b6d35f6faf
Updated 4763 files with dual copyright: - Parity Technologies (UK) Ltd. - Dijital Kurdistan Tech Institute
673 lines
20 KiB
Rust
673 lines
20 KiB
Rust
// This file is part of Bizinikiwi.
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// Copyright (C) Parity Technologies (UK) Ltd. and Dijital Kurdistan Tech Institute
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// SPDX-License-Identifier: Apache-2.0
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// http://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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use crate::{BoundedBTreeMap, BoundedBTreeSet, BoundedVec, WeakBoundedVec};
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use alloc::vec::Vec;
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use codec::Decode;
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/// Provides the sealed trait `StreamIter`.
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mod private {
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use super::*;
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/// Used as marker trait for types that support stream iteration.
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pub trait StreamIter {
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/// The actual iterator implementation.
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type Iterator: core::iter::Iterator;
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/// Create the stream iterator for the value found at `key`.
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fn stream_iter(key: Vec<u8>) -> Self::Iterator;
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}
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impl<T: codec::Decode> StreamIter for Vec<T> {
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type Iterator = ScaleContainerStreamIter<T>;
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fn stream_iter(key: Vec<u8>) -> Self::Iterator {
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ScaleContainerStreamIter::new(key)
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}
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}
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impl<T: codec::Decode> StreamIter for alloc::collections::btree_set::BTreeSet<T> {
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type Iterator = ScaleContainerStreamIter<T>;
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fn stream_iter(key: Vec<u8>) -> Self::Iterator {
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ScaleContainerStreamIter::new(key)
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}
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}
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impl<K: codec::Decode, V: codec::Decode> StreamIter
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for alloc::collections::btree_map::BTreeMap<K, V>
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{
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type Iterator = ScaleContainerStreamIter<(K, V)>;
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fn stream_iter(key: Vec<u8>) -> Self::Iterator {
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ScaleContainerStreamIter::new(key)
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}
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}
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impl<T: codec::Decode, S> StreamIter for BoundedVec<T, S> {
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type Iterator = ScaleContainerStreamIter<T>;
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fn stream_iter(key: Vec<u8>) -> Self::Iterator {
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ScaleContainerStreamIter::new(key)
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}
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}
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impl<T: codec::Decode, S> StreamIter for WeakBoundedVec<T, S> {
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type Iterator = ScaleContainerStreamIter<T>;
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fn stream_iter(key: Vec<u8>) -> Self::Iterator {
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ScaleContainerStreamIter::new(key)
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}
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}
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impl<K: codec::Decode, V: codec::Decode, S> StreamIter for BoundedBTreeMap<K, V, S> {
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type Iterator = ScaleContainerStreamIter<(K, V)>;
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fn stream_iter(key: Vec<u8>) -> Self::Iterator {
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ScaleContainerStreamIter::new(key)
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}
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}
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impl<T: codec::Decode, S> StreamIter for BoundedBTreeSet<T, S> {
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type Iterator = ScaleContainerStreamIter<T>;
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fn stream_iter(key: Vec<u8>) -> Self::Iterator {
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ScaleContainerStreamIter::new(key)
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}
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}
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}
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/// An iterator that streams values directly from storage.
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///
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/// Requires that `T` implements the sealed trait `StreamIter`.
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///
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/// Instead of loading the entire `T` into memory, the iterator only loads a certain number of bytes
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/// into memory to decode the next `T::Item`. The iterator implementation is allowed to have some
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/// internal buffer to reduce the number of storage reads. The iterator should have an almost
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/// constant memory usage over its lifetime. If at some point there is a decoding error, the
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/// iterator will return `None` to signal that the iterator is finished.
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pub trait StorageStreamIter<T: private::StreamIter> {
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/// Create the streaming iterator.
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fn stream_iter() -> T::Iterator;
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}
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impl<T: private::StreamIter + codec::FullCodec, StorageValue: super::StorageValue<T>>
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StorageStreamIter<T> for StorageValue
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{
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fn stream_iter() -> T::Iterator {
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T::stream_iter(Self::hashed_key().into())
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}
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}
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/// A streaming iterator implementation for SCALE container types.
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///
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/// SCALE container types follow the same type of encoding `Compact<u32>(len) ++ data`.
