 '15 at 5:52
  • @M.M That was residual from an edit. It originally said "using memcpy and printf in a loop". I moved printf to a different section, but neglected to remove the "in a loop" part. I fixed the answer. – PC Luddite Oct 13 '15 at 5:52
3

You can use as follows to print the values. I just use M in place of m for better clarity.

for(i=0; i < M; i++) {
printf("VAL: %d\n",x[i]);
}

Similarly you can also print another array y.

  • 1
    how is M clearer than m ? – M.M Oct 13 '15 at 5:50
  • 1
    Its look clearer to me for sure. Beauty lies on the eyes of beholder after all. – Pawan Oct 13 '15 at 6:13
3

Use memcpy.It will copy desired numbre of bytes .

What I was doing is already mentioned in this answer of PC Luddite

  • for memcpy(), how many bytes should I consider? I need to put half the value in x and the other half in y – Vidya Oct 13 '15 at 5:37
0

It doesn't really look like you need to allocate all that memory, nor does it seem like you need to copy it. Consider using this alternative approach:

int* xy = malloc(sizeof(*xy) * (m+n));
int* x = xy;
int* y = xy + n;
...
free(xy);

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