tidecoin-primitives 0.102.0

Primitive types used by the rust-tidecoin ecosystem
Documentation
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// SPDX-License-Identifier: CC0-1.0

//! Tidecoin scripts.

mod borrowed;
mod builder;
mod instruction;
mod owned;
mod push_bytes;
mod tag;
#[cfg(test)]
mod tests;
mod witness_program;

use core::cmp::Ordering;
use core::fmt;
#[cfg(feature = "serde")]
use core::marker::PhantomData;

#[cfg(feature = "hex")]
use internals::hex::DisplayHex;
use internals::script::{self, PushDataLenLen};

use crate::prelude::rc::Rc;
#[cfg(target_has_atomic = "ptr")]
use crate::prelude::sync::Arc;
use crate::prelude::{Borrow, BorrowMut, Box, Cow, ToOwned, Vec};

#[rustfmt::skip]                // Keep public re-exports separate.
#[doc(inline)]
pub use self::{
    builder::Builder,
    borrowed::{Script, ScriptEncoder},
    instruction::{Instruction, InstructionIndices, Instructions},
    owned::{ScriptBuf, ScriptBufDecoder, ScriptBufDecoderError},
    push_bytes::{PushBytes, PushBytesBuf, PushBytesError, ScriptIntError},
    tag::{Tag, RedeemScriptTag, ScriptPubKeyTag, ScriptSigTag, WitnessScriptTag},
    witness_program::{
        validate_witness_program, ParsedWitnessProgram, WitnessProgramClass, WitnessProgramError,
        P2A_PROGRAM, WITNESS_PROGRAM_MAX_SIZE, WITNESS_PROGRAM_MIN_SIZE,
    },
};
#[doc(inline)]
pub use crate::hash_types::{
    RedeemScriptSizeError, ScriptHash, WScriptHash, WitnessScriptSizeError,
};

/// A P2SH redeem script.
pub type RedeemScriptBuf = ScriptBuf<RedeemScriptTag>;

/// A reference to a P2SH redeem script.
pub type RedeemScript = Script<RedeemScriptTag>;

/// A reference to a `scriptPubKey` (locking script).
pub type ScriptPubKey = Script<ScriptPubKeyTag>;

/// A reference to a script signature (scriptSig).
pub type ScriptSig = Script<ScriptSigTag>;

/// A `scriptPubKey` (locking script).
pub type ScriptPubKeyBuf = ScriptBuf<ScriptPubKeyTag>;

/// A `scriptPubKey` decoder.
pub type ScriptPubKeyBufDecoder = ScriptBufDecoder<ScriptPubKeyTag>;

/// A script signature (scriptSig).
pub type ScriptSigBuf = ScriptBuf<ScriptSigTag>;

/// A `scriptSig` decoder.
pub type ScriptSigBufDecoder = ScriptBufDecoder<ScriptSigTag>;

/// A Segwit v0 witness script.
pub type WitnessScriptBuf = ScriptBuf<WitnessScriptTag>;

/// A reference to a Segwit v0 witness script.
pub type WitnessScript = Script<WitnessScriptTag>;

/// Basic script decoding/building errors.
#[derive(Debug, Clone, PartialEq, Eq)]
pub enum Error {
    /// Non-minimal push encoding.
    NonMinimalPush,
    /// Script ended while parsing an instruction.
    EarlyEndOfScript,
    /// Numeric overflow while parsing or serializing a script integer.
    NumericOverflow,
}

impl fmt::Display for Error {
    fn fmt(&self, f: &mut fmt::Formatter<'_>) -> fmt::Result {
        match self {
            Self::NonMinimalPush => f.write_str("non-minimal datapush"),
            Self::EarlyEndOfScript => f.write_str("unexpected end of script"),
            Self::NumericOverflow => {
                f.write_str("numeric overflow (number on stack larger than 4 bytes)")
            }
        }
    }
}

