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Blockchain Smart Contracts with Solidity · Lekcja

Protokoły pożyczek i kredytów

Przeanalizuj architekturę smart kontraktów stojącą za zdecentralizowanymi platformami pożyczkowymi, takimi jak Aave i Compound.

Protokoły pożyczek i kredytów to bezpłatna lekcja Blockchain Smart Contracts with Solidity na CoddyKit. To lekcja 2 z 4. Możesz przeczytać całą lekcję poniżej za darmo — a potem ćwiczyć ją interaktywnie w przeglądarce z wbudowanym edytorem kodu i tutorem AI dostępnym 24/7. To część ścieżki edukacyjnej Blockchain Smart Contracts with Solidity, a Twój postęp synchronizuje się między webem a aplikacją CoddyKit. Kurs Blockchain Smart Contracts with Solidity zawiera 4 lekcji w sumie.

Części tej lekcji nie zostały jeszcze przetłumaczone i są wyświetlane po angielsku.

Welcome to DeFi Lending!

Decentralized Finance (DeFi) lending platforms allow users to lend out their crypto assets to earn interest, or borrow assets by providing collateral.

These platforms operate without traditional banks, using smart contracts to automate the entire process, making it transparent and accessible to anyone with an internet connection.

Who are the Players?

In a DeFi lending protocol, there are two main participants:

  • Lenders: Users who deposit their cryptocurrencies into a smart contract to earn interest. They are providing liquidity.
  • Borrowers: Users who want to take out a loan. They must provide collateral, usually more than the value of the loan (over-collateralization).

Lending Pools: The Core

Instead of peer-to-peer matching, DeFi lending platforms use liquidity pools. Lenders deposit their assets into these pools.

Borrowers then draw funds from these same pools. This model ensures continuous availability of assets and efficient interest rate determination.

Dynamic Interest Rates

Interest rates in DeFi lending are typically algorithmic, meaning they adjust automatically based on supply and demand within the liquidity pool.

  • When a pool has high utilization (lots of borrowing), interest rates for borrowers increase, incentivizing lenders.
  • When utilization is low, rates decrease, encouraging borrowing.

Securing Your Loan with Collateral

To borrow assets, you must provide collateral. This collateral is locked in the smart contract and serves as security for the loan.

DeFi loans are almost always over-collateralized, meaning the value of your collateral is greater than the value of your loan. The Loan-to-Value (LTV) ratio indicates how much you can borrow relative to your collateral.

When Collateral Isn't Enough

If the value of your collateral drops significantly, pushing your LTV ratio above a certain threshold, your loan becomes eligible for liquidation.

This means your collateral is automatically sold to repay your loan, preventing the protocol from incurring bad debt. This process is often carried out by external "liquidators" who earn a fee.

Inside the Lending Protocol

A DeFi lending protocol typically involves several smart contract components:

  • LendingPool Contract: Manages deposits, borrows, interest, and liquidations.
  • ERC-20 Token Contracts: For the actual assets being lent/borrowed (e.g., DAI, USDC, WETH).
  • Oracle Contracts: Provide real-time price feeds for assets to calculate LTV.

Code Example: Deposit Logic

Let's look at a simplified deposit function. Users approve the contract to spend their tokens, then call this function to add liquidity. The contract records the deposit.

Try running the code to see the structure!

/* SPDX-License-Identifier: MIT */
pragma solidity ^0.8.0;

interface IERC20 {
    function transferFrom(address sender, address recipient, uint256 amount) external returns (bool);
    function transfer(address recipient, uint256 amount) external returns (bool);
    function balanceOf(address account) external view returns (uint256);
}

contract SimpleLendingPool {
    // Mapping to track deposits: asset address => user address => amount
    mapping(address => mapping(address => uint256)) public deposits;

    // Function to deposit collateral
    function deposit(address asset, uint256 amount) public {
        require(amount > 0, "Deposit amount must be > 0");
        // Transfer tokens from sender to this contract
        bool success = IERC20(asset).transferFrom(msg.sender, address(this), amount);
        require(success, "Token transfer failed");
        
        deposits[asset][msg.sender] += amount;
        // In a real protocol, you'd mint interest-bearing tokens here
    }

    // Placeholder for other functions like borrow, repay, withdraw
    // ...
}

Code Example: Borrow Logic

Building on the deposit, here's a simplified borrow function. It checks if the user has enough collateral and then transfers the requested asset from the pool to the borrower.

Note the simplified getAssetPrice for demonstration; real systems use robust oracles.

