mirror of
https://github.com/pezkuwichain/pezkuwi-subxt.git
synced 2026-04-26 15:47:58 +00:00
2e5522444a
* Use 'Pallet' struct in construct_runtime. * Fix genesis and metadata macro. * Fix 'Pallet' type alias. * Replace 'Module' with 'Pallet' for all construct_runtime use cases. * Replace more deprecated 'Module' struct. * Bring back AllModules and AllPalletsWithSystem type, but deprecate them. * Replace deprecated 'Module' struct from merge master. * Minor fix. * Fix UI tests. * Revert UI override in derive_no_bound. * Fix more deprecated 'Module' use from master branch. * Fix more deprecated 'Module' use from master branch.
424 lines
16 KiB
Rust
424 lines
16 KiB
Rust
// This file is part of Substrate.
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// Copyright (C) 2017-2021 Parity Technologies (UK) Ltd.
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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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//! Proc macro of Support code for the runtime.
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#![recursion_limit = "512"]
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mod storage;
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mod construct_runtime;
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mod pallet;
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mod pallet_version;
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mod transactional;
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mod debug_no_bound;
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mod clone_no_bound;
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mod partial_eq_no_bound;
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pub(crate) use storage::INHERENT_INSTANCE_NAME;
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use proc_macro::TokenStream;
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/// Declares strongly-typed wrappers around codec-compatible types in storage.
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///
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/// ## Example
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///
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/// ```nocompile
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/// decl_storage! {
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/// trait Store for Module<T: Config> as Example {
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/// Foo get(fn foo) config(): u32=12;
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/// Bar: map hasher(identity) u32 => u32;
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/// pub Zed build(|config| vec![(0, 0)]): map hasher(identity) u32 => u32;
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/// }
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/// }
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/// ```
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///
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/// Declaration is set with the header `(pub) trait Store for Module<T: Config> as Example`,
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/// with `Store` a (pub) trait generated associating each storage item to the `Module` and
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/// `as Example` setting the prefix used for storage items of this module. `Example` must be unique:
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/// another module with the same name and the same inner storage item name will conflict.
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/// `Example` is called the module prefix.
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///
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/// note: For instantiable modules the module prefix is prepended with instance
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/// prefix. Instance prefix is "" for default instance and "Instance$n" for instance number $n.
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/// Thus, instance 3 of module Example has a module prefix of `Instance3Example`
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///
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/// Basic storage consists of a name and a type; supported types are:
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///
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/// * Value: `Foo: type`: Implements the
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/// [`StorageValue`](../frame_support/storage/trait.StorageValue.html) trait using the
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/// [`StorageValue generator`](../frame_support/storage/generator/trait.StorageValue.html).
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///
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/// The generator is implemented with:
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/// * `module_prefix`: module_prefix
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/// * `storage_prefix`: storage_name
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///
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/// Thus the storage value is finally stored at:
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/// ```nocompile
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/// Twox128(module_prefix) ++ Twox128(storage_prefix)
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/// ```
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///
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/// * Map: `Foo: map hasher($hash) type => type`: Implements the
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/// [`StorageMap`](../frame_support/storage/trait.StorageMap.html) trait using the
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/// [`StorageMap generator`](../frame_support/storage/generator/trait.StorageMap.html).
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/// And [`StoragePrefixedMap`](../frame_support/storage/trait.StoragePrefixedMap.html).
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///
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/// `$hash` representing a choice of hashing algorithms available in the
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/// [`Hashable`](../frame_support/trait.Hashable.html) trait. You will generally want to use one
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/// of three hashers:
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/// * `blake2_128_concat`: The default, safe choice. Use if you are unsure or don't care. It is
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/// secure against user-tainted keys, fairly fast and memory-efficient and supports
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/// iteration over its keys and values. This must be used if the keys of your map can be
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/// selected *en masse* by untrusted users.
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/// * `twox_64_concat`: This is an insecure hasher and can only be used safely if you know that
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/// the preimages cannot be chosen at will by untrusted users. It is memory-efficient, extremely
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/// performant and supports iteration over its keys and values. You can safely use this is the
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/// key is:
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/// - A (slowly) incrementing index.
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/// - Known to be the result of a cryptographic hash (though `identity` is a better choice here).
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/// - Known to be the public key of a cryptographic key pair in existence.
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/// * `identity`: This is not a hasher at all, and just uses the key material directly. Since it
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/// does no hashing or appending, it's the fastest possible hasher, however, it's also the least
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/// secure. It can be used only if you know that the key will be cryptographically/securely
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/// randomly distributed over the binary encoding space. In most cases this will not be true.