#[cfg(feature = "std")]
impl std::error::Error for Error {}

/// The maximum allowed redeem script size for a P2SH output.
pub const MAX_REDEEM_SCRIPT_SIZE: usize = 520;
/// The maximum allowed redeem script size of the witness script.
pub const MAX_WITNESS_SCRIPT_SIZE: usize = 10_000;
/// Standard script-number byte limit used by arithmetic and most script opcodes.
pub const SCRIPTNUM_STANDARD_MAX_LEN: usize = 4;
/// Extended script-number byte limit used by lock-time related opcodes.
pub const SCRIPTNUM_CLTV_MAX_LEN: usize = 5;

/// Either a redeem script or a Segwit version 0 scriptpubkey.
///
/// In the case of P2SH-wrapped Segwit version outputs, we take a Segwit scriptPubKey
/// and put it in a redeem script slot. Tidecoin script validation has special logic to handle this
/// case, which is reflected in our API in several methods
/// relating to P2SH and signature hashing. These methods take either a normal
/// P2SH redeem script, or a Segwit version 0 scriptpubkey.
///
/// Higher witness versions do **not** support P2SH-wrapping, and such scriptPubKeys should not be
/// used with this trait.
pub trait ScriptHashableTag: sealed::Sealed {}

impl ScriptHashableTag for RedeemScriptTag {}
impl ScriptHashableTag for ScriptPubKeyTag {}

mod sealed {
    pub trait Sealed {}
    impl Sealed for super::RedeemScriptTag {}
    impl Sealed for super::ScriptPubKeyTag {}
}

impl<T: ScriptHashableTag> TryFrom<ScriptBuf<T>> for ScriptHash {
    type Error = RedeemScriptSizeError;

    #[inline]
    fn try_from(redeem_script: ScriptBuf<T>) -> Result<Self, Self::Error> {
        Self::from_script(&redeem_script)
    }
}

impl<T: ScriptHashableTag> TryFrom<&ScriptBuf<T>> for ScriptHash {
    type Error = RedeemScriptSizeError;

    #[inline]
    fn try_from(redeem_script: &ScriptBuf<T>) -> Result<Self, Self::Error> {
        Self::from_script(redeem_script)
    }
}

impl<T: ScriptHashableTag> TryFrom<&Script<T>> for ScriptHash {
    type Error = RedeemScriptSizeError;

    #[inline]
    fn try_from(redeem_script: &Script<T>) -> Result<Self, Self::Error> {
        Self::from_script(redeem_script)
    }
}

impl TryFrom<WitnessScriptBuf> for WScriptHash {
    type Error = WitnessScriptSizeError;

    #[inline]
    fn try_from(witness_script: WitnessScriptBuf) -> Result<Self, Self::Error> {
        Self::from_script(&witness_script)
    }
}

impl TryFrom<&WitnessScriptBuf> for WScriptHash {
    type Error = WitnessScriptSizeError;

    #[inline]
    fn try_from(witness_script: &WitnessScriptBuf) -> Result<Self, Self::Error> {
        Self::from_script(witness_script)
    }
}

impl TryFrom<&WitnessScript> for WScriptHash {
    type Error = WitnessScriptSizeError;

    #[inline]
    fn try_from(witness_script: &WitnessScript) -> Result<Self, Self::Error> {
        Self::from_script(witness_script)
    }
}

/// Encodes an integer in script number format.
///
/// # Panics
///
/// Panics if the encoded value exceeds the legacy 8-byte output buffer.
pub fn write_scriptint(out: &mut [u8; 8], n: i64) -> usize {
    let encoded = encode_scriptnum(n);
    assert!(encoded.len() <= out.len(), "encoded script integer exceeds output buffer");
    out[..encoded.len()].copy_from_slice(&encoded);
    encoded.len()
}

