mirror of
https://github.com/pezkuwichain/pezkuwi-subxt.git
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261 lines
8.2 KiB
Rust
261 lines
8.2 KiB
Rust
// Copyright 2017 Parity Technologies (UK) Ltd.
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// This file is part of Polkadot.
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// Polkadot is free software: you can redistribute it and/or modify
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// it under the terms of the GNU General Public License as published by
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// the Free Software Foundation, either version 3 of the License, or
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// (at your option) any later version.
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// Polkadot is distributed in the hope that it will be useful,
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// but WITHOUT ANY WARRANTY; without even the implied warranty of
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// MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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// GNU General Public License for more details.
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// You should have received a copy of the GNU General Public License
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// along with Polkadot. If not, see <http://www.gnu.org/licenses/>.
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//! Rust implementation of Polkadot contracts.
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use std::sync::Arc;
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use std::collections::HashMap;
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use parity_wasm::{deserialize_buffer, ModuleInstanceInterface, ProgramInstance};
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use parity_wasm::interpreter::{ItemIndex};
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use parity_wasm::RuntimeValue::{I32, I64};
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use primitives::contract::CallData;
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use state_machine::{Externalities, CodeExecutor};
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use error::{Error, ErrorKind, Result};
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use wasm_utils::{MemoryInstance, UserDefinedElements,
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AddModuleWithoutFullDependentInstance};
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struct Heap {
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end: u32,
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}
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impl Heap {
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fn new() -> Self {
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Heap {
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end: 1024,
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}
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}
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fn allocate(&mut self, size: u32) -> u32 {
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let r = self.end;
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self.end += size;
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r
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}
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fn deallocate(&mut self, _offset: u32) {
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}
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}
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struct FunctionExecutor<'e, E: Externalities + 'e> {
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heap: Heap,
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memory: Arc<MemoryInstance>,
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ext: &'e mut E,
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}
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impl<'e, E: Externalities> FunctionExecutor<'e, E> {
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fn new(m: &Arc<MemoryInstance>, e: &'e mut E) -> Self {
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FunctionExecutor {
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heap: Heap::new(),
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memory: Arc::clone(m),
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ext: e,
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}
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}
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}
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trait WritePrimitive<T: Sized> {
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fn write_primitive(&self, offset: u32, t: T);
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}
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impl WritePrimitive<u32> for MemoryInstance {
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fn write_primitive(&self, offset: u32, t: u32) {
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use byteorder::{LittleEndian, ByteOrder};
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let mut r = [0u8; 4];
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LittleEndian::write_u32(&mut r, t);
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let _ = self.set(offset, &r);
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}
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}
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impl_function_executor!(this: FunctionExecutor<'e, E>,
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ext_print(utf8_data: *const u8, utf8_len: u32) => {
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if let Ok(utf8) = this.memory.get(utf8_data, utf8_len as usize) {
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if let Ok(message) = String::from_utf8(utf8) {
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println!("Runtime: {}", message);
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}
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}
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},
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ext_print_num(number: u64) => {
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println!("Runtime: {}", number);
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},
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ext_memcpy(dest: *mut u8, src: *const u8, count: usize) -> *mut u8 => {
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let _ = this.memory.copy_nonoverlapping(src as usize, dest as usize, count as usize);
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println!("memcpy {} from {}, {} bytes", dest, src, count);
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dest
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},
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ext_memmove(dest: *mut u8, src: *const u8, count: usize) -> *mut u8 => {
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let _ = this.memory.copy(src as usize, dest as usize, count as usize);
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println!("memmove {} from {}, {} bytes", dest, src, count);
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dest
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},
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ext_memset(dest: *mut u8, val: u32, count: usize) -> *mut u8 => {
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let _ = this.memory.clear(dest as usize, val as u8, count as usize);
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println!("memset {} with {}, {} bytes", dest, val, count);
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dest
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},
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ext_malloc(size: usize) -> *mut u8 => {
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let r = this.heap.allocate(size);
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println!("malloc {} bytes at {}", size, r);
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r
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},
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ext_free(addr: *mut u8) => {
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this.heap.deallocate(addr);
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println!("free {}", addr)
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},
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ext_set_storage(key_data: *const u8, key_len: u32, value_data: *const u8, value_len: u32) => {
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if let (Ok(key), Ok(value)) = (this.memory.get(key_data, key_len as usize), this.memory.get(value_data, value_len as usize)) {
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this.ext.set_storage(key, value);
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}
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},
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ext_get_allocated_storage(key_data: *const u8, key_len: u32, written_out: *mut u32) -> *mut u8 => {
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let (offset, written) = if let Ok(key) = this.memory.get(key_data, key_len as usize) {
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if let Ok(value) = this.ext.storage(&key) {
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let offset = this.heap.allocate(value.len() as u32) as u32;
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let _ = this.memory.set(offset, &value);
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(offset, value.len() as u32)
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} else { (0, 0) }
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} else { (0, 0) };
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this.memory.write_primitive(written_out, written);
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offset as u32
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},
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ext_get_storage_into(key_data: *const u8, key_len: u32, value_data: *mut u8, value_len: u32) -> u32 => {
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if let Ok(key) = this.memory.get(key_data, key_len as usize) {
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if let Ok(value) = this.ext.storage(&key) {
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let written = ::std::cmp::min(value_len as usize, value.len());
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let _ = this.memory.set(value_data, &value[0..written]);
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written as u32
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} else { 0 }
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} else { 0 }
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},
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ext_deposit_log(_log_data: *const u8, _log_len: u32) => {
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// TODO
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}
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=> <'e, E: Externalities + 'e>
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);
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/// Wasm rust executor for contracts.