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/// One case where it is true, however, if where the key is itself the result of a cryptographic
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/// hash of some existent data.
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///
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/// Other hashers will tend to be "opaque" and not support iteration over the keys in the
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/// map. It is not recommended to use these.
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///
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/// The generator is implemented with:
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/// * `module_prefix`: $module_prefix
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/// * `storage_prefix`: storage_name
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/// * `Hasher`: $hash
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///
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/// Thus the keys are stored at:
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/// ```nocompile
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/// twox128(module_prefix) ++ twox128(storage_prefix) ++ hasher(encode(key))
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/// ```
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///
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/// * Double map: `Foo: double_map hasher($hash1) u32, hasher($hash2) u32 => u32`: Implements the
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/// [`StorageDoubleMap`](../frame_support/storage/trait.StorageDoubleMap.html) trait using the
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/// [`StorageDoubleMap generator`](../frame_support/storage/generator/trait.StorageDoubleMap.html).
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/// And [`StoragePrefixedMap`](../frame_support/storage/trait.StoragePrefixedMap.html).
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///
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/// `$hash1` and `$hash2` representing choices of hashing algorithms available in the
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/// [`Hashable`](../frame_support/trait.Hashable.html) trait. They must be chosen with care, see
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/// generator documentation.
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///
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/// The generator is implemented with:
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/// * `module_prefix`: $module_prefix
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/// * `storage_prefix`: storage_name
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/// * `Hasher1`: $hash1
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/// * `Hasher2`: $hash2
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///
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/// Thus keys are stored at:
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/// ```nocompile
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/// Twox128(module_prefix) ++ Twox128(storage_prefix) ++ Hasher1(encode(key1)) ++ Hasher2(encode(key2))
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/// ```
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///
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/// Supported hashers (ordered from least to best security):
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///
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/// * `identity` - Just the unrefined key material. Use only when it is known to be a secure hash
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/// already. The most efficient and iterable over keys.
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/// * `twox_64_concat` - TwoX with 64bit + key concatenated. Use only when an untrusted source
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/// cannot select and insert key values. Very efficient and iterable over keys.
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/// * `blake2_128_concat` - Blake2 with 128bit + key concatenated. Slower but safe to use in all
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/// circumstances. Iterable over keys.
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///
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/// Deprecated hashers, which do not support iteration over keys include:
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/// * `twox_128` - TwoX with 128bit.
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/// * `twox_256` - TwoX with with 256bit.
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/// * `blake2_128` - Blake2 with 128bit.
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/// * `blake2_256` - Blake2 with 256bit.
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///
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/// Basic storage can be extended as such:
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///
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/// `#vis #name get(fn #getter) config(#field_name) build(#closure): #type = #default;`
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///
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/// * `#vis`: Set the visibility of the structure. `pub` or nothing.
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/// * `#name`: Name of the storage item, used as a prefix in storage.
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/// * \[optional\] `get(fn #getter)`: Implements the function #getter to `Module`.
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/// * \[optional\] `config(#field_name)`: `field_name` is optional if get is set.
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/// Will include the item in `GenesisConfig`.
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/// * \[optional\] `build(#closure)`: Closure called with storage overlays.
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/// * `#type`: Storage type.
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/// * \[optional\] `#default`: Value returned when none.
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///
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/// Storage items are accessible in multiple ways:
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///
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/// * The structure: `Foo` or `Foo::<T>` depending if the value type is generic or not.
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/// * The `Store` trait structure: `<Module<T> as Store>::Foo`
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/// * The getter on the module that calls get on the structure: `Module::<T>::foo()`
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///
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/// ## GenesisConfig
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///
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/// An optional `GenesisConfig` struct for storage initialization can be defined, either
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/// when at least one storage field requires default initialization
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/// (both `get` and `config` or `build`), or specifically as in:
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///
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/// ```nocompile
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/// decl_storage! {
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/// trait Store for Module<T: Config> as Example {
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///
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/// // Your storage items
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/// }
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/// add_extra_genesis {
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/// config(genesis_field): GenesisFieldType;
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/// config(genesis_field2): GenesisFieldType;
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/// ...
