Using DON-hosted Secrets in Requests
This tutorial shows you how to send a request to a Decentralized Oracle Network to call the Coinmarketcap API. After OCR completes offchain computation and aggregation, it returns the BTC/USD asset price to your smart contract. Because the API requires you to provide an API key, this guide will also show you how to encrypt, sign your API key, and share the encrypted secret with a Decentralized Oracle Network (DON).
The encrypted secrets are never stored onchain. This tutorial uses the threshold encryption feature. The encrypted secrets are stored with the DON. Read the Secrets Management page to learn more.
Prerequisites
Set up your environment
You must provide the private key from a testnet wallet to run the examples in this documentation. Install a Web3 wallet, configure Node.js, clone the smartcontractkit/smart-contract-examples repository, and configure a .env.enc file with the required environment variables.
Install and configure your Web3 wallet for Ethereum Sepolia:
-
Install Deno so you can compile and simulate your Functions source code on your local machine.
-
Install the MetaMask wallet or other Ethereum Web3 wallet.
-
Set the network for your wallet to the Sepolia testnet. If you need to add Sepolia to your wallet, you can find the chain ID and the LINK token contract address on the LINK Token Contracts page.
-
Request testnet LINK and ETH from faucets.chain.link/sepolia.
Install the required frameworks and dependencies:
-
Install the latest release of Node.js 20. Optionally, you can use the nvm package to switch between Node.js versions with
nvm use 20.Note: To ensure you are running the correct version in a terminal, type
node -v.node -v$ node -v v20.9.0 -
In a terminal, clone the smart-contract examples repository and change directories. This example repository imports the Chainlink Functions Toolkit NPM package. You can import this package to your own projects to enable them to work with Chainlink Functions.
git clone https://github.com/smartcontractkit/smart-contract-examples.git && \ cd ./smart-contract-examples/functions-examples/ -
Run
npm installto install the dependencies.npm install -
For higher security, the examples repository encrypts your environment variables at rest.
-
Set an encryption password for your environment variables.
npx env-enc set-pw -
Run
npx env-enc setto configure a.env.encfile with the basic variables that you need to send your requests to the Sepolia network.-
ETHEREUM_SEPOLIA_RPC_URL: Set a URL for the Sepolia testnet. You can sign up for a personal endpoint from Alchemy, Infura, or another node provider service. -
PRIVATE_KEY: Find the private key for your testnet wallet. If you use MetaMask, follow the instructions to Export a Private Key. Note: Your private key is needed to sign any transactions you make such as making requests.
npx env-enc set -
-
Configure your onchain resources
After you configure your local environment, configure some onchain resources to process your requests, receive the responses, and pay for the work done by the DON.
Deploy a Functions consumer contract on Sepolia
-
Compile the contract.
-
Open MetaMask and select the Sepolia network.
-
In Remix under the Deploy & Run Transactions tab, select Injected Provider - MetaMask in the Environment list. Remix will use the MetaMask wallet to communicate with Sepolia.
-
Under the Deploy section, fill in the router address for your specific blockchain. You can find both of these addresses on the Supported Networks page. For Sepolia, the router address is
0xb83E47C2bC239B3bf370bc41e1459A34b41238D0. -
Click the Deploy button to deploy the contract. MetaMask prompts you to confirm the transaction. Check the transaction details to make sure you are deploying the contract to Sepolia.
-
After you confirm the transaction, the contract address appears in the Deployed Contracts list. Copy the contract address.
Create a subscription
Follow the Managing Functions Subscriptions guide to accept the Chainlink Functions Terms of Service (ToS), create a subscription, fund it, then add your consumer contract address to it.
You can find the Chainlink Functions Subscription Manager at functions.chain.link.
Tutorial
This tutorial is configured to get the BTC/USD price with a request that requires API keys. For a detailed explanation of the code example, read the Examine the code section.
You can locate the scripts used in this tutorial in the examples/5-use-secrets-threshold directory.
-
Get a free API key from CoinMarketCap and note your API key.
-
Run
npx env-enc setto add an encryptedCOINMARKETCAP_API_KEYto your.env.encfile.npx env-enc set -
Make sure your subscription has enough LINK to pay for your requests. Also, you must maintain a minimum balance to upload encrypted secrets to the DON (Read the minimum balance for uploading encrypted secrets section to learn more). You can check your subscription details (including the balance in LINK) in the Chainlink Functions Subscription Manager. If your subscription runs out of LINK, follow the Fund a Subscription guide. This guide recommends maintaining at least 2 LINK within your subscription.
