1 //! Memory management for executable code.
2 
3 use crate::prelude::*;
4 use crate::runtime::vm::{libcalls, MmapVec};
5 use crate::Engine;
6 use alloc::sync::Arc;
7 use core::ops::Range;
8 use object::endian::Endianness;
9 use object::read::{elf::ElfFile64, Object, ObjectSection};
10 use object::{ObjectSymbol, SectionFlags};
11 use wasmtime_environ::{lookup_trap_code, obj, Trap};
12 
13 /// Management of executable memory within a `MmapVec`
14 ///
15 /// This type consumes ownership of a region of memory and will manage the
16 /// executable permissions of the contained JIT code as necessary.
17 pub struct CodeMemory {
18     mmap: MmapVec,
19     #[cfg(has_host_compiler_backend)]
20     unwind_registration: Option<crate::runtime::vm::UnwindRegistration>,
21     #[cfg(feature = "debug-builtins")]
22     debug_registration: Option<crate::runtime::vm::GdbJitImageRegistration>,
23     published: bool,
24     enable_branch_protection: bool,
25     needs_executable: bool,
26     #[cfg(feature = "debug-builtins")]
27     has_native_debug_info: bool,
28     custom_code_memory: Option<Arc<dyn CustomCodeMemory>>,
29 
30     relocations: Vec<(usize, obj::LibCall)>,
31 
32     // Ranges within `self.mmap` of where the particular sections lie.
33     text: Range<usize>,
34     unwind: Range<usize>,
35     trap_data: Range<usize>,
36     wasm_data: Range<usize>,
37     address_map_data: Range<usize>,
38     func_name_data: Range<usize>,
39     info_data: Range<usize>,
40     wasm_dwarf: Range<usize>,
41 }
42 
43 impl Drop for CodeMemory {
44     fn drop(&mut self) {
45         // If there is a custom code memory handler, restore the
46         // original (non-executable) state of the memory.
47         if let Some(mem) = self.custom_code_memory.as_ref() {
48             let text = self.text();
49             mem.unpublish_executable(text.as_ptr(), text.len())
50                 .expect("Executable memory unpublish failed");
51         }
52 
53         // Drop the registrations before `self.mmap` since they (implicitly) refer to it.
54         #[cfg(has_host_compiler_backend)]
55         let _ = self.unwind_registration.take();
56         #[cfg(feature = "debug-builtins")]
57         let _ = self.debug_registration.take();
58     }
59 }
60 
61 fn _assert() {
62     fn _assert_send_sync<T: Send + Sync>() {}
63     _assert_send_sync::<CodeMemory>();
64 }
65 
66 /// Interface implemented by an embedder to provide custom
67 /// implementations of code-memory protection and execute permissions.
68 pub trait CustomCodeMemory: Send + Sync {
69     /// The minimal alignment granularity for an address region that
70     /// can be made executable.
71     ///
72     /// Wasmtime does not assume the system page size for this because
73     /// custom code-memory protection can be used when all other uses
74     /// of virtual memory are disabled.
75     fn required_alignment(&self) -> usize;
76 
77     /// Publish a region of memory as executable.
78     ///
79     /// This should update permissions from the default RW
80     /// (readable/writable but not executable) to RX
81     /// (readable/executable but not writable), enforcing W^X
82     /// discipline.
83     ///
84     /// If the platform requires any data/instruction coherence
85     /// action, that should be performed as part of this hook as well.
86     ///
87     /// `ptr` and `ptr.offset(len)` are guaranteed to be aligned as
88     /// per `required_alignment()`.
89     fn publish_executable(&self, ptr: *const u8, len: usize) -> anyhow::Result<()>;
90 
91     /// Unpublish a region of memory.
92     ///
93     /// This should perform the opposite effect of `make_executable`,
94     /// switching a range of memory back from RX (readable/executable)
95     /// to RW (readable/writable). It is guaranteed that no code is
96     /// running anymore from this region.
97     ///
98     /// `ptr` and `ptr.offset(len)` are guaranteed to be aligned as
99     /// per `required_alignment()`.
