Struct snarkvm_algorithms::fft::domain::EvaluationDomain [−][src]
Defines a domain over which finite field (I)FFTs can be performed. Works only for fields that have a large multiplicative subgroup of size that is a power-of-2.
Fields
size: u64
The size of the domain.
log_size_of_group: u32
log_2(self.size)
.
size_as_field_element: F
Size of the domain as a field element.
size_inv: F
Inverse of the size in the field.
group_gen: F
A generator of the subgroup.
group_gen_inv: F
Inverse of the generator of the subgroup.
generator_inv: F
Multiplicative generator of the finite field.
Implementations
impl<F: PrimeField> EvaluationDomain<F>
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pub fn sample_element_outside_domain<R: Rng>(&self, rng: &mut R) -> F
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Sample an element that is not in the domain.
pub fn new(num_coeffs: usize) -> Option<Self>
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Construct a domain that is large enough for evaluations of a polynomial
having num_coeffs
coefficients.
pub fn compute_size_of_domain(num_coeffs: usize) -> Option<usize>
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Return the size of a domain that is large enough for evaluations of a polynomial
having num_coeffs
coefficients.
pub fn size(&self) -> usize
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Return the size of self
.
pub fn fft(&self, coeffs: &[F]) -> Vec<F>
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Compute a FFT.
pub fn fft_in_place(&self, coeffs: &mut Vec<F>)
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Compute a FFT, modifying the vector in place.
pub fn ifft(&self, evals: &[F]) -> Vec<F>
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Compute a IFFT.
pub fn ifft_in_place(&self, evals: &mut Vec<F>)
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Compute a IFFT, modifying the vector in place.
pub fn coset_fft(&self, coeffs: &[F]) -> Vec<F>
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Compute a FFT over a coset of the domain.
pub fn coset_fft_in_place(&self, coeffs: &mut Vec<F>)
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Compute a FFT over a coset of the domain, modifying the input vector in place.
pub fn coset_ifft(&self, evals: &[F]) -> Vec<F>
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Compute a IFFT over a coset of the domain.
pub fn coset_ifft_in_place(&self, evals: &mut Vec<F>)
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Compute a IFFT over a coset of the domain, modifying the input vector in place.
pub fn evaluate_all_lagrange_coefficients(&self, tau: F) -> Vec<F>
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Evaluate all the lagrange polynomials defined by this domain at the point
tau
.
pub fn vanishing_polynomial(&self) -> SparsePolynomial<F>
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Return the sparse vanishing polynomial.
pub fn evaluate_vanishing_polynomial(&self, tau: F) -> F
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This evaluates the vanishing polynomial for this domain at tau.
For multiplicative subgroups, this polynomial is z(X) = X^self.size - 1
.
pub fn elements(&self) -> Elements<F>ⓘNotable traits for Elements<F>
impl<F: PrimeField> Iterator for Elements<F> type Item = F;
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Notable traits for Elements<F>
impl<F: PrimeField> Iterator for Elements<F> type Item = F;
Return an iterator over the elements of the domain.
pub fn divide_by_vanishing_poly_on_coset_in_place(&self, evals: &mut [F])
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The target polynomial is the zero polynomial in our evaluation domain, so we must perform division over a coset.
pub fn reindex_by_subdomain(&self, other: Self, index: usize) -> usize
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Given an index which assumes the first elements of this domain are the elements of another (sub)domain with size size_s, this returns the actual index into this domain.
#[must_use]pub fn mul_polynomials_in_evaluation_domain(
&self,
self_evals: &[F],
other_evals: &[F]
) -> Vec<F>
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&self,
self_evals: &[F],
other_evals: &[F]
) -> Vec<F>
Perform O(n) multiplication of two polynomials that are presented by their evaluations in the domain. Returns the evaluations of the product over the domain.
