+ 2

Why can't I put 2 asterisks for ptr2?

int main() { float arr[5] = {12.5, 10.0, 13.5, 90.5, 0.5}; float *ptr1 = &arr[0]; float *ptr2 = ptr1 + 3; //Why not **ptr2? printf("%f ", *ptr2); printf("%d", ptr2 - ptr1); //Why the output is 3?? return 0; }

9th Apr 2019, 2:58 PM
Konybud
Konybud - avatar
5 Respuestas
+ 9
Konybud , ~ swim ~ has all your questions answered.
10th Apr 2019, 2:49 AM
Sonic
Sonic - avatar
+ 4
I’m still learning C myself so will welcome anyone correcting me if I’m wrong: Firstly, an array variable name acts as a pointer to the array’s first element. You can write float *ptr1 = arr; and that should be fine Next, when doing ptr2 - ptr1 this is taking the memory address of ptr2 and subtracting from ptr1 you can do printf(“%x”... for both ptr2, ptr1 to see you are not accessing the array’s elements, you are working with the memory addresses themselves. I don’t know how 3 is calculated but even with replacing %d with %x in the subtraction printf line, I got 3 too If I’m guessing correctly you want to subtract elements, use *ptr2 - *ptr1 and that should do your 4th element minus the 1st element If your question is out of curiosity how 3 is calculated, I’m not sure But yes, you can point to a pointer. **ptr would work if you declared float **ptr = &ptr1 as the double asterisk means I am pointing to a pointer and &ptr1 is saying here is the address of that variable/pointer The subtraction will then be *ptr2 - **ptr with the double asterisk being used to access the value (not using the memory address as is) Without declaring **ptr, this would be using ptr1 as follows float *ptr2 = &ptr1 + 3; and *ptr2 - **(&ptr1) in the subtraction
9th Apr 2019, 4:43 PM
Jenine
+ 3
Thank you everybody.
10th Apr 2019, 5:06 AM
Konybud
Konybud - avatar
+ 1
How about the ptr2? Why not **ptr2? (fifth line).
25th Apr 2019, 10:44 PM
Konybud
Konybud - avatar