100     fn unpublish_executable(&self, ptr: *const u8, len: usize) -> anyhow::Result<()>;
101 }
102 
103 impl CodeMemory {
104     /// Creates a new `CodeMemory` by taking ownership of the provided
105     /// `MmapVec`.
106     ///
107     /// The returned `CodeMemory` manages the internal `MmapVec` and the
108     /// `publish` method is used to actually make the memory executable.
109     pub fn new(engine: &Engine, mmap: MmapVec) -> Result<Self> {
110         let obj = ElfFile64::<Endianness>::parse(&mmap[..])
111             .map_err(obj::ObjectCrateErrorWrapper)
112             .with_context(|| "failed to parse internal compilation artifact")?;
113 
114         let mut relocations = Vec::new();
115         let mut text = 0..0;
116         let mut unwind = 0..0;
117         let mut enable_branch_protection = None;
118         let mut needs_executable = true;
119         #[cfg(feature = "debug-builtins")]
120         let mut has_native_debug_info = false;
121         let mut trap_data = 0..0;
122         let mut wasm_data = 0..0;
123         let mut address_map_data = 0..0;
124         let mut func_name_data = 0..0;
125         let mut info_data = 0..0;
126         let mut wasm_dwarf = 0..0;
127         for section in obj.sections() {
128             let data = section.data().map_err(obj::ObjectCrateErrorWrapper)?;
129             let name = section.name().map_err(obj::ObjectCrateErrorWrapper)?;
130             let range = subslice_range(data, &mmap);
131 
132             // Double-check that sections are all aligned properly.
133             if section.align() != 0 && data.len() != 0 {
134                 if (data.as_ptr() as u64 - mmap.as_ptr() as u64) % section.align() != 0 {
135                     bail!(
136                         "section `{}` isn't aligned to {:#x}",
137                         section.name().unwrap_or("ERROR"),
138                         section.align()
139                     );
140                 }
141             }
142 
143             match name {
144                 obj::ELF_WASM_BTI => match data.len() {
145                     1 => enable_branch_protection = Some(data[0] != 0),
146                     _ => bail!("invalid `{name}` section"),
147                 },
148                 ".text" => {
149                     text = range;
150 
151                     if let SectionFlags::Elf { sh_flags } = section.flags() {
152                         if sh_flags & obj::SH_WASMTIME_NOT_EXECUTED != 0 {
153                             needs_executable = false;
154                         }
155                     }
156 
157                     // The text section might have relocations for things like
158                     // libcalls which need to be applied, so handle those here.
159                     //
160                     // Note that only a small subset of possible relocations are
161                     // handled. Only those required by the compiler side of
162                     // things are processed.
163                     for (offset, reloc) in section.relocations() {
164                         assert_eq!(reloc.kind(), object::RelocationKind::Absolute);
165                         assert_eq!(reloc.encoding(), object::RelocationEncoding::Generic);
166                         assert_eq!(usize::from(reloc.size()), core::mem::size_of::<usize>() * 8);
167                         assert_eq!(reloc.addend(), 0);
168                         let sym = match reloc.target() {
169                             object::RelocationTarget::Symbol(id) => id,
170                             other => panic!("unknown relocation target {other:?}"),
171                         };
172                         let sym = obj.symbol_by_index(sym).unwrap().name().unwrap();
173                         let libcall = obj::LibCall::from_str(sym)
174                             .unwrap_or_else(|| panic!("unknown symbol relocation: {sym}"));
175 
176                         let offset = usize::try_from(offset).unwrap();
177                         relocations.push((offset, libcall));
178                     }
179                 }
180                 #[cfg(has_host_compiler_backend)]
181                 crate::runtime::vm::UnwindRegistration::SECTION_NAME => unwind = range,
182                 obj::ELF_WASM_DATA => wasm_data = range,
183                 obj::ELF_WASMTIME_ADDRMAP => address_map_data = range,