/// Encodes an integer in script number format into a freshly allocated buffer.
pub fn encode_scriptnum(n: i64) -> Vec<u8> {
    if n == 0 {
        return Vec::new();
    }

    let mut encoded = Vec::new();
    let neg = n < 0;
    let mut abs = n.unsigned_abs();
    while abs > 0 {
        encoded.push((abs & 0xff) as u8);
        abs >>= 8;
    }

    if let Some(last) = encoded.last_mut() {
        if *last & 0x80 != 0 {
            encoded.push(if neg { 0x80 } else { 0 });
        } else if neg {
            *last |= 0x80;
        }
    }

    encoded
}

/// Decodes a script integer without enforcing minimal encoding.
///
/// # Errors
///
/// Returns [`ScriptIntError::NumericOverflow`] when `v` exceeds the standard 4-byte script bound.
///
/// # Panics
///
/// Panics only if the internal 4-byte bound invariant is violated.
pub fn read_scriptint_non_minimal(v: &[u8]) -> Result<i32, ScriptIntError> {
    let ret = read_scriptnum(v, false, SCRIPTNUM_STANDARD_MAX_LEN)?;
    Ok(i32::try_from(ret).expect("4 bytes or less fits in i32"))
}

/// Decodes a script number with caller-selected minimal-encoding and length rules.
///
/// # Errors
///
/// Returns [`ScriptIntError::NumericOverflow`] when `v` is longer than `max_len`, and
/// [`ScriptIntError::NonMinimal`] when `require_minimal` is true and the encoding is non-minimal.
pub fn read_scriptnum(
    v: &[u8],
    require_minimal: bool,
    max_len: usize,
) -> Result<i64, ScriptIntError> {
    if v.is_empty() {
        return Ok(0);
    }
    if v.len() > max_len {
        return Err(ScriptIntError::NumericOverflow);
    }
    if require_minimal && !is_minimally_encoded_scriptnum(v, max_len) {
        return Err(ScriptIntError::NonMinimal);
    }

    let mut ret = 0i64;
    let mut sh = 0;
    for byte in v {
        ret += i64::from(*byte) << sh;
        sh += 8;
    }
    if v[v.len() - 1] & 0x80 != 0 {
        ret &= (1 << (sh - 1)) - 1;
        ret = -ret;
    }
    Ok(ret)
}

/// Returns whether a script-number byte slice uses minimal encoding for the provided bound.
pub fn is_minimally_encoded_scriptnum(v: &[u8], max_len: usize) -> bool {
    if v.len() > max_len {
        return false;
    }
    if v.is_empty() {
        return true;
    }

    let last = v[v.len() - 1];
    if last.trailing_zeros() >= 7 {
        if v.len() == 1 {
            return false;
        }
        if v[v.len() - 2] & 0x80 == 0 {
            return false;
        }
    }

    true
}

/// Decodes a script truth value.
///
/// This uses script boolean semantics: all zero bytes and negative zero are false; every other
/// byte string is true. Numeric-overflow rules do not apply.
#[inline]
pub fn read_scriptbool(v: &[u8]) -> bool {
    match v.split_last() {
        Some((last, rest)) => !((last & !0x80 == 0x00) && rest.iter().all(|&b| b == 0)),
        None => false,
    }
}

// We keep all the `Script` and `ScriptBuf` impls together since it's easier to see side-by-side.

impl<T> From<ScriptBuf<T>> for Box<Script<T>> {
    #[inline]
    fn from(v: ScriptBuf<T>) -> Self {
        v.into_boxed_script()
    }
}

impl<T> From<ScriptBuf<T>> for Cow<'_, Script<T>> {
    #[inline]
    fn from(value: ScriptBuf<T>) -> Self {
        Cow::Owned(value)
    }
}

impl<'a, T> From<Cow<'a, Script<T>>> for ScriptBuf<T> {
    #[inline]
    fn from(value: Cow<'a, Script<T>>) -> Self {
        match value {
            Cow::Owned(owned) => owned,
            Cow::Borrowed(borrowed) => borrowed.into(),
        }
    }
}