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/// This type provides an [`Iterator`](core::iter::Iterator) implementation that decodes
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/// one item after another with each call to [`next`](Self::next). The bytes representing
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/// the container are also not read at once into memory and instead being read in chunks. As long
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/// as individual items are smaller than these chunks the memory usage of this iterator should
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/// be constant. On decoding errors [`next`](Self::next) will return `None` to signal that the
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/// iterator is finished.
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pub struct ScaleContainerStreamIter<T> {
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marker: core::marker::PhantomData<T>,
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input: StorageInput,
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length: u32,
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read: u32,
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}
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impl<T> ScaleContainerStreamIter<T> {
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/// Creates a new instance of the stream iterator.
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///
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/// - `key`: Storage key of the container in the state.
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///
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/// Same as [`Self::new_try`], but logs a potential error and sets the length to `0`.
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pub fn new(key: Vec<u8>) -> Self {
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let mut input = StorageInput::new(key);
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let length = if input.exists() {
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match codec::Compact::<u32>::decode(&mut input) {
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Ok(length) => length.0,
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Err(e) => {
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// TODO #3700: error should be handleable.
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log::error!(
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target: "runtime::storage",
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"Corrupted state at `{:?}`: failed to decode element count: {:?}",
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input.key,
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e,
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);
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0
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},
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}
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} else {
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0
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};
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Self { marker: core::marker::PhantomData, input, length, read: 0 }
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}
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/// Creates a new instance of the stream iterator.
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///
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/// - `key`: Storage key of the container in the state.
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///
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/// Returns an error if the length of the container fails to decode.
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pub fn new_try(key: Vec<u8>) -> Result<Self, codec::Error> {
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let mut input = StorageInput::new(key);
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let length = if input.exists() { codec::Compact::<u32>::decode(&mut input)?.0 } else { 0 };
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Ok(Self { marker: core::marker::PhantomData, input, length, read: 0 })
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}
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}
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impl<T: codec::Decode> core::iter::Iterator for ScaleContainerStreamIter<T> {
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type Item = T;
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fn next(&mut self) -> Option<T> {
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if self.read >= self.length {
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return None;
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}
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match codec::Decode::decode(&mut self.input) {
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Ok(r) => {
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self.read += 1;
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Some(r)
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},
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Err(e) => {
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log::error!(
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target: "runtime::storage",
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"Corrupted state at `{:?}`: failed to decode element {} (out of {} in total): {:?}",
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self.input.key,
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self.read,
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self.length,
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e,
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);
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self.read = self.length;
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None
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},
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}
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}
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fn size_hint(&self) -> (usize, Option<usize>) {
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let left = (self.length - self.read) as usize;
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(left, Some(left))
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}
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}
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/// The size of the internal buffer used by [`StorageInput`].
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///
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/// This internal buffer is used to speed up implementation as reading from the
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/// state for every access is too slow.
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const STORAGE_INPUT_BUFFER_CAPACITY: usize = 2 * 1024;
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/// Implementation of [`codec::Input`] using [`pezsp_io::storage::read`].
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///
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/// Keeps an internal buffer with a size of [`STORAGE_INPUT_BUFFER_CAPACITY`]. All read accesses
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/// are tried to be served by this buffer. If the buffer doesn't hold enough bytes to fulfill the
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/// current read access, the buffer is re-filled from the state. A read request that is bigger than
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/// the internal buffer is directly forwarded to the state to reduce the number of reads from the
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/// state.
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struct StorageInput {
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key: Vec<u8>,
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offset: u32,
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total_length: u32,
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exists: bool,
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buffer: Vec<u8>,
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buffer_pos: usize,
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}
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impl StorageInput {
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/// Create a new instance of the input.
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///
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/// - `key`: The storage key of the storage item that this input will read.
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fn new(key: Vec<u8>) -> Self {
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let mut buffer = alloc::vec![0; STORAGE_INPUT_BUFFER_CAPACITY];
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unsafe {
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buffer.set_len(buffer.capacity());
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}
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let (total_length, exists) =
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if let Some(total_length) = pezsp_io::storage::read(&key, &mut buffer, 0) {
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(total_length, true)
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} else {
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(0, false)
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};
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if (total_length as usize) < buffer.len() {
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unsafe {
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buffer.set_len(total_length as usize);
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}
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}
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Self { total_length, offset: buffer.len() as u32, key, exists, buffer, buffer_pos: 0 }
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}
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/// Fill the internal buffer from the state.
