Struct ExpandedDifficulty

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pub struct ExpandedDifficulty(/* private fields */);
Expand description

A 256-bit unsigned “expanded difficulty” value.

Used as a target threshold for the difficulty of a block::Hash.

§Consensus

The precise bit pattern of an ExpandedDifficulty value is consensus-critical, because it is compared with the block::Hash.

Note that each CompactDifficulty value can be converted from a range of ExpandedDifficulty values, because the precision of the floating-point format requires rounding on conversion.

Therefore, consensus-critical code must perform the specified conversions to CompactDifficulty, even if the original ExpandedDifficulty values are known.

Callers should avoid constructing ExpandedDifficulty zero values, because they are rejected by the consensus rules, and cause some conversion functions to panic.

The difficulty filter is unchanged from Bitcoin, and is calculated using SHA-256d on the whole block header (including solutionSize and solution). The result is interpreted as a 256-bit integer represented in little-endian byte order, which MUST be less than or equal to the target threshold given by ToTarget(nBits).

Zcash Specification section 7.7.2.

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impl ExpandedDifficulty

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pub fn to_compact(self) -> CompactDifficulty

Calculate the CompactDifficulty for an expanded difficulty.

§Consensus

See ToCompact() in the Zcash Specification, and GetCompact() in zcashd: https://zips.z.cash/protocol/protocol.pdf#nbits

§Panics

If self is zero.

ExpandedDifficulty values are generated in two ways:

  • conversion from CompactDifficulty values, which rejects zeroes, and
  • difficulty adjustment calculations, which impose a non-zero minimum target_difficulty_limit.

Neither of these methods yield zero values.

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pub fn bytes_in_display_order(&self) -> [u8; 32]

Return the difficulty bytes in big-endian byte-order, suitable for printing out byte by byte.

Zebra displays difficulties in big-endian byte-order, following the u256 convention set by Bitcoin and zcashd.

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pub fn from_bytes_in_display_order( bytes_in_display_order: &[u8; 32], ) -> ExpandedDifficulty

Convert bytes in big-endian byte-order into an ExpandedDifficulty.

Zebra displays difficulties in big-endian byte-order, following the u256 convention set by Bitcoin and zcashd.

Preserves the exact difficulty value represented by the bytes, even if it can’t be generated from a CompactDifficulty. This means a round-trip conversion to CompactDifficulty can be lossy.

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impl Clone for ExpandedDifficulty

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fn clone(&self) -> ExpandedDifficulty

Returns a duplicate of the value. Read more
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fn clone_from(&mut self, source: &Self)

Performs copy-assignment from source. Read more
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impl Debug for ExpandedDifficulty

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fn fmt(&self, f: &mut Formatter<'_>) -> Result

Formats the value using the given formatter. Read more
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impl Display for ExpandedDifficulty

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fn fmt(&self, f: &mut Formatter<'_>) -> Result

Formats the value using the given formatter. Read more
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impl<T> Div<T> for ExpandedDifficulty
where T: Into<U256>,

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type Output = ExpandedDifficulty

The resulting type after applying the / operator.
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fn div(self, rhs: T) -> Self::Output

Performs the / operation. Read more
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impl From<ExpandedDifficulty> for CompactDifficulty

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fn from(value: ExpandedDifficulty) -> Self

Converts to this type from the input type.
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impl From<ExpandedDifficulty> for U256

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fn from(value: ExpandedDifficulty) -> Self

Converts to this type from the input type.
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impl From<U256> for ExpandedDifficulty

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fn from(value: U256) -> Self

Converts to this type from the input type.
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impl FromHex for ExpandedDifficulty

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type Error = <[u8; 32] as FromHex>::Error

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fn from_hex<T: AsRef<[u8]>>(hex: T) -> Result<Self, Self::Error>

Creates an instance of type Self from the given hex string, or fails with a custom error type. Read more
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impl Hash for ExpandedDifficulty

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fn hash<__H: Hasher>(&self, state: &mut __H)

Feeds this value into the given Hasher. Read more
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fn hash_slice<H>(data: &[Self], state: &mut H)
where H: Hasher, Self: Sized,

Feeds a slice of this type into the given Hasher. Read more
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impl<T> Mul<T> for ExpandedDifficulty
where U256: Mul<T>, <U256 as Mul<T>>::Output: Into<U256>,

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type Output = ExpandedDifficulty

The resulting type after applying the * operator.
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fn mul(self, rhs: T) -> ExpandedDifficulty

Performs the * operation. Read more
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impl Ord for ExpandedDifficulty

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fn cmp(&self, other: &ExpandedDifficulty) -> Ordering

This method returns an Ordering between self and other. Read more
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fn max(self, other: Self) -> Self
where Self: Sized,

Compares and returns the maximum of two values. Read more
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fn min(self, other: Self) -> Self
where Self: Sized,

Compares and returns the minimum of two values. Read more
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fn clamp(self, min: Self, max: Self) -> Self
where Self: Sized,

Restrict a value to a certain interval. Read more
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impl PartialEq<ExpandedDifficulty> for Hash

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fn eq(&self, other: &ExpandedDifficulty) -> bool

Is self equal to other?