184                 obj::ELF_WASMTIME_TRAPS => trap_data = range,
185                 obj::ELF_NAME_DATA => func_name_data = range,
186                 obj::ELF_WASMTIME_INFO => info_data = range,
187                 obj::ELF_WASMTIME_DWARF => wasm_dwarf = range,
188                 #[cfg(feature = "debug-builtins")]
189                 ".debug_info" => has_native_debug_info = true,
190 
191                 _ => log::debug!("ignoring section {name}"),
192             }
193         }
194 
195         // require mutability even when this is turned off
196         #[cfg(not(has_host_compiler_backend))]
197         let _ = &mut unwind;
198 
199         Ok(Self {
200             mmap,
201             #[cfg(has_host_compiler_backend)]
202             unwind_registration: None,
203             #[cfg(feature = "debug-builtins")]
204             debug_registration: None,
205             published: false,
206             enable_branch_protection: enable_branch_protection
207                 .ok_or_else(|| anyhow!("missing `{}` section", obj::ELF_WASM_BTI))?,
208             needs_executable,
209             #[cfg(feature = "debug-builtins")]
210             has_native_debug_info,
211             custom_code_memory: engine.custom_code_memory().cloned(),
212             text,
213             unwind,
214             trap_data,
215             address_map_data,
216             func_name_data,
217             wasm_dwarf,
218             info_data,
219             wasm_data,
220             relocations,
221         })
222     }
223 
224     /// Returns a reference to the underlying `MmapVec` this memory owns.
225     #[inline]
226     pub fn mmap(&self) -> &MmapVec {
227         &self.mmap
228     }
229 
230     /// Returns the contents of the text section of the ELF executable this
231     /// represents.
232     #[inline]
233     pub fn text(&self) -> &[u8] {
234         &self.mmap[self.text.clone()]
235     }
236 
237     /// Returns the contents of the `ELF_WASMTIME_DWARF` section.
238     #[inline]
239     pub fn wasm_dwarf(&self) -> &[u8] {
240         &self.mmap[self.wasm_dwarf.clone()]
241     }
242 
243     /// Returns the data in the `ELF_NAME_DATA` section.
244     #[inline]
245     pub fn func_name_data(&self) -> &[u8] {
246         &self.mmap[self.func_name_data.clone()]
247     }
248 
249     /// Returns the concatenated list of all data associated with this wasm
250     /// module.
251     ///
252     /// This is used for initialization of memories and all data ranges stored
253     /// in a `Module` are relative to the slice returned here.
254     #[inline]
255     pub fn wasm_data(&self) -> &[u8] {
256         &self.mmap[self.wasm_data.clone()]
257     }
258 
259     /// Returns the encoded address map section used to pass to
260     /// `wasmtime_environ::lookup_file_pos`.
261     #[inline]
262     pub fn address_map_data(&self) -> &[u8] {
263         &self.mmap[self.address_map_data.clone()]
264     }
265 
266     /// Returns the contents of the `ELF_WASMTIME_INFO` section, or an empty
267     /// slice if it wasn't found.
268     #[inline]
269     pub fn wasmtime_info(&self) -> &[u8] {
270         &self.mmap[self.info_data.clone()]
271     }
272 
273     /// Returns the contents of the `ELF_WASMTIME_TRAPS` section, or an empty
274     /// slice if it wasn't found.
275     #[inline]
276     pub fn trap_data(&self) -> &[u8] {
277         &self.mmap[self.trap_data.clone()]
278     }
279 
280     /// Publishes the internal ELF image to be ready for execution.
281     ///
282     /// This method can only be called once and will panic if called twice. This
283     /// will parse the ELF image from the original `MmapVec` and do everything
284     /// necessary to get it ready for execution, including:
285     ///
286     /// * Change page protections from read/write to read/execute.
287     /// * Register unwinding information with the OS
288     /// * Register this image with the debugger if native DWARF is present
289     ///
290     /// After this function executes all JIT code should be ready to execute.
291     pub fn publish(&mut self) -> Result<()> {
292         assert!(!self.published);
293         self.published = true;
294 
295         if self.text().is_empty() {
296             return Ok(());
297         }
298 
299         // The unsafety here comes from a few things:
300         //
301         // * We're actually updating some page protections to executable memory.