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fn fill_buffer(&mut self) -> Result<(), codec::Error> {
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self.buffer.copy_within(self.buffer_pos.., 0);
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let present_bytes = self.buffer.len() - self.buffer_pos;
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self.buffer_pos = 0;
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unsafe {
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self.buffer.set_len(self.buffer.capacity());
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}
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if let Some(length_minus_offset) =
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pezsp_io::storage::read(&self.key, &mut self.buffer[present_bytes..], self.offset)
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{
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let bytes_read =
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core::cmp::min(length_minus_offset as usize, self.buffer.len() - present_bytes);
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let buffer_len = present_bytes + bytes_read;
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unsafe {
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self.buffer.set_len(buffer_len);
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}
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self.ensure_total_length_did_not_change(length_minus_offset)?;
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self.offset += bytes_read as u32;
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Ok(())
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} else {
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// The value was deleted, let's ensure we don't read anymore.
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self.stop_reading();
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Err("Value doesn't exist in the state?".into())
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}
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}
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/// Returns if the value to read exists in the state.
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fn exists(&self) -> bool {
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self.exists
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}
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/// Reads directly into the given slice `into`.
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///
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/// Should be used when `into.len() > self.buffer.capacity()` to reduce the number of reads from
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/// the state.
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#[inline(never)]
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fn read_big_item(&mut self, into: &mut [u8]) -> Result<(), codec::Error> {
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let num_cached = self.buffer.len() - self.buffer_pos;
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let (out_already_read, mut out_remaining) = into.split_at_mut(num_cached);
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out_already_read.copy_from_slice(&self.buffer[self.buffer_pos..]);
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self.buffer_pos = 0;
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unsafe {
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self.buffer.set_len(0);
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}
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if let Some(length_minus_offset) =
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pezsp_io::storage::read(&self.key, &mut out_remaining, self.offset)
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{
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if (length_minus_offset as usize) < out_remaining.len() {
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return Err("Not enough data to fill the buffer".into());
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}
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self.ensure_total_length_did_not_change(length_minus_offset)?;
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self.offset += out_remaining.len() as u32;
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Ok(())
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} else {
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// The value was deleted, let's ensure we don't read anymore.
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self.stop_reading();
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Err("Value doesn't exist in the state?".into())
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}
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}
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/// Ensures that the expected total length of the value did not change.
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///
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/// On error ensures that further reading is prohibited.
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fn ensure_total_length_did_not_change(
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&mut self,
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length_minus_offset: u32,
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) -> Result<(), codec::Error> {
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if self.total_length == self.offset + length_minus_offset {
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Ok(())
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} else {
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// The value total length changed, let's ensure we don't read anymore.
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self.stop_reading();
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Err("Storage value changed while it is being read!".into())
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}
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}
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/// Ensure that we are stop reading from this value in the state.
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///
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/// Should be used when there happened an unrecoverable error while reading.
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fn stop_reading(&mut self) {
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self.offset = self.total_length;
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self.buffer_pos = 0;
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unsafe {
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self.buffer.set_len(0);
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}
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}
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}
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impl codec::Input for StorageInput {
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fn remaining_len(&mut self) -> Result<Option<usize>, codec::Error> {
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Ok(Some(self.total_length.saturating_sub(
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self.offset.saturating_sub((self.buffer.len() - self.buffer_pos) as u32),
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) as usize))
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}
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fn read(&mut self, into: &mut [u8]) -> Result<(), codec::Error> {
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// If there is still data left to be read from the state.
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if self.offset < self.total_length {
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if into.len() > self.buffer.capacity() {
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return self.read_big_item(into);
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} else if self.buffer_pos + into.len() > self.buffer.len() {
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self.fill_buffer()?;
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}
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}
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// Guard against `fill_buffer` not reading enough data or just not having enough data
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// anymore.
