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rucc_codegen/
elsewhere.rs

1//! Which names this file may not work the address of out for itself.
2//!
3//! Design: `spec/11-asm-objects-debug.md` section 11.3.
4//!
5//! Everything this compiler emits is position independent, so the address of a name is the distance
6//! from the instruction asking to the name, and that distance is a number the assembler leaves a
7//! hole for and the linker fills in. The linker can only fill it in when it is putting both ends in
8//! the same program. A name this file only declares may turn out to be in a shared library, and
9//! then there is no such distance and the link fails rather than guessing one.
10//!
11//! The way round it is a table: the linker gives the name one slot in the global offset table, fills
12//! the slot with whatever address the name ends up at, and the code loads the address out of the
13//! slot instead of working it out. The slot is in this program, so the distance to the slot is a
14//! number the linker has. It costs a load, and the linker takes the load back out again when the
15//! name turns out to have been in this program all along.
16//!
17//! Which names need it is a fact about the whole module and the code generator sees one function at
18//! a time, which is why this is worked out first and handed in rather than asked at the point of
19//! use.
20//!
21//! It is also a fact about which link is coming, which is [`rucc_ir::Pic`] and is why this is built
22//! from more than the module. Under `-fPIC` the link may be one that produces a shared library, and
23//! then a name this file exports is one the dynamic linker may find a different definition of, so
24//! reaching it from the instruction pointer would reach the wrong one. The static linker will not
25//! let that happen quietly: `R_X86_64_PC32` against a name it can see is replaceable is refused
26//! when it is making a shared object, which is how tamnd/rucc#756 was found.
27//!
28//! A thread-local variable is the other name this file cannot work the address of out for itself,
29//! and it is here for the same reason: which names are thread-local is a fact about the module and
30//! the code generator sees one function at a time. It is a harder case than the one above rather
31//! than a variation of it, because there is no address to work out at all. Every thread has its own
32//! copy, so what the link can say is only where the variable sits inside the block a thread gets,
33//! and turning that into an address is something the running program does. See [`Elsewhere::thread`].
34
35use std::collections::HashSet;
36
37use rucc_base::Symbol;
38use rucc_ir::{Module, Pic};
39
40/// The names whose address only the linker knows.
41///
42/// Two ways in, and the first one holds whichever link is coming. A function this file only
43/// declares is one, because a function cannot be copied: it has exactly one address that every
44/// object in the program has to agree on, or two pointers to it compare unequal, so the one address
45/// is what the table holds and what everything reads. A variable can be copied, and in an
46/// executable it is, since the linker answers a reference to one another object defines by making
47/// room for it here and copying it there, so the name really does end up somewhere this file can
48/// measure to.
49///
50/// The second way in is `-fPIC`, where the link may be one that produces a shared library and the
51/// copying does not happen. There every replaceable name is in here, defined or not and function or
52/// variable, because the definition the process ends up using may be in another object however
53/// plainly this file defines it. What is not in here is what `-fPIC` costs nothing for: a `static`,
54/// and a name marked hidden or protected, which is the reason `-fPIC -fvisibility=hidden` is the
55/// combination a library that cares about its own speed is built with.
56///
57/// A name this module has never heard of is not in here. Nothing the front end writes produces one,
58/// and treating an unknown name as a function would put the addresses the instrumentation takes of
59/// its own tables through a table of their own for no reason.
60///
61/// A thread-local variable is kept separately and answered by [`Self::thread`], because the two
62/// questions have different answers rather than one being a case of the other: the table slot of an
63/// ordinary name holds its address and the slot of a thread-local holds an offset, and reading
64/// either as though it were the other is a wrong answer rather than a slower one.
65#[derive(Debug, Clone, Default, PartialEq, Eq)]
66pub struct Elsewhere {
67    names: HashSet<Symbol>,
68    threads: HashSet<Symbol>,
69}
70
71impl Elsewhere {
72    /// The names that link cannot reach from the instruction pointer.
