#![allow(warnings)]
use lazy_static::lazy_static;
use std::io::Read;
const MEMINFO_PATH: &str = "/proc/meminfo";
const TOKEN: &str = "Hugepagesize:";
lazy_static! {
static ref HUGEPAGE_SIZE: isize = {
if cfg!(target_os = "linux") {
let buf = std::fs::File::open(MEMINFO_PATH).map_or("".to_owned(), |mut f| {
let mut s = String::new();
let _ = f.read_to_string(&mut s);
s
});
parse_hugepage_size(&buf)
} else {
-1
}
};
}
fn parse_hugepage_size(s: &str) -> isize {
for line in s.lines() {
if line.starts_with(TOKEN) {
let mut parts = line[TOKEN.len()..].split_whitespace();
let p = parts.next().unwrap_or("0");
let mut hugepage_size = p.parse::<isize>().unwrap_or(-1);
hugepage_size *= parts.next().map_or(1, |x| match x {
"kB" => 1024,
_ => 1,
});
return hugepage_size;
}
}
return -1;
}
fn print_huge_msg(alloc_size: usize, page_size: usize) {
let n = alloc_size / page_size;
println!("-------------------------- Warning! -------------------------------");
println!("Cannot allocate huge pages. Make sure huge pages are already pre-allocated.");
println!("For example, run the following command on a Linux machine:");
println!(
" `echo {} | sudo tee /sys/kernel/mm/hugepages/hugepages-2048kB/nr_hugepages`",
n
);
println!("where {} is the number of desired 2MB pages.", n);
println!("requested size = {}", alloc_size);
println!("huge page size = {}", page_size);
println!();
}
#[derive(Debug)]
pub enum ModuleError {
Backend(anyhow::Error),
}
pub type ModuleResult<T> = Result<T, ModuleError>;
#[cfg(all(not(target_os = "windows"), feature = "selinux-fix"))]
use memmap2::MmapMut;
#[cfg(not(any(feature = "selinux-fix", windows)))]
use std::alloc;
use std::ffi::c_void;
use std::io;
use std::mem;
use std::ptr;
use wasmtime_jit_icache_coherence as icache_coherence;
use hugepage_rs;
struct PtrLen {
#[cfg(all(not(target_os = "windows"), feature = "selinux-fix"))]
map: Option<MmapMut>,
ptr: *mut u8,
len: usize,
}
impl PtrLen {
fn new() -> Self {
Self {
#[cfg(all(not(target_os = "windows"), feature = "selinux-fix"))]
map: None,
ptr: ptr::null_mut(),
len: 0,
}
}
#[cfg(all(not(target_os = "windows"), feature = "selinux-fix"))]
fn with_size(size: usize, _huge: bool) -> io::Result<Self> {
let alloc_size = region::page::ceil(size as *const ()) as usize;
MmapMut::map_anon(alloc_size).map(|mut mmap| {
Self {
ptr: mmap.as_mut_ptr(),
map: Some(mmap),
len: alloc_size,
}
})
}
#[cfg(all(target_os = "linux"))]
fn with_size(size: usize, mut huge: bool) -> io::Result<Self> {
assert_ne!(size, 0);
huge &= *HUGEPAGE_SIZE > 0;
let page_size = if huge {
*HUGEPAGE_SIZE as usize
} else {
region::page::size()
};
let alloc_size = if huge {
let mask: usize = page_size - 1;
(size + mask) & !mask
} else {
region::page::ceil(size as *const ()) as usize
};
let layout = alloc::Layout::from_size_align(alloc_size, page_size).unwrap();
let ptr = if huge {
unsafe { hugepage_rs::alloc(layout) }
} else {
unsafe { alloc::alloc(layout) }
};
if !ptr.is_null() {
Ok(Self {
ptr,
len: alloc_size,
})
} else {
if huge {
print_huge_msg(alloc_size, page_size);
}
Err(io::Error::from(io::ErrorKind::OutOfMemory))
}
}
#[cfg(all(target_os = "macos"))]
fn with_size(size: usize, mut _huge: bool) -> io::Result<Self> {
assert_ne!(size, 0);
let page_size = region::page::size();
let alloc_size = region::page::ceil(size as *const ()) as usize;
let layout = alloc::Layout::from_size_align(alloc_size, page_size).unwrap();
let ptr = unsafe { alloc::alloc(layout) };
if !ptr.is_null() {
Ok(Self {
ptr,
len: alloc_size,
})
} else {
Err(io::Error::from(io::ErrorKind::OutOfMemory))
}
}
#[cfg(target_os = "windows")]
fn with_size(size: usize, _huge: bool) -> io::Result<Self> {
use windows_sys::Win32::System::Memory::{
VirtualAlloc, MEM_COMMIT, MEM_RESERVE, PAGE_READWRITE,
};
let ptr = unsafe {
VirtualAlloc(
ptr::null_mut(),
size,
MEM_COMMIT | MEM_RESERVE,
PAGE_READWRITE,
)
};
if !ptr.is_null() {
Ok(Self {
ptr: ptr as *mut u8,
len: region::page::ceil(size as *const ()) as usize,
