Good C style is that every function that accepts a callback should also accept an opaque context pointer it then passes through unchanged to the callback. Usually the caller will allocate a structure on the stack or the heap, stash some of its local variables there, then use them in the callback. A nested function does the structure back-and-forth for you in the stack-allocated case. In GCC’s original formulation it also passes the context pointer implicitly
size_t filter(bool (*predicate)(int), int *p, size_t n) {
for (size_t r = 0, w = 0; r < n; r++) {
if (predicate(p[r])) p[w++] = p[r];
}
return w;
}
size_t lowpass(int limit, int *p, size_t n) {
bool lower(int value) {
return value < limit; // use the parent's local variable
}
return filter(lower, p, n);
}
but that requires an executable stack and TFA is about avoiding that part.
For a counterpoint, see David R. Hanson's "Is block structure necessary?" (1981) [0] — back in those days, "block structure" meant nested routines with nested scopes — which argues that having instead a proper module system, with explicit control over what's being exported from a module, not only gives a better modularity, decomposition, and encapsulation, but also simplifies both the language's implementation, and the run-time structures it needs (remember displays, and the hardware support for them e.g. x86's ENTER?).
Block structure is traditionally considered an a priori requirement for algorithmic program-
ming languages. Most new languages since Algol-60 have block structure. Reasons exist,
however, to omit the general form of block structure — nested procedure definitions in which
references to identifiers defined in outer procedures are permitted — from programming
languages, especially those intended for systems programming applications. This paper
reviews the concept of block structure and considers its advantages and disadvantages. It
concludes that, in many cases, a module facility is superior to block structure and should be
considered in lieu of block structure in future languages.
Lambdas are just anonymous nested functions. But I like named nested functions more because they are more readable and would prefer them in most cases.
Ideally you have both as most languages have.
I always wondered why C++ only added lambdas, but observing WG21 for a while, I assume this is just a random walk in language design. (not that it is different in WG14)
C++ bundles together a way to write functions inline in an expression (what I’d call “lambdas” in general) and a way to create closures with strictly nested lifetimes, but there’s no law of nature tying the two together. Even in C++ the essentially separate declaration “auto f = [&](... blah ...) { ... 50 lines of code ... };” is pretty common. (And of course GCC’s nested functions predate C++11 by twenty years.)
For the non-capturing case: mainly to improve readability by allowing utility functions to be defined close to where they are used and with short names.
For the capturing case: to access context that is not available through global variables or function arguments, i.e., the same reason why closures are useful in other languages.
Here's an example, where I have a list of points that I want to sort based on distance to a chosen target point. I can use qsort() which takes an arbitrary comparison function, but has no way to provide context to that function beyond the input arguments:
#include <stdio.h>
#include <stdlib.h>
int main() {
struct Point {
int x, y;
} points[3] = {
{ 3, 1 },
{ 2, 2 },
{ 5, 7 } };
struct Point target = { 4, 5 };
long dsq(const struct Point *p) {
long dx = p->x - target.x, dy = p->y - target.y;
return dx*dx + dy*dy;
}
int compare(const void *p, const void *q) {
long a = dsq(p), b = dsq(q);
return (a > b) - (a < b);
}
qsort(points, 3, sizeof(struct Point), compare);
for (int i = 0; i < 3; ++i) {
printf("%d,%d\n", points[i].x, points[i].y);
}
}
Note here that dsq() is a local function that accesses the `target` variable in the local function scope.
The usual workaround in standard C is to pass the necessary context as a function argument. That's why qsort_r() exists, which takes a context argument to be passed to compare(), but that's a non-standard GNU extension.
This practice of passing context pointers around is ubiquitous in C code, and it works, but it can get messy especially if you need access to multiple variables or variables from more than one nested scope. There is also a type safety issue: these context pointers are necessarily passed as void* which means they have to be cast back to the real type before use, which is where bugs can be introduced if the caller and receiver disagree on the actual type.
What about your older patch where -fno-trampolines meant a function pointer could either be a code pointer or a closure (descriptor) pointer, distinguished by a tag?
Nested functions have a different ABI from regular C functions, due to the invisible static chain register that needs to be set up. C has no way of indicating this different ABI, so GCC happily lets you cast a nested function to a C function pointer by creating a little tiny function that puts the right value in the static chain register before calling the nested function. This little tiny function is the trampoline.
Since the trampoline needs to live somewhere, GCC puts it on the stack, requiring the stack to be executable and consequently a whole lot of people hate the feature because it's a walking security nightmare.
Correct (although the nightmare part is a bit exaggerated since return-oriented programming showed that non-executable stack does not help a lot). GCC can also put the trampoline on the heap, but this also has downsides.
For me the main downside of trampolines is that the optimizer can not de-virtualize the trampoline again. This could be implemented, but avoiding the creation of the trampoline in the first place is much better.
Could be a number of things depending on context. In this case it’s a short function that adjusts some things and jumps to the actual functions (a “thunk” is another term for this). Specifically, if in GCC you write
int f(int x) {
int g(int y) { ... use x and y ... }
...
h(&g);
...
}
then what the compiled code for f does is construct on the stack a short piece of machine code:
mov <well-known register>, <frame pointer>
jmp <start of g’s code>
and &g points to the start not of g’s code but of this snippet on the stack, which has the parent function’s frame pointer compiled into it as a literal constant. The snippet is called a trampoline.
Pascal supports it (at least Turbo Pascal, no idea about ISO Pascal).
I always wondered why C++ only added lambdas, but observing WG21 for a while, I assume this is just a random walk in language design. (not that it is different in WG14)
For the capturing case: to access context that is not available through global variables or function arguments, i.e., the same reason why closures are useful in other languages.
Here's an example, where I have a list of points that I want to sort based on distance to a chosen target point. I can use qsort() which takes an arbitrary comparison function, but has no way to provide context to that function beyond the input arguments:
Note here that dsq() is a local function that accesses the `target` variable in the local function scope.The usual workaround in standard C is to pass the necessary context as a function argument. That's why qsort_r() exists, which takes a context argument to be passed to compare(), but that's a non-standard GNU extension.
This practice of passing context pointers around is ubiquitous in C code, and it works, but it can get messy especially if you need access to multiple variables or variables from more than one nested scope. There is also a type safety issue: these context pointers are necessarily passed as void* which means they have to be cast back to the real type before use, which is where bugs can be introduced if the caller and receiver disagree on the actual type.
But I prefer this approach anyhow, as it does not impose any run-time cost for checking the tag, and is easier to optimize.
Nested functions have a different ABI from regular C functions, due to the invisible static chain register that needs to be set up. C has no way of indicating this different ABI, so GCC happily lets you cast a nested function to a C function pointer by creating a little tiny function that puts the right value in the static chain register before calling the nested function. This little tiny function is the trampoline.
Since the trampoline needs to live somewhere, GCC puts it on the stack, requiring the stack to be executable and consequently a whole lot of people hate the feature because it's a walking security nightmare.
For me the main downside of trampolines is that the optimizer can not de-virtualize the trampoline again. This could be implemented, but avoiding the creation of the trampoline in the first place is much better.