To run the example:
-
Open the file
request.js, which is located in the5-use-secrets-thresholdfolder. -
Replace the consumer contract address and the subscription ID with your own values.
const consumerAddress = "0x8dFf78B7EE3128D00E90611FBeD20A71397064D9" // REPLACE this with your Functions consumer address const subscriptionId = 3 // REPLACE this with your subscription ID -
Make a request:
node examples/5-use-secrets-threshold/request.jsThe script runs your function in a sandbox environment before making an onchain transaction:
$ node examples/5-use-secrets-threshold/request.js secp256k1 unavailable, reverting to browser version Start simulation... Simulation result { capturedTerminalOutput: 'Price: 66757.65 USD\n', responseBytesHexstring: '0x000000000000000000000000000000000000000000000000000000000065dd35' } ✅ Decoded response to uint256: 6675765n Estimate request costs... Fulfillment cost estimated to 1.104471544715335 LINK Make request... Upload encrypted secret to gateways https://01.functions-gateway.testnet.chain.link/,https://02.functions-gateway.testnet.chain.link/. slotId 0. Expiration in minutes: 15 ✅ Secrets uploaded properly to gateways https://01.functions-gateway.testnet.chain.link/,https://02.functions-gateway.testnet.chain.link/! Gateways response: { version: 1712949090, success: true } ✅ Functions request sent! Transaction hash 0xcac39aeea98651f307da185aed387314c453272d185e58b26b3bb399b82a90b6. Waiting for a response... See your request in the explorer https://sepolia.etherscan.io/tx/0xcac39aeea98651f307da185aed387314c453272d185e58b26b3bb399b82a90b6 ✅ Request 0xbc09de04f4dd39fa78d4b00b7ab4d2f4a37d8b9a8edf97df5c86061175b9d9c3 successfully fulfilled. Cost is 0.23730142355580769 LINK.Complete response: { requestId: '0xbc09de04f4dd39fa78d4b00b7ab4d2f4a37d8b9a8edf97df5c86061175b9d9c3', subscriptionId: 2303, totalCostInJuels: 237301423555807690n, responseBytesHexstring: '0x000000000000000000000000000000000000000000000000000000000065dc31', errorString: '', returnDataBytesHexstring: '0x', fulfillmentCode: 0 } ✅ Decoded response to uint256: 6675505nThe output of the example gives you the following information:
-
Your request is first run on a sandbox environment to ensure it is correctly configured.
-
The fulfillment costs are estimated before making the request.
-
The encrypted secrets were uploaded to the secrets endpoint
https://01.functions-gateway.testnet.chain.link/user. -
Your request was successfully sent to Chainlink Functions. The transaction in this example is 0xcac39aeea98651f307da185aed387314c453272d185e58b26b3bb399b82a90b6 and the request ID is
0xbc09de04f4dd39fa78d4b00b7ab4d2f4a37d8b9a8edf97df5c86061175b9d9c3. -
The DON successfully fulfilled your request. The total cost was:
0.23730142355580769 LINK. -
The consumer contract received a response in
byteswith a value of0x000000000000000000000000000000000000000000000000000000000065dc31. Decoding it offchain touint256gives you a result:6675505. The median BTC price is 66755.05 USD.
-
Examine the code
FunctionsConsumerExample.sol
// SPDX-License-Identifier: MIT
pragma solidity ^0.8.20;
import {FunctionsClient} from "@chainlink/contracts/src/v0.8/functions/v1_0_0/FunctionsClient.sol";
import {FunctionsRequest} from "@chainlink/contracts/src/v0.8/functions/v1_0_0/libraries/FunctionsRequest.sol";
import {ConfirmedOwner} from "@chainlink/contracts/src/v0.8/shared/access/ConfirmedOwner.sol";
/**
* THIS IS AN EXAMPLE CONTRACT THAT USES HARDCODED VALUES FOR CLARITY.
* THIS IS AN EXAMPLE CONTRACT THAT USES UN-AUDITED CODE.
* DO NOT USE THIS CODE IN PRODUCTION.
