[PATCH v3 2/4] rust: bitmap: add contiguous area operations
Eliot Courtney <[email protected]> Wed, 29 Jul 2026 15:54:13 +0900
| Newsgroups | dev.linux.lists.nova-gpu,org.freedesktop.lists.dri-devel,org.kernel.vger.linux-kernel,org.kernel.vger.rust-for-linux |
|---|---|
| Message-ID | <[email protected]> |
Add bindings for area operations on bitmaps. Each one is made safe by adding some extra checks compared to the underlying C code (for example, checking bounds) and with additional checks to catch likely erroneous usage if `CONFIG_RUST_BITMAP_HARDENED` is on. The C code uses signed integers for some parameters, for example the length for `__bitmap_set`, so bounds check against i32::MAX. We can't rely on `BitmapVec::MAX_LEN` because `Bitmap` may not necessarily be backed by `BitmapVec`. Add tests demonstrating the edge cases. Signed-off-by: Eliot Courtney <[email protected]> --- rust/kernel/bitmap.rs | 194 ++++++++++++++++++++++++++++++++++++++++++++++++++ 1 file changed, 194 insertions(+) diff --git a/rust/kernel/bitmap.rs b/rust/kernel/bitmap.rs index a43bfe0ec3dc..f4b0b8ae39d8 100644 --- a/rust/kernel/bitmap.rs +++ b/rust/kernel/bitmap.rs @@ -10,6 +10,7 @@ use crate::bindings; #[cfg(not(CONFIG_RUST_BITMAP_HARDENED))] use crate::pr_err; +use crate::ptr::Alignment; use core::ptr::NonNull; /// Represents a C bitmap. Wraps underlying C bitmap API. @@ -497,6 +498,116 @@ pub fn next_zero_bit(&self, start: usize) -> Option<usize> { Some(index) } } + + /// Finds a contiguous area of `nbits` zero bits at or after `start`, aligned to `align`. + /// + /// Returns the bit index of the start of the area, or [`None`] if no such area fitting in + /// the bitmap exists. + /// + /// The returned index is a multiple of `align`. Alignments where `self.len() + align - 1` + /// overflows a `usize` can hang the underlying C code. + /// + /// # Panics + /// + /// Panics if CONFIG_RUST_BITMAP_HARDENED is enabled and `start` is out of bounds. + /// + /// # Examples + /// + /// ``` + /// use kernel::alloc::{AllocError, flags::GFP_KERNEL}; + /// use kernel::bitmap::BitmapVec; + /// use kernel::ptr::Alignment; + /// + /// let mut b = BitmapVec::new(64, GFP_KERNEL)?; + /// let unaligned = Alignment::new::<1>(); + /// + /// assert_eq!(Some(0), b.next_zero_area(0, 8, unaligned)); + /// b.set(0, 5); + /// assert_eq!(Some(5), b.next_zero_area(0, 8, unaligned)); + /// assert_eq!(Some(8), b.next_zero_area(0, 8, Alignment::new::<8>())); + /// assert_eq!(None, b.next_zero_area(0, 65, unaligned)); + /// # Ok::<(), AllocError>(()) + /// ``` + #[inline] + pub fn next_zero_area(&self, start: usize, nbits: usize, align: Alignment) -> Option<usize> { + bitmap_assert!( + start < self.len(), + "`start` must be < {}, was {}", + self.len(), + start + ); + + let nr = u32::try_from(nbits).ok()?; + + // SAFETY: `bitmap_find_next_zero_area_off` is safe to use with an out of bounds `start` + // value and never reads beyond `self.len()` bits. + let index = unsafe { + bindings::bitmap_find_next_zero_area_off( + self.as_ptr().cast_mut(), + self.len(), + start, + nr, + align.as_usize() - 1, + 0, + ) + }; + + // In case of overflow, we may get back a range outside of what we requested. + let end = index.checked_add(nbits)?; + if index < start || index >= self.len() || end > self.len() { + None + } else { + Some(index) + } + } + + /// Sets a contiguous area of `nbits` bits starting at `start`. + /// + /// If CONFIG_RUST_BITMAP_HARDENED is not enabled and the area `start..start + nbits` is out of + /// bounds, does nothing. + /// + /// # Panics + /// + /// Panics if CONFIG_RUST_BITMAP_HARDENED is enabled and the area `start..start + nbits` is out + /// of bounds. + #[inline] + pub fn set(&mut self, start: usize, nbits: usize) { + bitmap_assert_return!( + start + .checked_add(nbits) + .is_some_and(|end| end <= self.len() && end <= i32::MAX as usize), + "Area `start..start + nbits` ({}..