The functionality we were using is now contained in the `rand_core` crate, which
we already depend upon. As far as testing code goes, only benchmarks still
depend upon `rand`, as they use `thread_rng`.
This test is no longer necessary as it originally had a possibility of
failure due to the original implementation of the invsqrt() function
in the decompression algorithm. The failure with the current API is
nonexistent.
* FIXES#288.
This is a breaking change to the serialization format. It fixes it so that the
Serde encoding can match the conventional encoding of each type of object, and
so that Serde can be used with no overhead -- when using serde-bincode, the
Serde encoding now matches the manual encoding.
This ensures that the serde Serialize and Deserialize implementations use
fixed-length Serde tuples, rather than variable-length byte arrays. This flaw
in data modeling was pointed out by Trevor Perrin.
This was more useful at the time when we were determining, e.g., optimal lookup
table sizes and could regenerate them more easily, but it came at a massive
complexity cost. It also meant that we were unable to implement backend
autoselection. This commit removes the `build.rs` entirely. In the future, a
different `build.rs` could be added that auto-selects a backend, but it seems
like the current default-u64 setup has been working fine.
See discussion at https://github.com/dalek-cryptography/curve25519-dalek/issues/232 , copied below:
`1.1` changed the trait bounds for `RistrettoPoint::random` and `Scalar::random`, see #222 and #219.
These changes have two benefits:
* they unlink us from the `rand` crate and make us depend only on `rand_core`;
* they allow passing both owned and borrowed RNGs.
The change was not supposed to be a breaking change, since the new bounds are strictly more general than the old ones (as every `RngCore` is an `Rng` and every `&mut RngCore` is an `RngCore`), so the new bound is satisfied in every situation where the old bound applied.
The `1.1.0-pre.0` version didn't cause problems on the crates I tested it on, but there was an unexpected problem: ce71c93a9a/spacesuit/src/value.rs (L160-L161) broke, since it took a borrow as input and used it twice. So there was slight breakage.
One option is to revert the changes (probably just the ones from #219) and release 1.1.3; another would be to fix up `slingshot` and leave the new bound.
This doesn't (yet) give any speedup over the non-precomputed multiscalar
multiplication, and it's not clear that it's a good idea to commit to
supporting it in the future. Removing it means that it's not committed-to as
part of the public API, but the source is still there in the tree if we want to
revisit it later.
This begins to attempt to restructure the source tree so that the common parts
are common and the different parts are different.
The backend is now split into two parts:
- serial (containing the implementation using serial formulas and mixed-model arithmetic).
- vector (containing the implementation using parallel formulas and single-model arithmetic).
The serial scalar_mul tree is now under backend::serial::scalar_mul.
The avx2 scalar_mul tree is now under backend::avx2::scalar_mul.
Vicariously updates to `generic-array` 0.12, however this change also
removes `generic-array` as a direct dependency, as it can be sourced
from the `digest` crate.
This change provides a common convention for using allocator-dependent
features with:
#![cfg(feature = "alloc")]
When available, `Vec` is imported consistently as `prelude::Vec`, which
means modules that need access to `Vec` can simply do:
use prelude::*;
and if an allocator is available, `Vec` will be in the crate prelude.
This allows all `alloc` vs `std` gating to be handled in `lib.rs`,
`build.rs`, and `prelude.rs` so the rest of the codebase doesn't have to
do any gating whatsoever.
Unfortunately, Rust selects `i32` as the type for an integer literal
when the literal has no other type constraints. This means that someone
cannot write `Scalar::from(1)`, as Rust will choose `i32` as the type for
`1`, and we don't `impl From<i32> for Scalar`.
We could implement `From` conversions for signed integers, but since
`Scalar` operations should be constant-time by default, this would
require us to extract the sign bit of the integer and use it to
conditionally select between the positive and negative of Scalar
constructed from the value bits. This is more expensive than the
unsigned operation, and I don't think it's what anyone really wants.
Making API consumers specify that their literals are unsigned is
slightly annoying, but better than the above alternative.
It would also be nice to change `Scalar::from_hash` to be
`impl<D: Digest<OutputSize = U64>> From<D> for Scalar`,
but this isn't currently allowed by Rust (since that `impl` "could"
conflict with the `impl From<u8>` if someone decided that `u8` should
`impl Digest`).
This changes the primary function for the `VartimeMultiscalarMul` trait
to an `optional_multiscalar_mul` trait that accepts
`Option<Self::Point>` (and returns `None` if any input points are
`None`).
The existing `vartime_multiscalar_mul` is changed to be a wrapper around
this function to avoid code duplication. This may result in an
extra copy of each input point, but that cost is probably not
significant compared to the cost of the multiscalar multiplication.
The motivation is to allow performing multiscalar multiplications with
inline decompression. Currently, API consumers have to allocate
temporary buffers for all of their points, decompress into those
buffers, then pass (iterators over) those buffers into the multiscalar
multiplication code, which then creates new buffers for lookup tables.