pub struct Shape {
pub alloc: bool,
pub write: bool,
pub exec: bool,
pub thread: bool,
pub bits: bool,
pub array: Option<Array>,
pub merge: u64,
pub strings: bool,
pub mach: u32,
}Expand description
What a section is, which on ELF is a handful of flag letters and a type.
Held as the separate facts rather than as one of a fixed list of kinds, because the list is not
fixed: a program may write .section .init.text,"ax",@progbits and mean a section this compiler
has no name for, and the letters are the whole of what it said about it. The writer underneath
takes a SectionKind, so Shape::kind is the one place that turns these back into one, and
the cases it cannot say are written as flags directly.
Fields§
§alloc: boola: the section takes space in the loaded image. A section without this is for a debugger
or a linker to read and is not in the program at run time.
write: boolw: the program may write to it.
exec: boolx: the processor may execute it.
thread: boolT: one copy per thread rather than one copy per program.
bits: boolWhether the file carries the bytes. False is @nobits, which is what .bss is.
array: Option<Array>Which kind of table of function addresses this is, for the three ELF has a type for.
merge: u64M: how long each entry is in a section of constants the linker may keep one copy of
wherever two objects hold the same one, and zero for a section that is not one of those.
gcc puts a double it loads from memory in .rodata.cst8, which is one of these.
strings: boolS: the entries are strings ended by a zero rather than all of one length, which is where
gcc puts every string literal. Only means anything beside merge.
mach: u32The type and attributes of a Mach-O section, in the one word the format keeps them in,
which is what Shape::mach works out. Zero on the other two formats, where the fields
above are the whole answer, and zero is also an ordinary Mach-O section with nothing said.
Implementations§
Source§impl Shape
impl Shape
Sourcepub fn of(name: &str) -> Shape
pub fn of(name: &str) -> Shape
What a section of this name is when the source named it and said nothing else.
.text, .data and the rest are names an assembler already knows the flags of, which is
why a program may write .data on its own and why .section .data without letters is the
same section rather than an unallocated one. A name nothing here knows gets the flags of an
ordinary allocated writable section, which is what gas does with one.
Sourcepub fn implied(name: &str) -> Shape
pub fn implied(name: &str) -> Shape
The flags a section of this name has whatever letters the source gave it.
gas adds these to the letters rather than taking the letters alone, so
.section .data.rel.ro.local,"a" is writable all the same. GMP names its jump tables that
way, and a linker making a position independent program refuses an address it would have to
fix up in a section it may not write. Only the names gas treats as a family are here, which
is fewer than Shape::of knows: .init.data is not executable just because .init is.
Sourcepub fn mach(
segment: &str,
section: &str,
kind: Option<&str>,
attributes: &[&str],
) -> Result<Shape, String>
pub fn mach( segment: &str, section: &str, kind: Option<&str>, attributes: &[&str], ) -> Result<Shape, String>
What a Mach-O section is, from its segment, its section and the type and attributes a
.section directive gave after them.
The word the format keeps is the answer and the fields beside it are filled in from it, so that what reads a shape without knowing the format still sees code as code and a zero filled section as one that holds no bytes.
§Errors
A type or an attribute Apple’s assembler does not take, as a sentence.
Trait Implementations§
impl Copy for Shape
impl Eq for Shape
impl StructuralPartialEq for Shape
Auto Trait Implementations§
impl Freeze for Shape
impl RefUnwindSafe for Shape
impl Send for Shape
impl Sync for Shape
impl Unpin for Shape
impl UnsafeUnpin for Shape
impl UnwindSafe for Shape
Blanket Implementations§
Source§impl<T> BorrowMut<T> for Twhere
T: ?Sized,
impl<T> BorrowMut<T> for Twhere
T: ?Sized,
Source§fn borrow_mut(&mut self) -> &mut T
fn borrow_mut(&mut self) -> &mut T
Source§impl<T> CloneToUninit for Twhere
T: Clone,
impl<T> CloneToUninit for Twhere
T: Clone,
Source§impl<Q, K> Equivalent<K> for Q
impl<Q, K> Equivalent<K> for Q
Source§impl<Q, K> Equivalent<K> for Q
impl<Q, K> Equivalent<K> for Q
Source§fn equivalent(&self, key: &K) -> bool
fn equivalent(&self, key: &K) -> bool
key and return true if they are equal.