/* SPDX-License-Identifier: MIT */
pragma solidity ^0.8.0;

interface IERC20 {
    function transferFrom(address sender, address recipient, uint256 amount) external returns (bool);
    function transfer(address recipient, uint256 amount) external returns (bool);
    function balanceOf(address account) external view returns (uint256);
}

contract SimpleLendingPool {
    mapping(address => mapping(address => uint256)) public deposits;
    mapping(address => mapping(address => uint256)) public borrows;

    // Simplified price oracle for demonstration
    function getAssetPrice(address asset) internal pure returns (uint256) {
        // Assume all assets have a price of 1 ether for simplicity (1e18 wei)
        // In a real system, this would fetch actual prices from a robust oracle.
        return 1 ether; 
    }

    function deposit(address asset, uint256 amount) public {
        require(amount > 0, "Deposit amount must be > 0");
        IERC20(asset).transferFrom(msg.sender, address(this), amount);
        deposits[asset][msg.sender] += amount;
    }

    // Function to borrow assets against collateral
    function borrow(address assetToBorrow, uint256 amount, address collateralAsset) public {
        require(amount > 0, "Borrow amount must be > 0");
        require(deposits[collateralAsset][msg.sender] > 0, "No collateral deposited");

        // Calculate collateral value and borrow value (simplified LTV of 50% for demo)
        uint256 userCollateralValue = deposits[collateralAsset][msg.sender] * getAssetPrice(collateralAsset);
        uint256 borrowValue = amount * getAssetPrice(assetToBorrow);
        require(borrowValue <= userCollateralValue / 2, "Insufficient collateral for loan");

        // Transfer tokens from this contract to the borrower
        bool success = IERC20(assetToBorrow).transfer(msg.sender, amount);
        require(success, "Token transfer failed");

        borrows[assetToBorrow][msg.sender] += amount;
        // A real contract would also track interest and repayment schedules
    }
    // ... (repay, withdraw functions would also be here in a full contract)
}

Quick Check: Lending Concepts

You've learned about the core mechanics of DeFi lending. Now, let's see how well you understand the role of collateral.

Key Takeaways

In this lesson, we explored how decentralized lending and borrowing platforms work. You learned about:

  • The roles of lenders and borrowers.
  • The use of liquidity pools for efficient asset management.
  • Dynamic interest rates based on supply and demand.
  • The critical role of over-collateralization and LTV.
  • How liquidation mechanisms protect the protocol.
  • A simplified look at the deposit and borrow smart contract functions.

Next, we'll dive into another advanced DeFi concept: Flash Loans!

Często zadawane pytania

Czy lekcja „Protokoły pożyczek i kredytów” jest bezpłatna?

Tak — pełny tekst „Protokoły pożyczek i kredytów” jest dostępny za darmo tutaj w sieci. Aby ćwiczyć ją interaktywnie (wbudowany edytor kodu i tutor AI dostępny 24/7) i odblokować resztę kursu Blockchain Smart Contracts with Solidity, przejdź na CoddyKit PRO. Kurs Blockchain Smart Contracts with Solidity zawiera 4 lekcji w sumie.

Co nauczysz się w „Protokoły pożyczek i kredytów”?

Przeanalizuj architekturę smart kontraktów stojącą za zdecentralizowanymi platformami pożyczkowymi, takimi jak Aave i Compound. Ćwiczysz Blockchain Smart Contracts with Solidity z praktycznym kodem, który uruchamiasz bezpośrednio w przeglądarce, a tutor AI dostępny 24/7 odpowiada na Twoje pytania podczas pracy nad lekcją.

Czy potrzebuję doświadczenia, aby zacząć Blockchain Smart Contracts with Solidity?

Nie wymagamy żadnego doświadczenia. Blockchain Smart Contracts with Solidity w CoddyKit jest strukturyzowany dla początkujących i zaawansowanych użytkowników, więc możesz zacząć tutaj lub od początku i uczyć się w swoim tempie. To lekcja 2 z 4.

Ile czasu zajmuje lekcja „Protokoły pożyczek i kredytów”?

Większość lekcji CoddyKit trwa około 5–10 minut. Każda lekcja to mały, interaktywny krok, dzięki czemu robisz systematyczne postępy i zawsze wracasz dokładnie do tego samego miejsca — na webie i w aplikacji.

Czy mogę pisać i uruchamiać kod w tej lekcji Blockchain Smart Contracts with Solidity?

Tak. Każda lekcja Blockchain Smart Contracts with Solidity zawiera wbudowany edytor kodu, więc piszesz i uruchamiasz prawdziwy kod bezpośrednio w przeglądarce i od razu otrzymujesz sprzężenie zwrotne od AI — bez konfiguracji na komputerze.

Wszystkie lekcje w tym kursie

  1. AMM-y i pule płynności
  2. Protokoły pożyczek i kredytów
  3. Pożyczki błyskawiczne i arbitraż
  4. Yield farming i nagrody za staking
← Powrót do Blockchain Smart Contracts with Solidity