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///
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/// Executes the provided code in a sandboxed wasm runtime.
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#[derive(Debug, Default)]
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pub struct WasmExecutor;
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impl CodeExecutor for WasmExecutor {
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type Error = Error;
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fn call<E: Externalities>(
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&self,
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ext: &mut E,
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code: &[u8],
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method: &str,
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data: &CallData,
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) -> Result<Vec<u8>> {
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// TODO: handle all expects as errors to be returned.
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let program = ProgramInstance::new().expect("this really shouldn't be able to fail; qed");
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let module = deserialize_buffer(code.to_vec()).expect("all modules compiled with rustc are valid wasm code; qed");
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let module = program.add_module_by_sigs("test", module, map!["env" => FunctionExecutor::<E>::SIGNATURES]).expect("runtime signatures always provided; qed");
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let memory = module.memory(ItemIndex::Internal(0)).expect("all modules compiled with rustc include memory segments; qed");
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let mut fec = FunctionExecutor::new(&memory, ext);
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let size = data.0.len() as u32;
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let offset = fec.heap.allocate(size);
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memory.set(offset, &data.0).expect("heap always gives a sensible offset to write");
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let returned = program
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.params_with_external("env", &mut fec)
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.map(|p| p
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.add_argument(I32(offset as i32))
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.add_argument(I32(size as i32)))
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.and_then(|p| module.execute_export(method, p))
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.map_err(|_| -> Error { ErrorKind::Runtime.into() })?;
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if let Some(I64(r)) = returned {
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memory.get(r as u32, (r >> 32) as u32 as usize)
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.map_err(|_| ErrorKind::Runtime.into())
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} else {
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Err(ErrorKind::InvalidReturn.into())
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}
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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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#[derive(Debug, Default)]
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struct TestExternalities {
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storage: HashMap<Vec<u8>, Vec<u8>>,
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}
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impl Externalities for TestExternalities {
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type Error = Error;
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fn storage(&self, key: &[u8]) -> Result<&[u8]> {
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Ok(self.storage.get(&key.to_vec()).map_or(&[] as &[u8], Vec::as_slice))
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}
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fn set_storage(&mut self, key: Vec<u8>, value: Vec<u8>) {
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self.storage.insert(key, value);
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}
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}
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#[test]
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fn should_pass_externalities_at_call() {
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let mut ext = TestExternalities::default();
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ext.set_storage(b"\0code".to_vec(), b"The code".to_vec());
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let program = ProgramInstance::new().unwrap();
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let test_module = include_bytes!("../../runtime-wasm/target/wasm32-unknown-unknown/release/runtime_test.compact.wasm");
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let module = deserialize_buffer(test_module.to_vec()).expect("Failed to load module");
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let module = program.add_module_by_sigs("test", module, map!["env" => FunctionExecutor::<TestExternalities>::SIGNATURES]).expect("Failed to initialize module");
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let output = {
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let memory = module.memory(ItemIndex::Internal(0)).unwrap();
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let mut fec = FunctionExecutor::new(&memory, &mut ext);
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let data = b"Hello world";
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let size = data.len() as u32;
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let offset = fec.heap.allocate(size);
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memory.set(offset, data).unwrap();
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let returned = program
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.params_with_external("env", &mut fec)
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.map(|p| p
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.add_argument(I32(offset as i32))
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.add_argument(I32(size as i32)))
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.and_then(|p| module.execute_export("test_data_in", p))
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.map_err(|_| -> Error { ErrorKind::Runtime.into() }).expect("function should be callable");
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if let Some(I64(r)) = returned {
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println!("returned {:?} ({:?}, {:?})", r, r as u32, (r >> 32) as u32 as usize);
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memory.get(r as u32, (r >> 32) as u32 as usize).expect("memory address should be reasonable.")
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} else {
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panic!("bad return value, not u64");
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}
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};
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assert_eq!(output, b"all ok!".to_vec());
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let expected: HashMap<_, _> = map![
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b"\0code".to_vec() => b"Hello world".to_vec(),
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b"input".to_vec() => b"Hello world".to_vec(),
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b"code".to_vec() => b"The code".to_vec(),
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b"\0validator_count".to_vec() => vec![1],
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b"\0validator".to_vec() => b"Hello world".to_vec()
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];
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assert_eq!(expected, ext.storage);
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}
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}
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