302         //
303         // * We're registering unwinding information which relies on the
304         //   correctness of the information in the first place. This applies to
305         //   both the actual unwinding tables as well as the validity of the
306         //   pointers we pass in itself.
307         unsafe {
308             // First, if necessary, apply relocations. This can happen for
309             // things like libcalls which happen late in the lowering process
310             // that don't go through the Wasm-based libcalls layer that's
311             // indirected through the `VMContext`. Note that most modules won't
312             // have relocations, so this typically doesn't do anything.
313             self.apply_relocations()?;
314 
315             // Next freeze the contents of this image by making all of the
316             // memory readonly. Nothing after this point should ever be modified
317             // so commit everything. For a compiled-in-memory image this will
318             // mean IPIs to evict writable mappings from other cores. For
319             // loaded-from-disk images this shouldn't result in IPIs so long as
320             // there weren't any relocations because nothing should have
321             // otherwise written to the image at any point either.
322             //
323             // Note that if virtual memory is disabled this is skipped because
324             // we aren't able to make it readonly, but this is just a
325             // defense-in-depth measure and isn't required for correctness.
326             #[cfg(has_virtual_memory)]
327             self.mmap.make_readonly(0..self.mmap.len())?;
328 
329             // Switch the executable portion from readonly to read/execute.
330             if self.needs_executable {
331                 if !self.custom_publish()? {
332                     #[cfg(has_virtual_memory)]
333                     {
334                         let text = self.text();
335 
336                         use wasmtime_jit_icache_coherence as icache_coherence;
337 
338                         // Clear the newly allocated code from cache if the processor requires it
339                         //
340                         // Do this before marking the memory as R+X, technically we should be able to do it after
341                         // but there are some CPU's that have had errata about doing this with read only memory.
342                         icache_coherence::clear_cache(text.as_ptr().cast(), text.len())
343                             .expect("Failed cache clear");
344 
345                         self.mmap
346                             .make_executable(self.text.clone(), self.enable_branch_protection)
347                             .context("unable to make memory executable")?;
348 
349                         // Flush any in-flight instructions from the pipeline
350                         icache_coherence::pipeline_flush_mt().expect("Failed pipeline flush");
351                     }
352                     #[cfg(not(has_virtual_memory))]
353                     bail!("this target requires virtual memory to be enabled");
354                 }
355             }
356 
357             // With all our memory set up use the platform-specific
358             // `UnwindRegistration` implementation to inform the general
359             // runtime that there's unwinding information available for all
360             // our just-published JIT functions.
361             self.register_unwind_info()?;
362 
363             #[cfg(feature = "debug-builtins")]
364             self.register_debug_image()?;
365         }
366 
367         Ok(())
368     }
369 
370     fn custom_publish(&mut self) -> Result<bool> {
371         if let Some(mem) = self.custom_code_memory.as_ref() {
372             let text = self.text();
373             // The text section should be aligned to
374             // `custom_code_memory.required_alignment()` due to a
375             // combination of two invariants:
376             //
377             // - MmapVec aligns its start address, even in owned-Vec mode; and
378             // - The text segment inside the ELF image will be aligned according
379             //   to the platform's requirements.
380             let text_addr = text.as_ptr() as usize;
381             assert_eq!(text_addr & (mem.required_alignment() - 1), 0);
382 
383             // The custom code memory handler will ensure the
384             // memory is executable and also handle icache
385             // coherence.