impl<'a, T> From<Cow<'a, Script<T>>> for Box<Script<T>> {
    #[inline]
    fn from(value: Cow<'a, Script<T>>) -> Self {
        match value {
            Cow::Owned(owned) => owned.into(),
            Cow::Borrowed(borrowed) => borrowed.into(),
        }
    }
}

impl<'a, T> From<&'a Script<T>> for Box<Script<T>> {
    #[inline]
    fn from(value: &'a Script<T>) -> Self {
        value.to_owned().into()
    }
}

impl<'a, T> From<&'a Script<T>> for ScriptBuf<T> {
    #[inline]
    fn from(value: &'a Script<T>) -> Self {
        value.to_owned()
    }
}

impl<'a, T> From<&'a Script<T>> for Cow<'a, Script<T>> {
    #[inline]
    fn from(value: &'a Script<T>) -> Self {
        Cow::Borrowed(value)
    }
}

/// Note: This will fail to compile on old Rust for targets that don't support atomics
#[cfg(target_has_atomic = "ptr")]
impl<'a, T> From<&'a Script<T>> for Arc<Script<T>> {
    #[inline]
    fn from(value: &'a Script<T>) -> Self {
        Script::from_arc_bytes(Arc::from(value.as_bytes()))
    }
}

impl<'a, T> From<&'a Script<T>> for Rc<Script<T>> {
    #[inline]
    fn from(value: &'a Script<T>) -> Self {
        Script::from_rc_bytes(Rc::from(value.as_bytes()))
    }
}

impl<T> From<Vec<u8>> for ScriptBuf<T> {
    #[inline]
    fn from(v: Vec<u8>) -> Self {
        Self::from_bytes(v)
    }
}

impl<T> From<ScriptBuf<T>> for Vec<u8> {
    #[inline]
    fn from(v: ScriptBuf<T>) -> Self {
        v.into_bytes()
    }
}

impl<T> AsRef<Self> for Script<T> {
    #[inline]
    fn as_ref(&self) -> &Self {
        self
    }
}

impl<T> AsRef<Script<T>> for ScriptBuf<T> {
    #[inline]
    fn as_ref(&self) -> &Script<T> {
        self
    }
}

impl<T> AsRef<[u8]> for Script<T> {
    #[inline]
    fn as_ref(&self) -> &[u8] {
        self.as_bytes()
    }
}

impl<T> AsRef<[u8]> for ScriptBuf<T> {
    #[inline]
    fn as_ref(&self) -> &[u8] {
        self.as_bytes()
    }
}

impl<T> AsMut<Self> for Script<T> {
    #[inline]
    fn as_mut(&mut self) -> &mut Self {
        self
    }
}

impl<T> AsMut<Script<T>> for ScriptBuf<T> {
    #[inline]
    fn as_mut(&mut self) -> &mut Script<T> {
        self
    }
}

impl<T> AsMut<[u8]> for Script<T> {
    #[inline]
    fn as_mut(&mut self) -> &mut [u8] {
        self.as_mut_bytes()
    }
}

impl<T> AsMut<[u8]> for ScriptBuf<T> {
    #[inline]
    fn as_mut(&mut self) -> &mut [u8] {
        self.as_mut_bytes()
    }
}

impl<T> fmt::Debug for Script<T> {
    fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
        f.write_str("Script(")?;
        fmt::Display::fmt(self, f)?;
        f.write_str(")")
    }
}

impl<T> fmt::Debug for ScriptBuf<T> {
    #[inline]
    fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
        fmt::Debug::fmt(self.as_script(), f)
    }
}

impl<T> fmt::Display for Script<T> {
    fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
        // This has to be a macro because it needs to break the loop
        macro_rules! read_push_data_len {
            ($iter:expr, $size:path, $formatter:expr) => {
                match script::read_push_data_len($iter, $size) {
                    Ok(n) => n,
                    Err(_) => {
                        $formatter.write_str("<unexpected end>")?;
                        break;
                    }
                }
            };
        }