73    #[must_use]
74    pub fn of(module: &Module, pic: Pic) -> Self {
75        let threads = module
76            .globals()
77            .filter(|&id| module[id].tls.is_some())
78            .map(|id| module[id].name)
79            .collect();
80        Self { threads, ..Self::table(module, pic) }
81    }
82
83    /// The half of the above that is about the global offset table, which is the older one.
84    fn table(module: &Module, pic: Pic) -> Self {
85        let funcs = module.funcs().filter(|&id| {
86            let func = &module[id];
87            func.is_declaration() || pic.replaceable(func.linkage, func.visibility)
88        });
89        let globals = module
90            .globals()
91            .filter(|&id| pic.replaceable(module[id].linkage, module[id].visibility))
92            .map(|id| module[id].name);
93        // An alias is a symbol of its own with a linkage and a visibility of its own, so it answers
94        // this for itself the same way it answered the visibility question in #752. What it points
95        // at is a separate name and is decided separately, which is what `weak, alias,
96        // visibility("hidden")` over an exported definition needs.
97        let aliases = module
98            .aliases()
99            .filter(|&id| pic.replaceable(module[id].linkage, module[id].visibility))
100            .map(|id| module[id].name);
101        funcs.map(|id| module[id].name).chain(globals).chain(aliases).collect()
102    }
103
104    /// Whether the address of that name has to be read out of the global offset table.
105    #[must_use]
106    pub fn holds(&self, name: Symbol) -> bool {
107        self.names.contains(&name)
108    }
109
110    /// Whether that name is a variable every thread has its own copy of.
111    ///
112    /// Asked before [`Self::holds`] and not instead of it, because the two answers are about
113    /// different things: a thread-local variable that another object may define is still reached
114    /// the same way, since the table slot holds an offset that is the same for every copy and the
115    /// question of whose copy is answered by the segment register rather than by the link.
116    #[must_use]
117    pub fn thread(&self, name: Symbol) -> bool {
118        self.threads.contains(&name)
119    }
120}
121
122/// The same set, written out by hand.
123///
124/// [`Elsewhere::of`] is how the driver builds one and is the only way a compilation does. This is
125/// for a test that wants to lower one function and say what is outside the file without building a
126/// module for it to be outside of.
127impl FromIterator<Symbol> for Elsewhere {
128    fn from_iter<T: IntoIterator<Item = Symbol>>(names: T) -> Self {
129        Self { names: names.into_iter().collect(), threads: HashSet::new() }
130    }
131}
132
133impl Elsewhere {
134    /// The same set with those names said to be thread-local, for a test that lowers one function.
135    #[must_use]
136    pub fn with_threads<T: IntoIterator<Item = Symbol>>(mut self, threads: T) -> Self {
137        self.threads = threads.into_iter().collect();
138        self
139    }
140}
141
142#[cfg(test)]
143mod tests {
144    use super::*;
145
146    use rucc_base::Interner;
147    use rucc_ir::{Alias, Func, Global, Linkage, Signature, TlsModel, Visibility};
148    use rucc_target::{Arch, Env, Os, TargetInfo, Triple};
149
150    /// A module with one of everything: a function with a body and one without, a variable with an
151    /// image and one without, a `static`, a hidden export, an alias and a thread-local.
