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I have the following code:

main()
{
 uint8_t readCount;
 readCount=0;
 countinfunc(&readCount);
}

countinfunc(uint8_t *readCount)
{
 uint8_t i;
 i = readCount;
 ....
}

Problem is that when it enters in the function the variable i has a different value then 0 after the assignment.

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closed as too localized by Karoly Horvath, H2CO3, Mike, bstpierre, Graviton Oct 28 '12 at 6:49

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khm.. that shouldn't compile – Karoly Horvath Oct 25 '12 at 13:11
    
@Karoly Horvath could be casting – MOHAMED Oct 25 '12 at 13:12
    
may be automatically made by the builder – MOHAMED Oct 25 '12 at 13:13
    
compile with warnings and all will be clear. – Art Oct 25 '12 at 13:14
1  
warning: assignment makes integer from pointer without a cast [enabled by default] and warning: return type defaults to int – Karoly Horvath Oct 25 '12 at 13:15
up vote 8 down vote accepted

It's because in countinfunc the variable is a pointer. You have to use the pointer dereference operator to access it in the function:

i = *readCount;

The only reason to pass a variable as a reference to a function is if it's either some big data that may be expensive to copy, or when you want to set it's value inside the function to it keeps the value when leaving the function.

If you want to set the value, you use the dereferencing operator again:

*readCount = someValue;
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countinfunc(uint8_t *readCount)
{
 uint8_t i;
 i = *readCount;
 ....
}
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replace

i = readCount;

with

i = *readCount;
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You're setting i to the address of readCount. Change the assignment to:

i = *readCount;

and you'll be fine.

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I can't believe I didn't try that. – dare2k Oct 25 '12 at 13:15

just replace

i=readCount by i=*readCount

You cannot assign (uint8_t *) to uint8_t

For more on this here is the link below Passing by reference in C

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