The recent #def #enddef proposal[1] would eliminate the need for backslashes to define readable macros, making this pattern much more pleasant, finger crossed for its inclusion in C2Y!
While long-def's might be nice, you can even back in ANSI C 89 get rid of the backslash pattern (or need to cc -E and run through GNU indent/whatever) by "flipping the script" and defining whole files "parameterized" by their macro environment like https://github.com/c-blake/bst or https://github.com/glouw/ctl/
Add a namespacing macro and you have a whole generics system, unlike that in TFA.
So, it might add more value to have the C std add an `#include "file.c" name1=val1 name2=val2` preprocessor syntax where name1, name2 would be on a "stack" and be popped after processing the file. This would let you do types/functions/whatever "generic modules" with manual instantiation which kind of fits with C (manual management of memory, bounds checking, etc.) but preprocessor-assisted "macro scoping" for nested generics. Perhaps an idea to play with in your slimcc fork?
hyperbolablabla 2 hours ago [-]
I really don't think the backslashes are that annoying? Seems unnecessary to complicate the spec with stuff like this.
JonChesterfield 3 hours ago [-]
Not personally interested in this hack, but https://www.open-std.org/jtc1/sc22/wg14/www/docs/n3037.pdf means struct foo {} defined multiple times with the same fields in the same TU now refers to the same thing instead of to UB and that is a good bugfix.
If you're reaching for that hack, just use C++? You don't have to go all in on C++-isms, you can always write C-style C++ and only use the features you need.
waynecochran 1 hours ago [-]
Not always a viable option -- especially for embedded and systems programming.
unwind 7 hours ago [-]
I think this is an interesting change, even though I (as someone who has loved C for 30+ years and use it daily in a professional capacity) don't immediately see a lot of use-cases I'm sure they can be found as the author demonstrates. Cool, and a good post!
glouwbug 3 minutes ago [-]
Templates in C. Combined with C23's auto (see vec_for) you can technically back port the entirety of C++'s STL this way. gcc test.c -std=c23. It is a _very_ useful feature:
I still don't understand how these arguments make sense for new code. Naturally, sizes should be unsigned because they represent values which cannot be unsigned. If you do pointer/size arithmetic, the only solution to avoid overflows is to overflow-check and range-check before computation.
You cannot even check the signedness of a signed size to detect an overflow, because signed overflow is undefined!
The remaining argument from what I can tell is that comparisons between signed and unsigned sizes are bug-prone. There is however, a dedicated warning to resolve this instantly.
It makes sense that you should be able to assign a pointer to a size. If the size is signed, this cannot be done due to its smaller capacity.
Given this, I can't understand the justification. I'm currently using unsigned sizes. If you have anything contradicting, please comment :^)
sparkie 3 hours ago [-]
C offers a different solution to the problem in Annex K of the standard. It provides a type `rsize_t`, which like `size_t` is unsigned, and has the same bit width, but where `RSIZE_MAX` is recommended to be `SIZE_MAX >> 1` or smaller. You perform bounds checking as `<= RSIZE_MAX` to ensure that a value used for indexing is not in the range that would be considered negative if converted to a signed integer. A negative value provided where `rsize_t` is expected would fail the check `<= RSIZE_MAX`.
IMO, this is a better approach than using signed types for indexing, but AFAIK, it's not included in GCC/glibc or gnulib. It's an optional extension and you're supposed to define `__STDC_WANT_LIB_EXT1__` to use it.
I don't know if any compiler actually supports it. It came from Microsoft and was submitted for standardization, but ISO made some changes from Microsoft's own implementation.
Pointer arithmetic that could overflow would probably involve a heap and therefore be less likely to require a relative, negative offset. Just use the addresses and errors you get from allocation.
sim7c00 4 hours ago [-]
I dont know either.
int somearray[10];
new_ptr = somearray + signed_value;
or
element = somearray[signedvalue];
this seems almost criminal to how my brain does logic/C code.
The only thing i could think of is this:
somearray+=11;
somearray[-1] // index set to somearray[10] ??
if i'd see my CPU execute that i'd want it to please stop. I'd want my compiler to shout at me like a little child, and be mean until i do better.
-Wall -Wextra -Wextra -Wpedantic <-- that should flag i think any of these weird practices.
As you stated tho, i'd be keen to learn why i am wrong!
windward 1 hours ago [-]
In the implementation of something like a deque or merge sort, you could have a variable that represents offsets from pointers but which could sensibly be negative. C developers culturally aren't as particular about theoretical correctness of types as developers in some other languages - there's a lot of implicit casting being used - so you'll typically see an `int` used for this. If you do wish to bring some rigidity to your type system, you may argue that this value is distinct from a general integer which could be used for any arithmetic and definitely not just a pointer. So it should be a signed pointer difference.