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if into.len() + self.buffer_pos > self.buffer.len() {
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return Err("Not enough data to fill the buffer".into());
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}
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let end = self.buffer_pos + into.len();
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into.copy_from_slice(&self.buffer[self.buffer_pos..end]);
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self.buffer_pos = end;
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Ok(())
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}
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}
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#[cfg(test)]
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mod tests {
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use super::*;
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use codec::{Compact, CompactLen, Encode, Input};
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#[crate::storage_alias]
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pub type TestVecU32 = StorageValue<Test, Vec<u32>>;
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#[crate::storage_alias]
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pub type TestVecVecU8 = StorageValue<Test, Vec<Vec<u8>>>;
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#[test]
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fn remaining_len_works() {
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pezsp_io::TestExternalities::default().execute_with(|| {
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let data: Vec<u32> = vec![1, 2, 3, 4, 5];
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TestVecU32::put(&data);
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let mut input = StorageInput::new(TestVecU32::hashed_key().into());
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assert_eq!(
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5 * std::mem::size_of::<u32>() + Compact::<u32>::compact_len(&5) as usize,
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input.remaining_len().ok().flatten().unwrap()
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);
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assert_eq!(5, Compact::<u32>::decode(&mut input).unwrap().0);
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assert_eq!(
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5 * std::mem::size_of::<u32>(),
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input.remaining_len().ok().flatten().unwrap()
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);
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for i in &data {
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assert_eq!(*i, u32::decode(&mut input).unwrap());
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assert_eq!(
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(5 - *i as usize) * std::mem::size_of::<u32>(),
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input.remaining_len().ok().flatten().unwrap()
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);
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}
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let data: Vec<Vec<u8>> = vec![
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vec![0; 20],
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vec![1; STORAGE_INPUT_BUFFER_CAPACITY * 2],
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vec![2; STORAGE_INPUT_BUFFER_CAPACITY * 2],
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vec![3; 30],
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vec![4; 30],
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vec![5; STORAGE_INPUT_BUFFER_CAPACITY * 2],
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vec![6; 30],
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];
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TestVecVecU8::put(&data);
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let mut input = StorageInput::new(TestVecVecU8::hashed_key().into());
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let total_data_len = data
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.iter()
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.map(|v| v.len() + Compact::<u32>::compact_len(&(v.len() as u32)) as usize)
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.sum::<usize>();
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assert_eq!(
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total_data_len + Compact::<u32>::compact_len(&(data.len() as u32)) as usize,
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input.remaining_len().ok().flatten().unwrap()
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);
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assert_eq!(data.len(), Compact::<u32>::decode(&mut input).unwrap().0 as usize);
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assert_eq!(total_data_len, input.remaining_len().ok().flatten().unwrap());
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let mut remaining_len = total_data_len;
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for i in data {
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assert_eq!(i, Vec::<u8>::decode(&mut input).unwrap());
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remaining_len -= i.len() + Compact::<u32>::compact_len(&(i.len() as u32)) as usize;
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assert_eq!(remaining_len, input.remaining_len().ok().flatten().unwrap());
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}
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})
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}
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#[test]
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fn detects_value_total_length_change() {
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pezsp_io::TestExternalities::default().execute_with(|| {
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let test_data: Vec<Vec<Vec<u8>>> = vec![
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vec![vec![0; 20], vec![1; STORAGE_INPUT_BUFFER_CAPACITY * 2]],
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vec![
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vec![0; STORAGE_INPUT_BUFFER_CAPACITY - 1],
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vec![1; STORAGE_INPUT_BUFFER_CAPACITY - 1],
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],
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];
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for data in test_data {
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TestVecVecU8::put(&data);
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let mut input = StorageInput::new(TestVecVecU8::hashed_key().into());
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Compact::<u32>::decode(&mut input).unwrap();
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Vec::<u8>::decode(&mut input).unwrap();
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TestVecVecU8::append(vec![1, 2, 3]);
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assert!(Vec::<u8>::decode(&mut input)
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.unwrap_err()
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.to_string()
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.contains("Storage value changed while it is being read"));
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// Reading a second time should now prevent reading at all.