See <ExpandedDifficulty as PartialOrd<block::Hash>::partial_cmp for details.

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fn ne(&self, other: &Rhs) -> bool

Tests for !=. The default implementation is almost always sufficient, and should not be overridden without very good reason.
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impl PartialEq<Hash> for ExpandedDifficulty

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fn eq(&self, other: &Hash) -> bool

Is self equal to other?

See partial_cmp for details.

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fn ne(&self, other: &Rhs) -> bool

Tests for !=. The default implementation is almost always sufficient, and should not be overridden without very good reason.
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impl PartialEq for ExpandedDifficulty

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fn eq(&self, other: &ExpandedDifficulty) -> bool

Tests for self and other values to be equal, and is used by ==.
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fn ne(&self, other: &Rhs) -> bool

Tests for !=. The default implementation is almost always sufficient, and should not be overridden without very good reason.
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impl PartialOrd<ExpandedDifficulty> for Hash

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fn partial_cmp(&self, other: &ExpandedDifficulty) -> Option<Ordering>

How does self compare to other?

§Consensus

See <ExpandedDifficulty as PartialOrd<block::Hash>::partial_cmp for details.

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fn lt(&self, other: &Rhs) -> bool

Tests less than (for self and other) and is used by the < operator. Read more
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fn le(&self, other: &Rhs) -> bool

Tests less than or equal to (for self and other) and is used by the <= operator. Read more
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fn gt(&self, other: &Rhs) -> bool

Tests greater than (for self and other) and is used by the > operator. Read more
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fn ge(&self, other: &Rhs) -> bool

Tests greater than or equal to (for self and other) and is used by the >= operator. Read more
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impl PartialOrd<Hash> for ExpandedDifficulty

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fn partial_cmp(&self, other: &Hash) -> Option<Ordering>

§Consensus

block::Hashes are compared with ExpandedDifficulty thresholds by converting the hash to a 256-bit integer in little-endian order.

Greater values represent less work. This matches the convention in zcashd and bitcoin.

https://zips.z.cash/protocol/protocol.pdf#workdef

1.0.0 · Source§

fn lt(&self, other: &Rhs) -> bool

Tests less than (for self and other) and is used by the < operator. Read more
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fn le(&self, other: &Rhs) -> bool

Tests less than or equal to (for self and other) and is used by the <= operator. Read more
1.0.0 · Source§

fn gt(&self, other: &Rhs) -> bool

Tests greater than (for self and other) and is used by the > operator. Read more
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fn ge(&self, other: &Rhs) -> bool

Tests greater than or equal to (for self and other) and is used by the >= operator. Read more
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impl PartialOrd for ExpandedDifficulty

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fn partial_cmp(&self, other: &ExpandedDifficulty) -> Option<Ordering>

This method returns an ordering between self and other values if one exists. Read more
1.0.0 · Source§

fn lt(&self, other: &Rhs) -> bool

Tests less than (for self and other) and is used by the < operator. Read more
1.0.0 · Source§

fn le(&self, other: &Rhs) -> bool

Tests less than or equal to (for self and other) and is used by the <= operator. Read more
1.0.0 · Source§

fn gt(&self, other: &Rhs) -> bool

Tests greater than (for self and other) and is used by the > operator. Read more
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fn ge(&self, other: &Rhs) -> bool

Tests greater than or equal to (for self and other) and is used by the >= operator. Read more
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impl Sum for ExpandedDifficulty

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fn sum<I: Iterator<Item = ExpandedDifficulty>>(iter: I) -> Self

Takes an iterator and generates Self from the elements by “summing up” the items.
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impl ToHex for &ExpandedDifficulty

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fn encode_hex<T: FromIterator<char>>(&self) -> T

Encode the hex strict representing self into the result. Lower case letters are used (e.g. f9b4ca)
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fn encode_hex_upper<T: FromIterator<char>>(&self) -> T

Encode the hex strict representing self into the result. Upper case letters are used (e.g. F9B4CA)
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impl ToHex for ExpandedDifficulty

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fn encode_hex<T: FromIterator<char>>(&self) -> T

Encode the hex strict representing self into the result. Lower case letters are used (e.g. f9b4ca)
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fn encode_hex_upper<T: FromIterator<char>>(&self) -> T

Encode the hex strict representing self into the result. Upper case letters are used (e.g. F9B4CA)
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impl TryFrom<ExpandedDifficulty> for Work

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type Error = ()

The type returned in the event of a conversion error.
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fn try_from(expanded: ExpandedDifficulty) -> Result<Self, Self::Error>

Performs the conversion.
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impl Copy for ExpandedDifficulty

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impl Eq for ExpandedDifficulty

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impl StructuralPartialEq for ExpandedDifficulty

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