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I define a NULL_PTR as 0U

Then call a function with this NULL_PTR as argument.

read_some_data(2U, (uint8_t *const) NULL_PTR, (uint8_t *const) NULL_PTR);

Called function prototype:

int16_t read_some_data(const uint8_t id,   uint8_t *const data_1, uint8_t *const data_2);

On compilation, Misra raised a rule 11.3 violation error.(A cast should not be performed between a pointer type and an integral type.)

But if I just pass the NULL_PTR as follows, no violation.

read_some_data(2U, NULL_PTR, NULL_PTR);

Which is the better way to do? Suppress Misra 11.3 rule or just pass the NULL_PTR without casting?

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NULL_PTR should be defined as (void *)0. Note that this is different from C++, where you can just define it as 0. – Paul R Mar 28 '11 at 12:26
    
@Paul R. why? 0u is a null pointer constant in both C and C++. (void*)0 is a null pointer constant in C but not in C++. It's ambiguous in either whether NULL_PTR is intended to have pointer type, or to be a null pointer constant, so I've nothing against it being (void*)0, but presumably defining it that way will trigger the Misra rule and so is not an option here anyway. In C++ it pretty much has to be integer type to be useful, since there's no implicit conversion from void* to other pointer types, so (void*)0 can't be assigned without a cast. – Steve Jessop Mar 28 '11 at 12:39
    
AFAIK, the main issue with it having integer type rather than pointer type is what happens when you foolishly use it in varargs without casting, because people wrongly think they know what type NULL has, and are more likely to wrongly think it's a pointer than to wrongly think it's specifically int as opposed to another integral type. If Misra bans casting, then you're pretty much screwed there, you'll have to create a temporary pointer variable to contain the value. The same would apply to unprototyped function calls, but surely Misra bans those too? – Steve Jessop Mar 28 '11 at 12:45
    
What kind of foolish rule is Misra 11.3 if it disallows (void *)0 ? That expression is guaranteed to produce a null pointer constant. – u0b34a0f6ae Nov 7 '11 at 20:27
1  
MISRA does not ban casting - but 0u is not a pointer, it is an integral value. @PaulR is correct! – Andrew Aug 6 '15 at 19:23

What is wrong with the Standard 'NULL'?

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Does it trigger the Misra rule? C implementations are allowed to (and indeed often do) define NULL as (void*)0, which is a cast between pointer and integral types... – Steve Jessop Mar 28 '11 at 12:41

Why cast if you can avoid it? Cast always makes code a little bit more dirty and hints that there is something hacky performed.

So I would just pass NULL_PTR without casting. After checking function specification that it can accept NULL_PTR as its second parameter!!!

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up vote 1 down vote accepted

I used NULL_PTR in my header file to avoid using IAR internal configuration file yvals.h which defines NULL. But that's not an issue since I may have to use yvals.h later due to other reasons.

Whether using NULL or NULL_PTR, I assume that the general consensus is to pass NULL without casting. My function doesn't have any problem in accepting it. This way, I can avoid suppressing Misra 11.3 rule.

Hope I am proceeding the right way.

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I can't define NULL_PTR as (void*)0U since it again violates Misra rule 11.3. I left it 0U and passed the NULL_PTR with no cast. – Ammamon Mar 29 '11 at 5:12

On compilation, Misra raised a rule 11.3 violation error.

Just to be pedantic, MISRA did not raise a violation error, your compiler raised a MISRA rule violation error.

From what you've posted, I'm not convinced the reported violation is correct...

On the other hand, personally I'd define NULL_PTR as (void *)0u because (strictly speaking) 0 is not a pointer.

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