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assert!(Vec::<u8>::decode(&mut input)
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.unwrap_err()
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.to_string()
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.contains("Not enough data to fill the buffer"));
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}
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})
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}
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#[test]
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fn stream_read_test() {
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pezsp_io::TestExternalities::default().execute_with(|| {
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let data: Vec<u32> = vec![1, 2, 3, 4, 5];
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TestVecU32::put(&data);
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assert_eq!(data, TestVecU32::stream_iter().collect::<Vec<_>>());
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let data: Vec<Vec<u8>> = vec![vec![0; 3000], vec![1; 2500]];
|
|
TestVecVecU8::put(&data);
|
|
|
|
assert_eq!(data, TestVecVecU8::stream_iter().collect::<Vec<_>>());
|
|
})
|
|
}
|
|
|
|
#[test]
|
|
fn reading_big_intermediate_value() {
|
|
pezsp_io::TestExternalities::default().execute_with(|| {
|
|
let data: Vec<Vec<u8>> =
|
|
vec![vec![0; 20], vec![1; STORAGE_INPUT_BUFFER_CAPACITY * 2], vec![2; 30]];
|
|
TestVecVecU8::put(&data);
|
|
|
|
assert_eq!(data, TestVecVecU8::stream_iter().collect::<Vec<_>>());
|
|
|
|
let data: Vec<Vec<u8>> = vec![
|
|
vec![0; 20],
|
|
vec![1; STORAGE_INPUT_BUFFER_CAPACITY * 2],
|
|
vec![2; STORAGE_INPUT_BUFFER_CAPACITY * 2],
|
|
vec![3; 30],
|
|
vec![4; 30],
|
|
vec![5; STORAGE_INPUT_BUFFER_CAPACITY * 2],
|
|
vec![6; 30],
|
|
];
|
|
TestVecVecU8::put(&data);
|
|
|
|
assert_eq!(data, TestVecVecU8::stream_iter().collect::<Vec<_>>());
|
|
})
|
|
}
|
|
|
|
#[test]
|
|
fn reading_more_data_as_in_the_state_is_detected() {
|
|
pezsp_io::TestExternalities::default().execute_with(|| {
|
|
let data: Vec<Vec<u8>> = vec![vec![0; 20], vec![1; STORAGE_INPUT_BUFFER_CAPACITY * 2]];
|
|
TestVecVecU8::put(&data);
|
|
|
|
let mut input = StorageInput::new(TestVecVecU8::hashed_key().into());
|
|
|
|
Compact::<u32>::decode(&mut input).unwrap();
|
|
|
|
Vec::<u8>::decode(&mut input).unwrap();
|
|
|
|
let mut buffer = vec![0; STORAGE_INPUT_BUFFER_CAPACITY * 4];
|
|
assert!(input
|
|
.read(&mut buffer)
|
|
.unwrap_err()
|
|
.to_string()
|
|
.contains("Not enough data to fill the buffer"));
|
|
})
|
|
}
|
|
|
|
#[test]
|
|
fn reading_invalid_data_from_state() {
|
|
pezsp_io::TestExternalities::default().execute_with(|| {
|
|
let data: Vec<u32> = vec![1, 2, 3, 4, 5];
|
|
|
|
let mut data_encoded = data.encode();
|
|
data_encoded.truncate(data_encoded.len() - 2);
|
|
pezsp_io::storage::set(&TestVecU32::hashed_key(), &data_encoded);
|
|
assert_eq!(
|
|
data.iter().copied().take(data.len() - 1).collect::<Vec<_>>(),
|
|
TestVecU32::stream_iter().collect::<Vec<_>>()
|
|
);
|
|
|
|
let data_encoded = data.encode()[2..].to_vec();
|
|
pezsp_io::storage::set(&TestVecU32::hashed_key(), &data_encoded);
|
|
assert!(TestVecU32::stream_iter().collect::<Vec<_>>().is_empty());
|
|
|
|
let data: Vec<Vec<u8>> = vec![vec![0; 20], vec![1; STORAGE_INPUT_BUFFER_CAPACITY * 2]];
|
|
let mut data_encoded = data.encode();
|
|
data_encoded.truncate(data_encoded.len() - 100);
|
|
pezsp_io::storage::set(&TestVecVecU8::hashed_key(), &data_encoded);
|
|
|
|
assert_eq!(
|
|
data.iter().cloned().take(1).collect::<Vec<_>>(),
|
|
TestVecVecU8::stream_iter().collect::<Vec<_>>()
|
|
);
|
|
})
|
|
}
|
|
|
|
#[test]
|
|
fn reading_with_fill_buffer() {
|
|
pezsp_io::TestExternalities::default().execute_with(|| {
|
|
const BUFFER_SIZE: usize = 300;
|
|
// Ensure that the capacity isn't dividable by `300`.