{}) must be within bounds {}", + start, + start.saturating_add(nbits), + self.len() + ); + // SAFETY: The area `start..start + nbits` is within bounds. + unsafe { bindings::__bitmap_set(self.as_mut_ptr(), start as u32, nbits as i32) }; + } + + /// Clears a contiguous area of `nbits` bits starting at `start`. + /// + /// If CONFIG_RUST_BITMAP_HARDENED is not enabled and the area `start..start + nbits` is out of + /// bounds, does nothing. + /// + /// # Panics + /// + /// Panics if CONFIG_RUST_BITMAP_HARDENED is enabled and the area `start..start + nbits` is out + /// of bounds. + #[inline] + pub fn clear(&mut self, start: usize, nbits: usize) { + bitmap_assert_return!( + start + .checked_add(nbits) + .is_some_and(|end| end <= self.len() && end <= i32::MAX as usize), + "Area `start..start + nbits` ({}..{}) must be within bounds {}", + start, + start.saturating_add(nbits), + self.len() + ); + // SAFETY: The area `start..start + nbits` is within bounds. + unsafe { bindings::__bitmap_clear(self.as_mut_ptr(), start as u32, nbits as i32) }; + } } #[cfg(CONFIG_RUST_BITMAP_KUNIT_TEST)] @@ -614,4 +725,87 @@ fn bitmap_copy_and_extend() -> Result<(), AllocError> { assert_eq!(Some(17), long_bitmap.last_bit()); Ok(()) } + + #[test] + fn bitmap_area_set_clear_find() -> Result<(), AllocError> { + let mut b = BitmapVec::new(128, GFP_KERNEL)?; + let unaligned = Alignment::new::<1>(); + + assert_eq!(Some(0), b.next_zero_area(0, 5, unaligned)); + b.set(0, 5); // Now contains {[0, 5)}. + + assert_eq!(Some(0), b.next_bit(0)); + assert_eq!(Some(4), b.next_bit(4)); + assert_eq!(Some(5), b.next_zero_bit(0)); + assert_eq!(Some(5), b.next_zero_area(0, 5, unaligned)); + assert_eq!(Some(8), b.next_zero_area(0, 5, Alignment::new::<8>())); + + b.set(8, 8); // Now contains {[0, 5), [8, 16)}. + assert_eq!(Some(16), b.next_zero_area(0, 4, Alignment::new::<16>())); + assert_eq!(Some(16), b.next_zero_area(0, 4, unaligned)); + + b.clear(0, 5); // Now contains {[8, 16)}. + assert_eq!(Some(0), b.next_zero_area(0, 5, unaligned)); + assert_eq!(Some(8), b.next_bit(0)); + assert_eq!(Some(15), b.last_bit()); + + b.clear(16, 0); // Zero-length in-bounds clears are no-ops. + assert_eq!(Some(8), b.next_bit(0)); + assert_eq!(Some(15), b.last_bit()); + + // A zero-length request returns the first aligned position at or + // after the next zero bit, even if that position's own bit is set. + assert_eq!(Some(1), b.next_zero_area(1, 0, unaligned)); + assert_eq!(Some(8), b.next_zero_area(1, 0, Alignment::new::<8>())); + + b.set(60, 10); // Now contains {[8, 16), [60, 70)}. + assert_eq!(Some(60), b.next_bit(16)); + assert_eq!(Some(69), b.last_bit()); + assert_eq!(Some(16), b.next_zero_area(9, 40, unaligned)); + assert_eq!(Some(70), b.next_zero_area(0, 45, unaligned)); + + b.clear(62, 6); // Now contains {[8, 16), [60, 62), [68, 70)}. + assert_eq!(Some(62), b.next_zero_area(60, 6, unaligned)); + assert_eq!(Some(61), b.next_bit(61)); + assert_eq!(Some(69), b.last_bit()); + + b.set(64, 0); // Zero-length in-bounds sets are no-ops. + assert_eq!(Some(62), b.next_zero_bit(62)); + Ok(()) + } + + #[test] + fn bitmap_area_exhaustion() -> Result<(), AllocError> { + let mut b = BitmapVec::new(64, GFP_KERNEL)?; + let unaligned = Alignment::new::<1>(); + + assert_eq!(None, b.next_zero_area(0, 65, unaligned)); + assert_eq!(None, b.next_zero_area(0, usize::MAX, unaligned)); + assert_eq!(None, b.next_zero_area(1, usize::MAX, unaligned)); + + b.set_bit(0); // Now contains {[0, 1)}. + assert_eq!(None, b.next_zero_area(0, usize::MAX, unaligned)); + + b.set(0, 61); // Now contains {[0, 61)}. + assert_eq!(None, b.next_zero_area(0, 4, unaligned)); + assert_eq!(Some(61), b.next_zero_area(0, 3, unaligned)); + assert_eq!(None, b.next_zero_area(0, 1, Alignment::new::<64>())); + Ok(()) + } + + #[test] + #[cfg(not(CONFIG_RUST_BITMAP_HARDENED))] + fn owned_bitmap_area_out_of_bounds() -> Result<(), AllocError> { + let mut b = BitmapVec::new(64, GFP_KERNEL)?; + + // Should be ignored since out of bounds. + b.set(64, 4); + b.set(62, 8); + b.set(usize::MAX, 0); + b.clear(usize::MAX, 0); + b.clear(2048, 8); + assert_eq!(None, b.next_bit(0)); + assert_eq!(None, b.next_zero_area(64, 1, Alignment::new::<1>())); + Ok(()) + } } -- 2.55.0