        let mut iter = self.as_bytes().iter();
        // Was at least one opcode emitted?
        let mut at_least_one = false;
        // `iter` needs to be borrowed in `read_push_data_len`, so we have to use `while let` instead
        // of `for`.
        while let Some(byte) = iter.next().copied() {
            use crate::opcodes::{OP_PUSHDATA1, OP_PUSHDATA2, OP_PUSHDATA4};

            let data_len = if byte <= 75 {
                usize::from(byte)
            } else {
                match byte {
                    OP_PUSHDATA1 => {
                        // side effects: may write and break from the loop
                        read_push_data_len!(&mut iter, PushDataLenLen::One, f)
                    }
                    OP_PUSHDATA2 => {
                        // side effects: may write and break from the loop
                        read_push_data_len!(&mut iter, PushDataLenLen::Two, f)
                    }
                    OP_PUSHDATA4 => {
                        // side effects: may write and break from the loop
                        read_push_data_len!(&mut iter, PushDataLenLen::Four, f)
                    }
                    _ => 0,
                }
            };

            if at_least_one {
                f.write_str(" ")?;
            } else {
                at_least_one = true;
            }
            // Write the opcode
            crate::opcodes::fmt_opcode(byte, f)?;
            // Write any pushdata
            if data_len > 0 {
                f.write_str(" ")?;
                if data_len <= iter.len() {
                    for ch in iter.by_ref().take(data_len) {
                        write!(f, "{:02x}", ch)?;
                    }
                } else {
                    f.write_str("<push past end>")?;
                    break;
                }
            }
        }
        Ok(())
    }
}

impl<T> fmt::Display for ScriptBuf<T> {
    #[inline]
    fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
        fmt::Display::fmt(self.as_script(), f)
    }
}

#[cfg(feature = "hex")]
impl<T> fmt::LowerHex for Script<T> {
    #[inline]
    fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
        fmt::LowerHex::fmt(&self.as_bytes().as_hex(), f)
    }
}

#[cfg(feature = "hex")]
impl<T> fmt::LowerHex for ScriptBuf<T> {
    #[inline]
    fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
        fmt::LowerHex::fmt(self.as_script(), f)
    }
}

#[cfg(feature = "hex")]
impl<T> fmt::UpperHex for Script<T> {
    #[inline]
    fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
        fmt::UpperHex::fmt(&self.as_bytes().as_hex(), f)
    }
}

#[cfg(feature = "hex")]
impl<T> fmt::UpperHex for ScriptBuf<T> {
    #[inline]
    fn fmt(&self, f: &mut fmt::Formatter) -> fmt::Result {
        fmt::UpperHex::fmt(self.as_script(), f)
    }
}

impl<T> Borrow<Script<T>> for ScriptBuf<T> {
    #[inline]
    fn borrow(&self) -> &Script<T> {
        self
    }
}

impl<T> BorrowMut<Script<T>> for ScriptBuf<T> {
    #[inline]
    fn borrow_mut(&mut self) -> &mut Script<T> {
        self
    }
}

impl<T: PartialEq> PartialEq<ScriptBuf<T>> for Script<T> {
    #[inline]
    fn eq(&self, other: &ScriptBuf<T>) -> bool {
        self.eq(other.as_script())
    }
}

impl<T: PartialEq> PartialEq<Script<T>> for ScriptBuf<T> {
    #[inline]
    fn eq(&self, other: &Script<T>) -> bool {
        self.as_script().eq(other)
    }
}

impl<T: PartialOrd> PartialOrd<Script<T>> for ScriptBuf<T> {
    #[inline]
    fn partial_cmp(&self, other: &Script<T>) -> Option<Ordering> {
        self.as_script().partial_cmp(other)
    }
}

impl<T: PartialOrd> PartialOrd<ScriptBuf<T>> for Script<T> {
    #[inline]
    fn partial_cmp(&self, other: &ScriptBuf<T>) -> Option<Ordering> {
        self.partial_cmp(other.as_script())
    }
}

