use anyhow::{Context, Error, Result};
use object::write::{Object, WritableBuffer};
use std::ops::{Deref, DerefMut, Range, RangeTo};
use std::path::Path;
use std::sync::Arc;
use wasmtime_runtime::Mmap;
pub struct MmapVec {
mmap: Arc<Mmap>,
range: Range<usize>,
}
impl MmapVec {
pub fn new(mmap: Mmap, size: usize) -> MmapVec {
assert!(size <= mmap.len());
MmapVec {
mmap: Arc::new(mmap),
range: 0..size,
}
}
pub fn with_capacity(size: usize) -> Result<MmapVec> {
Ok(MmapVec::new(Mmap::with_at_least(size)?, size))
}
pub fn from_slice(slice: &[u8]) -> Result<MmapVec> {
let mut result = MmapVec::with_capacity(slice.len())?;
result.copy_from_slice(slice);
Ok(result)
}
pub fn from_obj(obj: Object) -> Result<MmapVec> {
let mut result = ObjectMmap::default();
match obj.emit(&mut result) {
Ok(()) => {
assert!(result.mmap.is_some(), "no reserve");
let mmap = result.mmap.expect("reserve not called");
assert_eq!(mmap.len(), result.len);
Ok(mmap)
}
Err(e) => match result.err.take() {
Some(original) => Err(original.context(e)),
None => Err(e.into()),
},
}
}
pub fn from_file(path: &Path) -> Result<MmapVec> {
let mmap = Mmap::from_file(path)
.with_context(|| format!("failed to create mmap for file: {}", path.display()))?;
let len = mmap.len();
Ok(MmapVec::new(mmap, len))
}
pub fn is_readonly(&self) -> bool {
self.mmap.is_readonly()
}
pub fn drain(&mut self, range: RangeTo<usize>) -> MmapVec {
let amt = range.end;
assert!(amt <= (self.range.end - self.range.start));
let ret = MmapVec {
mmap: self.mmap.clone(),
range: self.range.start..self.range.start + amt,
};
self.range.start += amt;
return ret;
}
pub unsafe fn make_writable(&self, range: Range<usize>) -> Result<()> {
self.mmap
.make_writable(range.start + self.range.start..range.end + self.range.start)
}
pub unsafe fn make_executable(&self, range: Range<usize>) -> Result<()> {
self.mmap
.make_executable(range.start + self.range.start..range.end + self.range.start)
}
}
impl Deref for MmapVec {
type Target = [u8];
fn deref(&self) -> &[u8] {
&self.mmap.as_slice()[self.range.clone()]
}
}
impl DerefMut for MmapVec {
fn deref_mut(&mut self) -> &mut [u8] {
debug_assert!(!self.is_readonly());
unsafe {
let slice = std::slice::from_raw_parts_mut(self.mmap.as_mut_ptr(), self.mmap.len());
&mut slice[self.range.clone()]
}
}
}
#[derive(Default)]
struct ObjectMmap {
mmap: Option<MmapVec>,
len: usize,
err: Option<Error>,
}
impl WritableBuffer for ObjectMmap {
fn len(&self) -> usize {
self.len
}
fn reserve(&mut self, additional: usize) -> Result<(), ()> {
assert!(self.mmap.is_none(), "cannot reserve twice");
self.mmap = match MmapVec::with_capacity(additional) {
Ok(mmap) => Some(mmap),
Err(e) => {
self.err = Some(e);
return Err(());
}
};
Ok(())
}
fn resize(&mut self, new_len: usize) {
if new_len <= self.len {
return;
}
self.len = new_len;
}
fn write_bytes(&mut self, val: &[u8]) {
let mmap = self.mmap.as_mut().expect("write before reserve");
mmap[self.len..][..val.len()].copy_from_slice(val);
self.len += val.len();
}
}
#[cfg(test)]
mod tests {
use super::MmapVec;
#[test]
fn smoke() {
let mut mmap = MmapVec::with_capacity(10).unwrap();
assert_eq!(mmap.len(), 10);
assert_eq!(&mmap[..], &[0; 10]);
mmap[0] = 1;
mmap[2] = 3;
assert!(mmap.get(10).is_none());
assert_eq!(mmap[0], 1);
assert_eq!(mmap[2], 3);
}
#[test]
fn drain() {
let mut mmap = MmapVec::from_slice(&[1, 2, 3, 4]).unwrap();
assert_eq!(mmap.len(), 4);
assert!(mmap.drain(..0).is_empty());
assert_eq!(mmap.len(), 4);
let one = mmap.drain(..1);
assert_eq!(one.len(), 1);
assert_eq!(one[0], 1);
assert_eq!(mmap.len(), 3);
assert_eq!(&mmap[..], &[2, 3, 4]);
drop(one);
assert_eq!(mmap.len(), 3);
let two = mmap.drain(..2);
assert_eq!(two.len(), 2);
assert_eq!(two[0], 2);
assert_eq!(two[1], 3);
assert_eq!(mmap.len(), 1);
assert_eq!(mmap[0], 4);
drop(two);
assert!(mmap.drain(..0).is_empty());
assert!(mmap.drain(..1).len() == 1);
assert!(mmap.is_empty());
assert!(mmap.drain(..0).is_empty());
}
}