Trait Implementations
impl<F: PrimeField> CanonicalDeserialize for EvaluationDomain<F>
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fn deserialize<R: Read>(reader: &mut R) -> Result<Self, SerializationError>
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fn deserialize_uncompressed<R: Read>(
reader: &mut R
) -> Result<Self, SerializationError>
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reader: &mut R
) -> Result<Self, SerializationError>
impl<F: PrimeField> CanonicalSerialize for EvaluationDomain<F>
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fn serialize<W: Write>(&self, writer: &mut W) -> Result<(), SerializationError>
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fn serialized_size(&self) -> usize
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fn serialize_uncompressed<W: Write>(
&self,
writer: &mut W
) -> Result<(), SerializationError>
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&self,
writer: &mut W
) -> Result<(), SerializationError>
fn uncompressed_size(&self) -> usize
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impl<F: Clone + PrimeField> Clone for EvaluationDomain<F>
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fn clone(&self) -> EvaluationDomain<F>
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pub fn clone_from(&mut self, source: &Self)
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impl<F: Copy + PrimeField> Copy for EvaluationDomain<F>
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impl<F: PrimeField> Debug for EvaluationDomain<F>
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impl<F: Eq + PrimeField> Eq for EvaluationDomain<F>
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impl<F: Hash + PrimeField> Hash for EvaluationDomain<F>
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fn hash<__H: Hasher>(&self, state: &mut __H)
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pub fn hash_slice<H>(data: &[Self], state: &mut H) where
H: Hasher,
1.3.0[src]
H: Hasher,
impl<F: PartialEq + PrimeField> PartialEq<EvaluationDomain<F>> for EvaluationDomain<F>
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fn eq(&self, other: &EvaluationDomain<F>) -> bool
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fn ne(&self, other: &EvaluationDomain<F>) -> bool
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impl<F: PrimeField> StructuralEq for EvaluationDomain<F>
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impl<F: PrimeField> StructuralPartialEq for EvaluationDomain<F>
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Auto Trait Implementations
impl<F> RefUnwindSafe for EvaluationDomain<F> where
F: RefUnwindSafe,
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F: RefUnwindSafe,
impl<F> Send for EvaluationDomain<F>
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impl<F> Sync for EvaluationDomain<F>
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impl<F> Unpin for EvaluationDomain<F> where
F: Unpin,
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F: Unpin,
impl<F> UnwindSafe for EvaluationDomain<F> where
F: UnwindSafe,
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F: UnwindSafe,
Blanket Implementations
impl<T> Any for T where
T: 'static + ?Sized,
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T: 'static + ?Sized,
impl<T> Borrow<T> for T where
T: ?Sized,
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T: ?Sized,
impl<T> BorrowMut<T> for T where
T: ?Sized,
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T: ?Sized,
pub fn borrow_mut(&mut self) -> &mut T
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impl<Q, K> Equivalent<K> for Q where
K: Borrow<Q> + ?Sized,
Q: Eq + ?Sized,
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K: Borrow<Q> + ?Sized,
Q: Eq + ?Sized,
pub fn equivalent(&self, key: &K) -> bool
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impl<T> From<T> for T
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impl<T, U> Into<U> for T where
U: From<T>,
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U: From<T>,
impl<T> Pointable for T
pub const ALIGN: usize
type Init = T
The type for initializers.
pub unsafe fn init(init: <T as Pointable>::Init) -> usize
pub unsafe fn deref<'a>(ptr: usize) -> &'a T
pub unsafe fn deref_mut<'a>(ptr: usize) -> &'a mut T
pub unsafe fn drop(ptr: usize)
impl<T> Same<T> for T
type Output = T
Should always be Self
impl<T> ToOwned for T where
T: Clone,
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T: Clone,
type Owned = T
The resulting type after obtaining ownership.
pub fn to_owned(&self) -> T
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pub fn clone_into(&self, target: &mut T)
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impl<T, U> TryFrom<U> for T where
U: Into<T>,
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U: Into<T>,
type Error = Infallible
The type returned in the event of a conversion error.
pub fn try_from(value: U) -> Result<T, <T as TryFrom<U>>::Error>
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impl<T, U> TryInto<U> for T where
U: TryFrom<T>,
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U: TryFrom<T>,
type Error = <U as TryFrom<T>>::Error
The type returned in the event of a conversion error.
pub fn try_into(self) -> Result<U, <U as TryFrom<T>>::Error>
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impl<V, T> VZip<V> for T where
V: MultiLane<T>,
V: MultiLane<T>,