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This question already has an answer here:

Hai I want to know why this sizeof() behaves differently in main and in function...Please help me I am a beginner in C++...In the main pslL_Length shows 8 (Size we calculate on main () is 8) , but after executing the function "returned value is 1".....

#include<iostream>
using namespace std;
int fnG_getSize( int pslL_Array[])
{
    int slL_Size = sizeof(pslL_Array)/sizeof(pslL_Array[0]);
    return slL_Size;
}

int main()
{
    int pslL_Array1[] = { 1,2,3,4,5,6,7,8 };
    int slL_Length = sizeof(pslL_Array1)/sizeof(pslL_Array1[0]);
    printf("Size we calculate on main () is %d\n", slL_Length );
    printf("returned value is %d\n", fnG_getSize(pslL_Array1) );
    return 0;
 }
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marked as duplicate by Daniel Daranas, delnan, juanchopanza, Benjamin Bannier, Cody Gray May 16 '13 at 13:35

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
Too bad this was closed. There's an answer available for C++ that doesn't work in C, which is the tag on the other question. – Mark Ransom May 16 '13 at 13:40

The reason is because the argument pslL_Array is not of array type. Array type arguments are transformed to pointers, so your function is really the equivalent of:

int fnG_getSize(int* pslL_Array)
{
    // ...
}

So inside this function, sizeof(pslL_Array) gives you the size of the pointer, not of the array you passed.

share|improve this answer

yeah, that's because

int fnG_getSize( int pslL_Array[])

decays to

int fnG_getSize( int* pslL_Array)

There's no information about array size here and pslL_Array is only a pointer, so size of it is same as size of a pointer

share|improve this answer
    
Then how we can calculate the size of an array when we are passing to function.....Please give me the solution for that...... – user2390140 May 16 '13 at 14:19
    
in c++ you use vector for that – spiritwolfform May 17 '13 at 8:37

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