|
|
assert!(
|
|
!STORAGE_INPUT_BUFFER_CAPACITY.is_multiple_of(BUFFER_SIZE),
|
|
"Please update buffer size"
|
|
);
|
|
// Create some items where the last item is partially in the inner buffer so that
|
|
// we need to fill the buffer to read the entire item.
|
|
let data: Vec<Vec<u8>> = (0..=(STORAGE_INPUT_BUFFER_CAPACITY / BUFFER_SIZE))
|
|
.into_iter()
|
|
.map(|i| vec![i as u8; BUFFER_SIZE])
|
|
.collect::<Vec<Vec<u8>>>();
|
|
TestVecVecU8::put(&data);
|
|
|
|
assert_eq!(data, TestVecVecU8::stream_iter().collect::<Vec<_>>());
|
|
|
|
let mut input = StorageInput::new(TestVecVecU8::hashed_key().into());
|
|
|
|
Compact::<u32>::decode(&mut input).unwrap();
|
|
|
|
(0..data.len() - 1).into_iter().for_each(|_| {
|
|
Vec::<u8>::decode(&mut input).unwrap();
|
|
});
|
|
|
|
// Try reading a more data than there should be left.
|
|
let mut result_buffer = vec![0; BUFFER_SIZE * 2];
|
|
assert!(input
|
|
.read(&mut result_buffer)
|
|
.unwrap_err()
|
|
.to_string()
|
|
.contains("Not enough data to fill the buffer"));
|
|
})
|
|
}
|
|
|
|
#[test]
|
|
fn detect_value_deleted_in_state() {
|
|
pezsp_io::TestExternalities::default().execute_with(|| {
|
|
let data: Vec<Vec<u8>> = vec![vec![0; 20], vec![1; STORAGE_INPUT_BUFFER_CAPACITY * 2]];
|
|
TestVecVecU8::put(&data);
|
|
|
|
let mut input = StorageInput::new(TestVecVecU8::hashed_key().into());
|
|
TestVecVecU8::kill();
|
|
|
|
Compact::<u32>::decode(&mut input).unwrap();
|
|
Vec::<u8>::decode(&mut input).unwrap();
|
|
|
|
assert!(Vec::<u8>::decode(&mut input)
|
|
.unwrap_err()
|
|
.to_string()
|
|
.contains("Value doesn't exist in the state?"));
|
|
|
|
const BUFFER_SIZE: usize = 300;
|
|
// Ensure that the capacity isn't dividable by `300`.
|
|
assert!(
|
|
!STORAGE_INPUT_BUFFER_CAPACITY.is_multiple_of(BUFFER_SIZE),
|
|
"Please update buffer size"
|
|
);
|
|
// Create some items where the last item is partially in the inner buffer so that
|
|
// we need to fill the buffer to read the entire item.
|
|
let data: Vec<Vec<u8>> = (0..=(STORAGE_INPUT_BUFFER_CAPACITY / BUFFER_SIZE))
|
|
.into_iter()
|
|
.map(|i| vec![i as u8; BUFFER_SIZE])
|
|
.collect::<Vec<Vec<u8>>>();
|
|
TestVecVecU8::put(&data);
|
|
|
|
let mut input = StorageInput::new(TestVecVecU8::hashed_key().into());
|
|
TestVecVecU8::kill();
|
|
|
|
Compact::<u32>::decode(&mut input).unwrap();
|
|
(0..data.len() - 1).into_iter().for_each(|_| {
|
|
Vec::<u8>::decode(&mut input).unwrap();
|
|
});
|
|
|
|
assert!(Vec::<u8>::decode(&mut input)
|
|
.unwrap_err()
|
|
.to_string()
|
|
.contains("Value doesn't exist in the state?"));
|
|
})
|
|
}
|
|
}
|