305 lines
8.6 KiB
TypeScript
305 lines
8.6 KiB
TypeScript
import { SignerWithAddress } from "@nomiclabs/hardhat-ethers/signers";
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import { expect } from "chai";
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import { ethers, network } from "hardhat";
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import { P2PixErrors } from "./utils/errors";
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import { MockToken, P2PIX } from "../src/types";
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describe("P2PIX deposit test", () => {
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let owner: SignerWithAddress;
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let wallet2: SignerWithAddress;
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let wallet3: SignerWithAddress;
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// let wallet4: SignerWithAddress;
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let p2pix: P2PIX; // Contract instance
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let erc20: MockToken; // Token instance
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let lockID: string;
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it("Will deploy contracts", async () => {
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[owner, wallet2, wallet3 /* , wallet4 */] =
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await ethers.getSigners();
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const ERC20Factory = await ethers.getContractFactory(
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"MockToken",
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);
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erc20 = await ERC20Factory.deploy(
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ethers.utils.parseEther("20000000"),
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);
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await erc20.deployed();
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// Check initial balance
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expect(await erc20.balanceOf(owner.address)).to.equal(
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ethers.utils.parseEther("20000000"),
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);
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const P2PIX = await ethers.getContractFactory("P2PIX");
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p2pix = await P2PIX.deploy(3, [
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owner.address,
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wallet2.address,
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]);
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await p2pix.deployed();
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const ownerKey = await p2pix._castAddrToKey(owner.address);
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const wallet2key = await p2pix._castAddrToKey(wallet2.address);
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const wallet3key = await p2pix._castAddrToKey(wallet3.address);
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// Verify values at deployment
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expect(
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await p2pix.validBacenSigners(ownerKey),
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).to.equal(true);
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expect(
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await p2pix.validBacenSigners(wallet2key),
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).to.equal(true);
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expect(
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await p2pix.validBacenSigners(wallet3key),
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).to.equal(false);
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});
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it("Should allow create a deposit", async () => {
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let transaction = await erc20.approve(
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p2pix.address,
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ethers.utils.parseEther("1000"),
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);
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await expect(transaction)
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.to.emit(erc20, "Approval")
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.withArgs(
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owner.address,
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p2pix.address,
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ethers.utils.parseEther("1000"),
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);
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transaction = await p2pix.deposit(
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erc20.address,
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ethers.utils.parseEther("1000"),
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"SELLER PIX KEY",
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{ value: ethers.utils.parseEther("0.1") },
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);
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await expect(transaction)
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.to.emit(p2pix, "DepositAdded")
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.withArgs(
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owner.address,
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0,
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erc20.address,
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ethers.utils.parseEther("0.1"),
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ethers.utils.parseEther("1000"),
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);
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console.log(
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"GAS USED:",
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(await transaction.wait()).cumulativeGasUsed.toString(),
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);
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});
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it("Should allow create a new lock", async () => {
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const transaction = await p2pix
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.connect(wallet3)
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.lock(
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0,
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wallet3.address,
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ethers.constants.AddressZero,
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"0",
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ethers.utils.parseEther("100"),
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[],
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);
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lockID = ethers.utils.solidityKeccak256(
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["uint256", "uint256", "address"],
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[0, ethers.utils.parseEther("100"), wallet3.address],
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);
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await expect(transaction)
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.to.emit(p2pix, "LockAdded")
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.withArgs(
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wallet3.address,
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lockID,
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0,
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ethers.utils.parseEther("100"),
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);
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console.log(
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"GAS USED:",
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(await transaction.wait()).cumulativeGasUsed.toString(),
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);
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});
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it("Should release the locked amount to the buyer", async () => {
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const endtoendID = "123";
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const messageToSign = ethers.utils.solidityKeccak256(
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["string", "uint256", "uint256"],
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[
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"SELLER PIX KEY",
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ethers.utils.parseEther("100"),
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endtoendID,
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],
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);
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// Note: messageToSign is a string, that is 66-bytes long, to sign the
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// binary value, we must convert it to the 32 byte Array that
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// the string represents
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//
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// i.e.
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// // 66-byte string
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// "0x592fa743889fc7f92ac2a37bb1f5ba1daf2a5c84741ca0e0061d243a2e6707ba"
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// ... vs ...