#[cfg(feature = "serde")]
impl<T> serde::Serialize for Script<T> {
    /// User-facing serialization for `Script`.
    fn serialize<S>(&self, serializer: S) -> Result<S::Ok, S::Error>
    where
        S: serde::Serializer,
    {
        if serializer.is_human_readable() {
            serializer.collect_str(&format_args!("{:x}", self))
        } else {
            serializer.serialize_bytes(self.as_bytes())
        }
    }
}

/// Can only deserialize borrowed bytes.
#[cfg(feature = "serde")]
impl<'de, T> serde::Deserialize<'de> for &'de Script<T> {
    fn deserialize<D>(deserializer: D) -> Result<Self, D::Error>
    where
        D: serde::Deserializer<'de>,
    {
        struct Visitor<T>(PhantomData<T>);
        impl<'de, T: 'de> serde::de::Visitor<'de> for Visitor<T> {
            type Value = &'de Script<T>;

            fn expecting(&self, formatter: &mut fmt::Formatter) -> fmt::Result {
                formatter.write_str("borrowed bytes")
            }

            fn visit_borrowed_bytes<E>(self, v: &'de [u8]) -> Result<Self::Value, E>
            where
                E: serde::de::Error,
            {
                Ok(Script::from_bytes(v))
            }
        }

        if deserializer.is_human_readable() {
            use crate::serde::de::Error;

            return Err(D::Error::custom(
                "deserialization of `&Script` from human-readable formats is not possible",
            ));
        }

        deserializer.deserialize_bytes(Visitor(PhantomData))
    }
}

#[cfg(feature = "serde")]
impl<T> serde::Serialize for ScriptBuf<T> {
    /// User-facing serialization for `Script`.
    fn serialize<S>(&self, serializer: S) -> Result<S::Ok, S::Error>
    where
        S: serde::Serializer,
    {
        (**self).serialize(serializer)
    }
}

#[cfg(feature = "serde")]
impl<'de, T> serde::Deserialize<'de> for ScriptBuf<T> {
    fn deserialize<D>(deserializer: D) -> Result<Self, D::Error>
    where
        D: serde::Deserializer<'de>,
    {
        use core::fmt::Formatter;

        if deserializer.is_human_readable() {
            struct Visitor<T>(PhantomData<T>);
            impl<T> serde::de::Visitor<'_> for Visitor<T> {
                type Value = ScriptBuf<T>;

                fn expecting(&self, formatter: &mut Formatter) -> fmt::Result {
                    formatter.write_str("a script hex")
                }

                fn visit_str<E>(self, v: &str) -> Result<Self::Value, E>
                where
                    E: serde::de::Error,
                {
                    let v = hex::decode_to_vec(v).map_err(E::custom)?;
                    Ok(ScriptBuf::from(v))
                }
            }
            deserializer.deserialize_str(Visitor(PhantomData))
        } else {
            struct BytesVisitor<T>(PhantomData<T>);

            impl<T> serde::de::Visitor<'_> for BytesVisitor<T> {
                type Value = ScriptBuf<T>;

                fn expecting(&self, formatter: &mut Formatter) -> fmt::Result {
                    formatter.write_str("a script Vec<u8>")
                }

                fn visit_bytes<E>(self, v: &[u8]) -> Result<Self::Value, E>
                where
                    E: serde::de::Error,
                {
                    Ok(ScriptBuf::from(v.to_vec()))
                }

                fn visit_byte_buf<E>(self, v: Vec<u8>) -> Result<Self::Value, E>
                where
                    E: serde::de::Error,
                {
                    Ok(ScriptBuf::from(v))
                }
            }
            deserializer.deserialize_byte_buf(BytesVisitor(PhantomData))
        }
    }
}