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/// build(|_: &Self| {
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/// // Modification of storage
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/// })
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/// }
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/// }
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/// ```
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///
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/// This struct can be exposed as `ExampleConfig` by the `construct_runtime!` macro like follows:
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///
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/// ```nocompile
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/// construct_runtime!(
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/// pub enum Runtime with ... {
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/// ...,
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/// Example: example::{Pallet, Storage, ..., Config<T>},
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/// ...,
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/// }
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/// );
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/// ```
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///
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/// ### Module with Instances
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///
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/// The `decl_storage!` macro supports building modules with instances with the following syntax
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/// (`DefaultInstance` type is optional):
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///
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/// ```nocompile
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/// trait Store for Module<T: Config<I>, I: Instance=DefaultInstance> as Example {}
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/// ```
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///
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/// Accessing the structure no requires the instance as generic parameter:
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/// * `Foo::<I>` if the value type is not generic
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/// * `Foo::<T, I>` if the value type is generic
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///
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/// ## Where clause
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///
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/// This macro supports a where clause which will be replicated to all generated types.
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///
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/// ```nocompile
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/// trait Store for Module<T: Config> as Example where T::AccountId: std::fmt::Display {}
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/// ```
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///
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/// ## Limitations
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///
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/// # Instancing and generic `GenesisConfig`
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///
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/// If your module supports instancing and you see an error like `parameter `I` is never used` for
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/// your `decl_storage!`, you are hitting a limitation of the current implementation. You probably
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/// try to use an associated type of a non-instantiable trait. To solve this, add the following to
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/// your macro call:
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///
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/// ```nocompile
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/// add_extra_genesis {
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/// config(phantom): std::marker::PhantomData<I>,
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/// }
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/// ...
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///
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/// This adds a field to your `GenesisConfig` with the name `phantom` that you can initialize with
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/// `Default::default()`.
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///
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#[proc_macro]
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pub fn decl_storage(input: TokenStream) -> TokenStream {
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storage::decl_storage_impl(input)
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}
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/// Construct a runtime, with the given name and the given modules.
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///
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/// The parameters here are specific types for `Block`, `NodeBlock`, and `UncheckedExtrinsic`
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/// and the modules that are used by the runtime.
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/// `Block` is the block type that is used in the runtime and `NodeBlock` is the block type
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/// that is used in the node. For instance they can differ in the extrinsics type.
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///
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/// # Example:
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///
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/// ```nocompile
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/// construct_runtime!(
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/// pub enum Runtime where
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/// Block = Block,
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/// NodeBlock = runtime::Block,
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/// UncheckedExtrinsic = UncheckedExtrinsic
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/// {
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/// System: system::{Pallet, Call, Event<T>, Config<T>} = 0,
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/// Test: test::{Pallet, Call} = 1,
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/// Test2: test_with_long_module::{Pallet, Event<T>},
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///
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/// // Module with instances
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/// Test3_Instance1: test3::<Instance1>::{Pallet, Call, Storage, Event<T, I>, Config<T, I>, Origin<T, I>},
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/// Test3_DefaultInstance: test3::{Pallet, Call, Storage, Event<T>, Config<T>, Origin<T>} = 4,
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/// }
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/// )
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/// ```
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///
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/// The identifier `System` is the name of the pallet and the lower case identifier `system` is the
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/// name of the Rust module/crate for this Substrate module. The identifiers between the braces are
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/// the module parts provided by the pallet. It is important to list these parts here to export
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/// them correctly in the metadata or to make the pallet usable in the runtime.
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///
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/// We provide support for the following module parts in a pallet:
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///
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/// - `Module`
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/// - `Call`
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/// - `Storage`
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/// - `Event` or `Event<T>` (if the event is generic)
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/// - `Origin` or `Origin<T>` (if the origin is generic)
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/// - `Config` or `Config<T>` (if the config is generic)
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/// - `Inherent` - If the module provides/can check inherents.
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/// - `ValidateUnsigned` - If the module validates unsigned extrinsics.
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///
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/// `= $n` is an optional part allowing to define at which index the module variants in
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/// `OriginCaller`, `Call` and `Event` are encoded, and to define the ModuleToIndex value.
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///
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/// if `= $n` is not given, then index is resolved same as fieldless enum in Rust
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/// (i.e. incrementedly from previous index):
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/// ```nocompile
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/// module1 .. = 2,
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/// module2 .., // Here module2 is given index 3
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/// module3 .. = 0,
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/// module4 .., // Here module4 is given index 1
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/// ```
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///
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/// # Note
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///
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/// The population of the genesis storage depends on the order of modules. So, if one of your
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/// modules depends on another module, the module that is depended upon needs to come before
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/// the module depending on it.
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///
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/// # Type definitions
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///
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/// * The macro generates a type alias for each pallet to their `Module` (or `Pallet`).
