0

I have used following code in my program and while running PC-Lint it throws following error: Multiple markers at this line - (lint:46) field type should be int, unsigned int or signed int [MISRA 2004 Rule 6.4, required] - (lint:960) Violates MISRA 2004 Required Rule 6.4, Bit field must be explicitly signed int or unsigned int

typedef struct{
  boolean ch8 :1;
  boolean Ch7 :1;
  boolean Ch6 :1;
  boolean Ch5 :1;
  boolean Ch4 :1;
  boolean Ch3 :1;
  boolean Ch2 :1;
  boolean Ch1 :1;
} Channel;

Can someone tell me how to fix this?

  • What's DC_BOOL? – P.P. Nov 1 '14 at 9:00
  • 1
    Well, what's boolean? There's no type boolean in C. – P.P. Nov 1 '14 at 9:05
  • Most likely, your compiler defines boolean to be a 1 byte character type. Solve this by never using bit-fields in any situation, they are dangerous, non-portable and 100% superfluous. – Lundin Nov 10 '14 at 14:02
2

You have to do it like this:

typedef struct{
  unsigned int ch8 :1;
  unsigned int Ch7 :1;
  unsigned int Ch6 :1;
  unsigned int Ch5 :1;
  unsigned int Ch4 :1;
  unsigned int Ch3 :1;
  unsigned int Ch2 :1;
  unsigned int Ch1 :1;
} Channel;

The only types a bitfield accepts, are integer types.

  • Please note that the bits may end up in pretty much any random way when you do this. See this. – Lundin Nov 10 '14 at 14:04
0

MISRA-C:2004 is compatible with C:90 which does not have a boolean type.

To be perfectly compliant bit-fields have to be unsigned int or signed int

Alternatively, you can document a Deviation (to Rule 1.1) to permit the use of the C99 boolean type - the rationale would be straightforward, as the corresponding MISRA C:2012 Rule (R 6.1) permits the use of boolean for bit fields.

[Please note Profile disclaimer]

  • Given: struct { bool flag:1; uint8_t x:7; } foo; would the fields be eligible to be placed in the same byte of storage? Would foo.flag = 2; set the value to a zero or non-zero value? The MISRA rules are supposed to promote portability, but I don't know that implementations would treat the above consistently. – supercat Jun 24 '16 at 21:09
  • Putting the value 2 into a 1 bit sized variable is an over-flow condition whether bool is signed or unsigned. That is a basic coding error! Instinct suggests that the value should be 0 (the LSB is zero) – Andrew Jul 4 '16 at 13:37
  • Storing any non-zero value into a C99 bool is equivalent to storing the value 1; I don't know any advantage that type would have over any other if one weren't going to take advantage of that. – supercat Jul 4 '16 at 16:27
  • I wouldn't make that assumption - especially if you are using bit fields. – Andrew Jul 5 '16 at 11:39
  • I wouldn't either, but I can't think of any other reason to use bool as a bit-field type, I would be loath to assume that someone who did so wasn't relying upon such behavior. Personally, I think C99 would be better off if reading a bool to which a value other than 0 or 1 had been stored would yield an Unspecified result (avoiding the need to have the compiler generate code to coerce values that a programmer knew would always be 0 or 1). – supercat Jul 5 '16 at 14:15

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.