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8f66016557
Wallet API Structure
213 lines
6.5 KiB
Rust
213 lines
6.5 KiB
Rust
// Copyright 2018 The Grin Developers
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//
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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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//! Transaction buinding functions
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use api;
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use core::ser;
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use failure::ResultExt;
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use keychain::{Identifier, Keychain};
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use libtx::slate::Slate;
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use libtx::{build, tx_fee};
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use libwallet::client;
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use libwallet::internal::{selection, updater};
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use libwallet::types::{TxWrapper, WalletBackend};
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use libwallet::{Error, ErrorKind};
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use util;
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use util::LOGGER;
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/// Receive a tranaction, modifying the slate accordingly (which can then be
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/// sent back to sender for posting)
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pub fn receive_tx<T: WalletBackend>(wallet: &mut T, slate: &mut Slate) -> Result<(), Error> {
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// create an output using the amount in the slate
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let (_, mut context, receiver_create_fn) =
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selection::build_recipient_output_with_slate(wallet, slate).unwrap();
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// fill public keys
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let _ = slate.fill_round_1(
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wallet.keychain(),
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&mut context.sec_key,
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&context.sec_nonce,
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1,
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)?;
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// perform partial sig
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let _ = slate.fill_round_2(wallet.keychain(), &context.sec_key, &context.sec_nonce, 1)?;
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// Save output in wallet
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let _ = receiver_create_fn(wallet);
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Ok(())
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}
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/// Issue a new transaction to the provided sender by spending some of our
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/// wallet
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/// Outputs. The destination can be "stdout" (for command line) (currently
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/// disabled) or a URL to the recipients wallet receiver (to be implemented).
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/// TBD: this just does a straight http request to recipient.. split this out
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/// somehow
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pub fn issue_send_tx<T: WalletBackend>(
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wallet: &mut T,
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amount: u64,
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minimum_confirmations: u64,
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dest: &str,
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max_outputs: usize,
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selection_strategy_is_use_all: bool,
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fluff: bool,
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) -> Result<(), Error> {
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// TODO: Stdout option, probably in a separate implementation
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if &dest[..4] != "http" {
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panic!(
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"dest formatted as {} but send -d expected stdout or http://IP:port",
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dest
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);
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}
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updater::refresh_outputs(wallet)?;
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// Get lock height
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let chain_tip = updater::get_tip_from_node(wallet.node_url())?;
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let current_height = chain_tip.height;
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// ensure outputs we're selecting are up to date
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updater::refresh_outputs(wallet)?;
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let lock_height = current_height;
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// Sender selects outputs into a new slate and save our corresponding keyss in
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// a transaction context. The secret key in our transaction context will be
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// randomly selected. This returns the public slate, and a closure that locks
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// our inputs and outputs once we're convinced the transaction exchange went
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// according to plan
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// This function is just a big helper to do all of that, in theory
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// this process can be split up in any way
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let (mut slate, mut context, sender_lock_fn) = selection::build_send_tx_slate(
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wallet,
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2,
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amount,
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current_height,
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minimum_confirmations,
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lock_height,
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max_outputs,
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selection_strategy_is_use_all,
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)?;
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// Generate a kernel offset and subtract from our context's secret key. Store
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// the offset in the slate's transaction kernel, and adds our public key
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// information to the slate
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let _ = slate.fill_round_1(
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wallet.keychain(),
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&mut context.sec_key,
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&context.sec_nonce,
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0,
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)?;
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let url = format!("{}/v1/wallet/foreign/receive_tx", dest);
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debug!(LOGGER, "Posting partial transaction to {}", url);
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let mut slate = match client::send_slate(&url, &slate, fluff).context(ErrorKind::Node) {
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Ok(s) => s,
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Err(e) => {
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error!(
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LOGGER,
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"Communication with receiver failed on SenderInitiation send. Aborting transaction"
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);
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return Err(e)?;
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}
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};
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let _ = slate.fill_round_2(wallet.keychain(), &context.sec_key, &context.sec_nonce, 0)?;
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// Final transaction can be built by anyone at this stage
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slate.finalize(wallet.keychain())?;
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// So let's post it
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let tx_hex = util::to_hex(ser::ser_vec(&slate.tx).unwrap());
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let url;
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if fluff {
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url = format!("{}/v1/pool/push?fluff", wallet.node_url(),);
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} else {
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url = format!("{}/v1/pool/push", wallet.node_url());
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}
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api::client::post(url.as_str(), &TxWrapper { tx_hex: tx_hex }).context(ErrorKind::Node)?;
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// All good so, lock our inputs
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sender_lock_fn(wallet)?;
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Ok(())
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}
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/// Issue a burn tx
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pub fn issue_burn_tx<T: WalletBackend>(
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wallet: &mut T,
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amount: u64,
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minimum_confirmations: u64,
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max_outputs: usize,
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) -> Result<(), Error> {
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let keychain = &Keychain::burn_enabled(wallet.keychain(), &Identifier::zero());
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let chain_tip = updater::get_tip_from_node(wallet.node_url())?;
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let current_height = chain_tip.height;
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let _ = updater::refresh_outputs(wallet);
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let key_id = keychain.root_key_id();
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// select some spendable coins from the wallet
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let coins = wallet.read_wallet(|wallet_data| {
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Ok(wallet_data.select_coins(
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key_id.clone(),
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amount,
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current_height,
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minimum_confirmations,
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max_outputs,
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false,
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))
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})?;
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debug!(LOGGER, "selected some coins - {}", coins.len());
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let fee = tx_fee(coins.len(), 2, selection::coins_proof_count(&coins), None);
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let (mut parts, _) = selection::inputs_and_change(&coins, wallet, current_height, amount, fee)?;
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// add burn output and fees
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parts.push(build::output(amount - fee, Identifier::zero()));
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// finalize the burn transaction and send
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let tx_burn = build::transaction(parts, &keychain)?;
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tx_burn.validate()?;
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let tx_hex = util::to_hex(ser::ser_vec(&tx_burn).unwrap());
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let url = format!("{}/v1/pool/push", wallet.node_url());
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let _: () =
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api::client::post(url.as_str(), &TxWrapper { tx_hex: tx_hex }).context(ErrorKind::Node)?;
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Ok(())
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}
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#[cfg(test)]
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mod test {
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use keychain::Keychain;
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use libtx::build;
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#[test]
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// demonstrate that input.commitment == referenced output.commitment
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// based on the public key and amount begin spent
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fn output_commitment_equals_input_commitment_on_spend() {
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let keychain = Keychain::from_random_seed().unwrap();
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let key_id1 = keychain.derive_key_id(1).unwrap();
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let tx1 = build::transaction(vec![build::output(105, key_id1.clone())], &keychain).unwrap();
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let tx2 = build::transaction(vec![build::input(105, key_id1.clone())], &keychain).unwrap();
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assert_eq!(tx1.outputs[0].features, tx2.inputs[0].features);
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assert_eq!(tx1.outputs[0].commitment(), tx2.inputs[0].commitment());
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}
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}
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