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// // 32 entry Uint8Array
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// [ 89, 47, 167, 67, 136, 159, ... 103, 7, 186]
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const messageHashBytes =
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ethers.utils.arrayify(messageToSign);
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// Sign the string message
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const flatSig = await owner.signMessage(messageHashBytes);
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// For Solidity, we need the expanded-format of a signature
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const sig = ethers.utils.splitSignature(flatSig);
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const transaction = await p2pix
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.connect(wallet3)
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.release(lockID, endtoendID, sig.r, sig.s, sig.v);
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await expect(transaction)
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.to.emit(p2pix, "LockReleased")
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.withArgs(wallet3.address, lockID);
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console.log(
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"GAS USED:",
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(await transaction.wait()).cumulativeGasUsed.toString(),
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);
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expect(await erc20.balanceOf(wallet3.address)).to.equal(
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ethers.utils.parseEther("100"),
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);
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});
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it("Should allow recreate same lock", async () => {
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const transaction = await p2pix
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.connect(wallet3)
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.lock(
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0,
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wallet3.address,
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ethers.constants.AddressZero,
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"0",
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ethers.utils.parseEther("100"),
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[],
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);
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lockID = ethers.utils.solidityKeccak256(
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["uint256", "uint256", "address"],
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[0, ethers.utils.parseEther("100"), wallet3.address],
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);
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await expect(transaction)
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.to.emit(p2pix, "LockAdded")
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.withArgs(
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wallet3.address,
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lockID,
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0,
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ethers.utils.parseEther("100"),
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);
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});
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it("Should prevent create again same lock", async () => {
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await expect(
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p2pix
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.connect(wallet3)
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.lock(
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0,
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wallet3.address,
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ethers.constants.AddressZero,
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"0",
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ethers.utils.parseEther("100"),
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[],
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),
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).to.be.revertedWithCustomError(p2pix, P2PixErrors.NotExpired);
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});
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it("Should release the locked amount to the buyer", async () => {
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const endtoendID = "124";
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const messageToSign = ethers.utils.solidityKeccak256(
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["string", "uint256", "uint256"],
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[
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"SELLER PIX KEY",
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ethers.utils.parseEther("100"),
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endtoendID,
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],
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);
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const messageHashBytes =
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ethers.utils.arrayify(messageToSign);
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const flatSig = await owner.signMessage(messageHashBytes);
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const sig = ethers.utils.splitSignature(flatSig);
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await p2pix
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.connect(wallet3)
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.release(lockID, endtoendID, sig.r, sig.s, sig.v);
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expect(await erc20.balanceOf(wallet3.address)).to.equal(
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ethers.utils.parseEther("200"),
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);
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});
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it("Should prevent release again the lock", async () => {
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const endtoendID = "125";
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const messageToSign = ethers.utils.solidityKeccak256(
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["string", "uint256", "uint256"],
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[
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"SELLER PIX KEY",
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ethers.utils.parseEther("100"),
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endtoendID,
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],
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);
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const messageHashBytes =
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ethers.utils.arrayify(messageToSign);
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const flatSig = await owner.signMessage(messageHashBytes);
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const sig = ethers.utils.splitSignature(flatSig);
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await expect(
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p2pix
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.connect(wallet3)
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.release(lockID, endtoendID, sig.r, sig.s, sig.v),
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).to.be.revertedWithCustomError(p2pix, P2PixErrors.AlreadyReleased);
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});
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it("Should prevent create a 900 lock", async () => {
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await expect(
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p2pix
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.connect(wallet3)
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.lock(
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0,
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wallet3.address,
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ethers.constants.AddressZero,
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"0",
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ethers.utils.parseEther("900"),
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[],
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),
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).to.be.revertedWithCustomError(
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p2pix, P2PixErrors.NotEnoughTokens);
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});
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it("Should allow recreate same lock again", async () => {
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const transaction = await p2pix
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.connect(wallet3)
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.lock(
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0,
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wallet3.address,
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ethers.constants.AddressZero,
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"0",
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ethers.utils.parseEther("100"),
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[],
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);
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lockID = ethers.utils.solidityKeccak256(
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["uint256", "uint256", "address"],
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[0, ethers.utils.parseEther("100"), wallet3.address],
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);
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await expect(transaction)
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.to.emit(p2pix, "LockAdded")
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.withArgs(
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wallet3.address,
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lockID,
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0,
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ethers.utils.parseEther("100"),
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);
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});
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it("Should allow unlock expired lock", async () => {
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await expect(
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p2pix.unlockExpired([lockID]),
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).to.be.revertedWithCustomError(
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p2pix, P2PixErrors.NotExpired);
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await network.provider.send("evm_mine");
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await network.provider.send("evm_mine");
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await network.provider.send("evm_mine");
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const transaction = await p2pix.unlockExpired([lockID]);
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await expect(transaction)
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.to.emit(p2pix, "LockReturned")
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.withArgs(wallet3.address, lockID);
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});
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it("Should prevent unlock again", async () => {
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await expect(
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p2pix.unlockExpired([lockID]),
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).to.be.revertedWithCustomError(
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p2pix, P2PixErrors.NotExpired);
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});
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}); |