152    fn module(names: &mut Interner) -> Module {
153        let target = TargetInfo::new(Triple::new(Arch::X86_64, Os::Linux, Env::Gnu));
154        let mut module = Module::new(names.intern("test.c"), &target);
155        let mut defined = Func::new(names.intern("here"), Signature::new());
156        defined.create_block();
157        module.add_func(defined);
158        module.add_func(Func::new(names.intern("exit"), Signature::new()));
159
160        let mut kept = Global::new(names.intern("kept"), 4, 4);
161        kept.init = Some(module.push_data(&[]));
162        module.add_global(kept);
163        module.add_global(Global::new(names.intern("away"), 4, 4));
164
165        let mut quiet = Global::new(names.intern("quiet"), 4, 4);
166        quiet.init = Some(module.push_data(&[]));
167        quiet.linkage = Linkage::Internal;
168        module.add_global(quiet);
169
170        let mut shy = Global::new(names.intern("shy"), 4, 4);
171        shy.init = Some(module.push_data(&[]));
172        shy.visibility = Visibility::Hidden;
173        module.add_global(shy);
174
175        let mut own = Global::new(names.intern("own"), 4, 4);
176        own.init = Some(module.push_data(&[]));
177        own.tls = Some(TlsModel::GlobalDynamic);
178        module.add_global(own);
179
180        module.add_alias(Alias::new(names.intern("second"), names.intern("here")));
181        module
182    }
183
184    #[test]
185    fn a_variable_every_thread_has_its_own_copy_of_is_one() {
186        let mut names = Interner::new();
187        let module = module(&mut names);
188        let elsewhere = Elsewhere::of(&module, Pic::Executable);
189        assert!(elsewhere.thread(names.intern("own")));
190    }
191
192    /// The question the other five ask is a different question, and a variable that is not
193    /// thread-local answering yes to this one would put an offset where an address belongs.
194    #[test]
195    fn an_ordinary_variable_is_not() {
196        let mut names = Interner::new();
197        let module = module(&mut names);
198        let elsewhere = Elsewhere::of(&module, Pic::Executable);
199        for name in ["kept", "away", "quiet", "shy", "here"] {
200            assert!(!elsewhere.thread(names.intern(name)), "{name} was called thread-local");
201        }
202    }
203
204    #[test]
205    fn a_function_this_file_only_declares_is_reached_through_the_table() {
206        let mut names = Interner::new();
207        let module = module(&mut names);
208        let elsewhere = Elsewhere::of(&module, Pic::Executable);
209        assert!(elsewhere.holds(names.intern("exit")));
210    }
211
212    #[test]
213    fn a_function_this_file_defines_is_not() {
214        let mut names = Interner::new();
215        let module = module(&mut names);
216        let elsewhere = Elsewhere::of(&module, Pic::Executable);
217        assert!(!elsewhere.holds(names.intern("here")));
218    }
219
220    #[test]
221    fn a_name_the_module_does_not_carry_at_all_is_not() {
222        let mut names = Interner::new();
223        let module = module(&mut names);
224        let elsewhere = Elsewhere::of(&module, Pic::Executable);
225        assert!(!elsewhere.holds(names.intern("nowhere")));
226    }
227
228    /// The whole of what an executable pays, which is one entry for the one function it calls in a
229    /// library. Every variable is reached from the instruction pointer, the one it does not define
230    /// included, because the linker copies that one in here.
231    #[test]
232    fn an_executable_pays_for_the_functions_and_for_nothing_else() {
233        let mut names = Interner::new();
234        let module = module(&mut names);
235        let elsewhere = Elsewhere::of(&module, Pic::Executable);
236        for name in ["kept", "away", "quiet", "shy", "second"] {
237            assert!(!elsewhere.holds(names.intern(name)), "{name} was in the table");
238        }
239    }
240
241    /// A library pays for every name it exports, defined here or not, because the definition the
242    /// process uses may be in another object however plainly this file defines it.
243    #[test]
244    fn a_library_pays_for_every_name_something_else_may_define() {
245        let mut names = Interner::new();
246        let module = module(&mut names);
247        let elsewhere = Elsewhere::of(&module, Pic::Library);
248        for name in ["here", "exit", "kept", "away", "second"] {
249            assert!(elsewhere.holds(names.intern(name)), "{name} was not in the table");
250        }
251    }
252
253    /// And not for the names nothing outside can reach, which is what makes `-fvisibility=hidden`
254    /// worth writing next to it.
255    #[test]
256    fn a_library_pays_nothing_for_a_name_nothing_outside_it_can_see() {
257        let mut names = Interner::new();
258        let module = module(&mut names);
259        let elsewhere = Elsewhere::of(&module, Pic::Library);
260        assert!(!elsewhere.holds(names.intern("quiet")));
261        assert!(!elsewhere.holds(names.intern("shy")));
262    }
263}