Arrays aren't the best example, since they are inherently about linear, scalar offsets, but you might see a negative offset from the start of a (decayed) array in the implementation of an allocator with clobber canaries before and after the data.
ncruces 4 hours ago [-]
> It makes sense that you should be able to assign a pointer to a size. If the size is signed, this cannot be done due to its smaller capacity.
Why?
By the definition of ptrdiff_t, ISTM the size of any object allocated by malloc cannot be out of bounds of ptrdiff_t, so I'm not sure how can you have a useful size_t that uses the sign bit?
Skeeto and Stroustrup are a bit confused about valid index types. They prefer signed, which will lead to overflows on negative values, but have the advantage of using only half of the valid ranges, so there's more heap for the rest. Very confused
o11c 22 minutes ago [-]
Are we getting a non-broken `_Generic` yet? Because that's the thing that made me give up with disgust the last project I tried to write in C. Manually having to do `extern template` a few times is nothing in comparison.
tialaramex 6 hours ago [-]
It seems as though this makes it impossible to do the new-type paradigm in C23 ? If Goose and Beaver differ only in their name, C now thinks they're the same type so too bad we can tell a Beaver to fly even though we deliberately required a Goose ?
yorwba 5 hours ago [-]
"Tag compatibility" means that the name has to be the same. The issue the proposal is trying to address is that "struct Goose { float weight; }" and "struct Goose { float weight; }" are different types if declared in different locations of the same translation unit, but the same if declared in different translation units. With tag compatibility, they would always be treated as being the same.
"struct Goose { float weight; }" and "struct Beaver { float weight; }" would remain incompatible, as would "struct { float weight; }" and "struct { float weight; }" (since they're declared without tags.)
tialaramex 5 hours ago [-]
Ah, thanks, that makes sense.
Surac 6 hours ago [-]
i fear this will make slopy code compile more often OK.
poly2it 5 hours ago [-]
Dear God I hope nobody is committing unreviewed LLM output in C codebases.
pests 59 minutes ago [-]
No worries, the LLM commits it for you.
ioasuncvinvaer 6 hours ago [-]
Can you give an example?
Rendered at 15:33:34 GMT+0000 (UTC) with Wasmer Edge.
[1] https://www.open-std.org/jtc1/sc22/wg14/www/docs/n3531.txt
Add a namespacing macro and you have a whole generics system, unlike that in TFA.
So, it might add more value to have the C std add an `#include "file.c" name1=val1 name2=val2` preprocessor syntax where name1, name2 would be on a "stack" and be popped after processing the file. This would let you do types/functions/whatever "generic modules" with manual instantiation which kind of fits with C (manual management of memory, bounds checking, etc.) but preprocessor-assisted "macro scoping" for nested generics. Perhaps an idea to play with in your slimcc fork?
https://www.youtube.com/watch?v=wvtFGa6XJDU
You cannot even check the signedness of a signed size to detect an overflow, because signed overflow is undefined!
The remaining argument from what I can tell is that comparisons between signed and unsigned sizes are bug-prone. There is however, a dedicated warning to resolve this instantly.
It makes sense that you should be able to assign a pointer to a size. If the size is signed, this cannot be done due to its smaller capacity.
Given this, I can't understand the justification. I'm currently using unsigned sizes. If you have anything contradicting, please comment :^)
IMO, this is a better approach than using signed types for indexing, but AFAIK, it's not included in GCC/glibc or gnulib. It's an optional extension and you're supposed to define `__STDC_WANT_LIB_EXT1__` to use it.
I don't know if any compiler actually supports it. It came from Microsoft and was submitted for standardization, but ISO made some changes from Microsoft's own implementation.
https://www.open-std.org/JTC1/SC22/WG14/www/docs/n1173.pdf#p...
https://www.open-std.org/JTC1/SC22/WG14/www/docs/n1225.pdf
int somearray[10];
new_ptr = somearray + signed_value;
or
element = somearray[signedvalue];
this seems almost criminal to how my brain does logic/C code.
The only thing i could think of is this:
somearray+=11; somearray[-1] // index set to somearray[10] ??
if i'd see my CPU execute that i'd want it to please stop. I'd want my compiler to shout at me like a little child, and be mean until i do better.
-Wall -Wextra -Wextra -Wpedantic <-- that should flag i think any of these weird practices.
As you stated tho, i'd be keen to learn why i am wrong!
Arrays aren't the best example, since they are inherently about linear, scalar offsets, but you might see a negative offset from the start of a (decayed) array in the implementation of an allocator with clobber canaries before and after the data.
Why?
By the definition of ptrdiff_t, ISTM the size of any object allocated by malloc cannot be out of bounds of ptrdiff_t, so I'm not sure how can you have a useful size_t that uses the sign bit?
"struct Goose { float weight; }" and "struct Beaver { float weight; }" would remain incompatible, as would "struct { float weight; }" and "struct { float weight; }" (since they're declared without tags.)