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/// E.g. `type System = frame_system::Pallet<Runtime>`
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#[proc_macro]
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pub fn construct_runtime(input: TokenStream) -> TokenStream {
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construct_runtime::construct_runtime(input)
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}
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/// Macro to define a pallet. Docs are at `frame_support::pallet`.
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#[proc_macro_attribute]
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pub fn pallet(attr: TokenStream, item: TokenStream) -> TokenStream {
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pallet::pallet(attr, item)
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}
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/// Execute the annotated function in a new storage transaction.
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///
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/// The return type of the annotated function must be `Result`. All changes to storage performed
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/// by the annotated function are discarded if it returns `Err`, or committed if `Ok`.
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///
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/// # Example
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///
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/// ```nocompile
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/// #[transactional]
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/// fn value_commits(v: u32) -> result::Result<u32, &'static str> {
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/// Value::set(v);
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/// Ok(v)
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/// }
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///
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/// #[transactional]
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/// fn value_rollbacks(v: u32) -> result::Result<u32, &'static str> {
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/// Value::set(v);
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/// Err("nah")
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/// }
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/// ```
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#[proc_macro_attribute]
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pub fn transactional(attr: TokenStream, input: TokenStream) -> TokenStream {
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transactional::transactional(attr, input).unwrap_or_else(|e| e.to_compile_error().into())
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}
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/// Derive [`Clone`] but do not bound any generic. Docs are at `frame_support::CloneNoBound`.
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#[proc_macro_derive(CloneNoBound)]
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pub fn derive_clone_no_bound(input: TokenStream) -> TokenStream {
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clone_no_bound::derive_clone_no_bound(input)
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}
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/// Derive [`Debug`] but do not bound any generics. Docs are at `frame_support::DeriveNoBounds`.
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#[proc_macro_derive(DebugNoBound)]
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pub fn derive_debug_no_bound(input: TokenStream) -> TokenStream {
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debug_no_bound::derive_debug_no_bound(input)
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}
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/// Derive [`Debug`], if `std` is enabled it uses `frame_support::DebugNoBound`, if `std` is not
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/// enabled it just returns `"<stripped>"`.
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/// This behaviour is useful to prevent bloating the runtime WASM blob from unneeded code.
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#[proc_macro_derive(RuntimeDebugNoBound)]
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pub fn derive_runtime_debug_no_bound(input: TokenStream) -> TokenStream {
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#[cfg(not(feature = "std"))]
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{
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let input: syn::DeriveInput = match syn::parse(input) {
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Ok(input) => input,
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Err(e) => return e.to_compile_error().into(),
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};
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let name = &input.ident;
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let (impl_generics, ty_generics, where_clause) = input.generics.split_for_impl();
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quote::quote!(
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const _: () = {
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impl #impl_generics core::fmt::Debug for #name #ty_generics #where_clause {
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fn fmt(&self, fmt: &mut core::fmt::Formatter) -> core::fmt::Result {
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fmt.write_str("<stripped>")
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}
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}
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};
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).into()
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}
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#[cfg(feature = "std")]
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{
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debug_no_bound::derive_debug_no_bound(input)
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}
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}
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/// Derive [`PartialEq`] but do not bound any generic. Docs are at
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/// `frame_support::PartialEqNoBound`.
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#[proc_macro_derive(PartialEqNoBound)]
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pub fn derive_partial_eq_no_bound(input: TokenStream) -> TokenStream {
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partial_eq_no_bound::derive_partial_eq_no_bound(input)
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}
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/// derive Eq but do no bound any generic. Docs are at `frame_support::EqNoBound`.
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#[proc_macro_derive(EqNoBound)]
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pub fn derive_eq_no_bound(input: TokenStream) -> TokenStream {
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let input: syn::DeriveInput = match syn::parse(input) {
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Ok(input) => input,
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Err(e) => return e.to_compile_error().into(),
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};
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let name = &input.ident;
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let (impl_generics, ty_generics, where_clause) = input.generics.split_for_impl();
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quote::quote_spanned!(name.span() =>
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const _: () = {
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impl #impl_generics core::cmp::Eq for #name #ty_generics #where_clause {}
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};
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).into()
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}
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#[proc_macro_attribute]
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pub fn require_transactional(attr: TokenStream, input: TokenStream) -> TokenStream {
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transactional::require_transactional(attr, input).unwrap_or_else(|e| e.to_compile_error().into())
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}
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#[proc_macro]
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pub fn crate_to_pallet_version(input: TokenStream) -> TokenStream {
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pallet_version::crate_to_pallet_version(input).unwrap_or_else(|e| e.to_compile_error()).into()
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}
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