386             mem.publish_executable(text.as_ptr(), text.len())?;
387             Ok(true)
388         } else {
389             Ok(false)
390         }
391     }
392 
393     unsafe fn apply_relocations(&mut self) -> Result<()> {
394         if self.relocations.is_empty() {
395             return Ok(());
396         }
397 
398         for (offset, libcall) in self.relocations.iter() {
399             let offset = self.text.start + offset;
400             let libcall = match libcall {
401                 obj::LibCall::FloorF32 => libcalls::relocs::floorf32 as usize,
402                 obj::LibCall::FloorF64 => libcalls::relocs::floorf64 as usize,
403                 obj::LibCall::NearestF32 => libcalls::relocs::nearestf32 as usize,
404                 obj::LibCall::NearestF64 => libcalls::relocs::nearestf64 as usize,
405                 obj::LibCall::CeilF32 => libcalls::relocs::ceilf32 as usize,
406                 obj::LibCall::CeilF64 => libcalls::relocs::ceilf64 as usize,
407                 obj::LibCall::TruncF32 => libcalls::relocs::truncf32 as usize,
408                 obj::LibCall::TruncF64 => libcalls::relocs::truncf64 as usize,
409                 obj::LibCall::FmaF32 => libcalls::relocs::fmaf32 as usize,
410                 obj::LibCall::FmaF64 => libcalls::relocs::fmaf64 as usize,
411                 #[cfg(target_arch = "x86_64")]
412                 obj::LibCall::X86Pshufb => libcalls::relocs::x86_pshufb as usize,
413                 #[cfg(not(target_arch = "x86_64"))]
414                 obj::LibCall::X86Pshufb => unreachable!(),
415             };
416             self.mmap
417                 .as_mut_slice()
418                 .as_mut_ptr()
419                 .add(offset)
420                 .cast::<usize>()
421                 .write_unaligned(libcall);
422         }
423         Ok(())
424     }
425 
426     unsafe fn register_unwind_info(&mut self) -> Result<()> {
427         if self.unwind.len() == 0 {
428             return Ok(());
429         }
430         #[cfg(has_host_compiler_backend)]
431         {
432             let text = self.text();
433             let unwind_info = &self.mmap[self.unwind.clone()];
434             let registration = crate::runtime::vm::UnwindRegistration::new(
435                 text.as_ptr(),
436                 unwind_info.as_ptr(),
437                 unwind_info.len(),
438             )
439             .context("failed to create unwind info registration")?;
440             self.unwind_registration = Some(registration);
441             return Ok(());
442         }
443         #[cfg(not(has_host_compiler_backend))]
444         {
445             bail!("should not have unwind info for non-native backend")
446         }
447     }
448 
449     #[cfg(feature = "debug-builtins")]
450     fn register_debug_image(&mut self) -> Result<()> {
451         if !self.has_native_debug_info {
452             return Ok(());
453         }
454 
455         // TODO-DebugInfo: we're copying the whole image here, which is pretty wasteful.
456         // Use the existing memory by teaching code here about relocations in DWARF sections
457         // and anything else necessary that is done in "create_gdbjit_image" right now.
458         let image = self.mmap().to_vec();
459         let text: &[u8] = self.text();
460         let bytes = crate::debug::create_gdbjit_image(image, (text.as_ptr(), text.len()))?;
461         let reg = crate::runtime::vm::GdbJitImageRegistration::register(bytes);
462         self.debug_registration = Some(reg);
463         Ok(())
464     }
465 
466     /// Looks up the given offset within this module's text section and returns
467     /// the trap code associated with that instruction, if there is one.
468     pub fn lookup_trap_code(&self, text_offset: usize) -> Option<Trap> {
469         lookup_trap_code(self.trap_data(), text_offset)
470     }
471 }
472 
473 /// Returns the range of `inner` within `outer`, such that `outer[range]` is the
474 /// same as `inner`.
475 ///
476 /// This method requires that `inner` is a sub-slice of `outer`, and if that
477 /// isn't true then this method will panic.
478 fn subslice_range(inner: &[u8], outer: &[u8]) -> Range<usize> {
479     if inner.len() == 0 {
480         return 0..0;
481     }
482 
483     assert!(outer.as_ptr() <= inner.as_ptr());
484     assert!((&inner[inner.len() - 1] as *const _) <= (&outer[outer.len() - 1] as *const _));
485 
486     let start = inner.as_ptr() as usize - outer.as_ptr() as usize;
487     start..start + inner.len()
488 }
489