huge: false,
})
} else {
Err(io::Error::last_os_error())
}
}
}
#[cfg(all(not(target_os = "windows"), not(feature = "selinux-fix")))]
impl Drop for PtrLen {
fn drop(&mut self) {
if !self.ptr.is_null() {
let page_size = region::page::size();
let layout = alloc::Layout::from_size_align(self.len, page_size).unwrap();
unsafe {
region::protect(self.ptr, self.len, region::Protection::READ_WRITE)
.expect("unable to unprotect memory");
alloc::dealloc(self.ptr, layout)
}
}
}
}
#[derive(Clone, Debug, PartialEq)]
pub(crate) enum BranchProtection {
None,
BTI,
}
pub(crate) struct Memory {
allocations: Vec<PtrLen>,
already_protected: usize,
current: PtrLen,
position: usize,
branch_protection: BranchProtection,
huge: bool,
}
unsafe impl Send for Memory {}
unsafe impl Sync for Memory {}
impl Memory {
pub(crate) fn new(branch_protection: BranchProtection, huge: bool) -> Self {
Self {
allocations: Vec::new(),
already_protected: 0,
current: PtrLen::new(),
position: 0,
branch_protection,
huge,
}
}
fn finish_current(&mut self) {
self.allocations
.push(mem::replace(&mut self.current, PtrLen::new()));
self.position = 0;
}
pub(crate) fn allocate(&mut self, size: usize, align: u64) -> io::Result<*mut u8> {
let align = usize::try_from(align).expect("alignment too big");
if self.position % align != 0 {
self.position += align - self.position % align;
debug_assert!(self.position % align == 0);
}
if size <= self.current.len - self.position {
let ptr = unsafe { self.current.ptr.add(self.position) };
self.position += size;
return Ok(ptr);
}
self.finish_current();
self.current = PtrLen::with_size(size, self.huge)?;
self.position = size;
Ok(self.current.ptr)
}
pub(crate) fn set_readable_and_executable(&mut self) -> ModuleResult<()> {
self.finish_current();
for &PtrLen { ptr, len, .. } in self.non_protected_allocations_iter() {
unsafe {
icache_coherence::clear_cache(ptr as *const c_void, len)
.expect("Failed cache clear")
};
}
let set_region_readable_and_executable = |ptr, len| -> ModuleResult<()> {
if self.branch_protection == BranchProtection::BTI {
#[cfg(all(target_arch = "aarch64", target_os = "linux"))]
if std::arch::is_aarch64_feature_detected!("bti") {
let prot = libc::PROT_EXEC | libc::PROT_READ | 0x10;
unsafe {
if libc::mprotect(ptr as *mut libc::c_void, len, prot) < 0 {
return Err(ModuleError::Backend(
anyhow::Error::new(io::Error::last_os_error())
.context("unable to make memory readable+executable"),
));
}
}
return Ok(());
}
}
unsafe {
region::protect(ptr, len, region::Protection::READ_EXECUTE).map_err(|e| {
ModuleError::Backend(
anyhow::Error::new(e).context("unable to make memory readable+executable"),
)
})?;
}
Ok(())
};
for &PtrLen { ptr, len, .. } in self.non_protected_allocations_iter() {
set_region_readable_and_executable(ptr, len)?;
}
icache_coherence::pipeline_flush_mt().expect("Failed pipeline flush");
self.already_protected = self.allocations.len();
Ok(())
}
pub(crate) fn set_readonly(&mut self) -> ModuleResult<()> {
self.finish_current();
for &PtrLen { ptr, len, .. } in self.non_protected_allocations_iter() {
unsafe {
region::protect(ptr, len, region::Protection::READ).map_err(|e| {
ModuleError::Backend(
anyhow::Error::new(e).context("unable to make memory readonly"),
)
})?;
}
}
self.already_protected = self.allocations.len();
Ok(())
}
fn non_protected_allocations_iter(&self) -> impl Iterator<Item = &PtrLen> {
let iter = self.allocations[self.already_protected..].iter();
#[cfg(all(not(target_os = "windows"), feature = "selinux-fix"))]
return iter.filter(|&PtrLen { map, len, .. }| *len != 0 && map.is_some());
#[cfg(any(target_os = "windows", not(feature = "selinux-fix")))]
return iter.filter(|&PtrLen { len, .. }| *len != 0);
}
pub(crate) unsafe fn free_memory(&mut self) {
self.allocations.clear();
self.already_protected = 0;
}
}
impl Drop for Memory {
fn drop(&mut self) {
mem::replace(&mut self.allocations, Vec::new())
.into_iter()
.for_each(mem::forget);
}
}