*/
contract FunctionsConsumerExample is FunctionsClient, ConfirmedOwner {
using FunctionsRequest for FunctionsRequest.Request;
bytes32 public s_lastRequestId;
bytes public s_lastResponse;
bytes public s_lastError;
error UnexpectedRequestID(bytes32 requestId);
event Response(bytes32 indexed requestId, bytes response, bytes err);
constructor(
address router
) FunctionsClient(router) ConfirmedOwner(msg.sender) {}
/**
* @notice Send a simple request
* @param source JavaScript source code
* @param encryptedSecretsUrls Encrypted URLs where to fetch user secrets
* @param donHostedSecretsSlotID Don hosted secrets slotId
* @param donHostedSecretsVersion Don hosted secrets version
* @param args List of arguments accessible from within the source code
* @param bytesArgs Array of bytes arguments, represented as hex strings
* @param subscriptionId Billing ID
*/
function sendRequest(
string memory source,
bytes memory encryptedSecretsUrls,
uint8 donHostedSecretsSlotID,
uint64 donHostedSecretsVersion,
string[] memory args,
bytes[] memory bytesArgs,
uint64 subscriptionId,
uint32 gasLimit,
bytes32 donID
) external onlyOwner returns (bytes32 requestId) {
FunctionsRequest.Request memory req;
req.initializeRequestForInlineJavaScript(source);
if (encryptedSecretsUrls.length > 0) {
req.addSecretsReference(encryptedSecretsUrls);
} else if (donHostedSecretsVersion > 0) {
req.addDONHostedSecrets(donHostedSecretsSlotID, donHostedSecretsVersion);
}
if (args.length > 0) req.setArgs(args);
if (bytesArgs.length > 0) req.setBytesArgs(bytesArgs);
s_lastRequestId = _sendRequest(req.encodeCBOR(), subscriptionId, gasLimit, donID);
return s_lastRequestId;
}
/**
* @notice Send a pre-encoded CBOR request
* @param request CBOR-encoded request data
* @param subscriptionId Billing ID
* @param gasLimit The maximum amount of gas the request can consume
* @param donID ID of the job to be invoked
* @return requestId The ID of the sent request
*/
function sendRequestCBOR(
bytes memory request,
uint64 subscriptionId,
uint32 gasLimit,
bytes32 donID
) external onlyOwner returns (bytes32 requestId) {
s_lastRequestId = _sendRequest(request, subscriptionId, gasLimit, donID);
return s_lastRequestId;
}
/**
* @notice Store latest result/error
* @param requestId The request ID, returned by sendRequest()
* @param response Aggregated response from the user code
* @param err Aggregated error from the user code or from the execution pipeline
* Either response or error parameter will be set, but never both
*/
function fulfillRequest(
bytes32 requestId,
bytes memory response,
bytes memory err
) internal override {
if (s_lastRequestId != requestId) {
revert UnexpectedRequestID(requestId);
}
s_lastResponse = response;
s_lastError = err;
emit Response(requestId, s_lastResponse, s_lastError);
}
}
-
To write a Chainlink Functions consumer contract, your contract must import FunctionsClient.sol and FunctionsRequest.sol. You can read the API references: FunctionsClient and FunctionsRequest.
These contracts are available in an NPM package, so you can import them from within your project.
import {FunctionsClient} from "@chainlink/contracts/src/v0.8/functions/v1_0_0/FunctionsClient.sol"; import {FunctionsRequest} from "@chainlink/contracts/src/v0.8/functions/v1_0_0/libraries/FunctionsRequest.sol"; -
Use the FunctionsRequest.sol library to get all the functions needed for building a Chainlink Functions request.
using FunctionsRequest for FunctionsRequest.Request; -
The latest request id, latest received response, and latest received error (if any) are defined as state variables:
bytes32 public s_lastRequestId; bytes public s_lastResponse; bytes public s_lastError; -
We define the
Responseevent that your smart contract will emit during the callbackevent Response(bytes32 indexed requestId, bytes response, bytes err); -
Pass the router address for your network when you deploy the contract:
constructor(address router) FunctionsClient(router) -
The three remaining functions are:
-
sendRequestfor sending a request. It receives the JavaScript source code, encrypted secretsUrls (in case the encrypted secrets are hosted by the user), DON hosted secrets slot id and version (in case the encrypted secrets are hosted by the DON), list of arguments to pass to the source code, subscription id, and callback gas limit as parameters. Then:-
It uses the
FunctionsRequestlibrary to initialize the request and add any passed encrypted secrets reference or arguments. You can read the API Reference for Initializing a request, adding user hosted secrets, adding DON hosted secrets, adding arguments, and adding bytes arguments.FunctionsRequest.Request memory req; req.initializeRequestForInlineJavaScript(source); if (encryptedSecretsUrls.length > 0) req.addSecretsReference(encryptedSecretsUrls); else if (donHostedSecretsVersion > 0) { req.addDONHostedSecrets( donHostedSecretsSlotID, donHostedSecretsVersion ); } if (args.length > 0) req.setArgs(args); if (bytesArgs.length > 0) req.setBytesArgs(bytesArgs); -
It sends the request to the router by calling the
FunctionsClientsendRequestfunction. You can read the API reference for sending a request. Finally, it stores the request id ins_lastRequestIdthen return it.s_lastRequestId = _sendRequest( req.encodeCBOR(), subscriptionId, gasLimit, jobId ); return s_lastRequestId;Note:
_sendRequestaccepts requests encoded inbytes. Therefore, you must encode it using encodeCBOR.
-
-
sendRequestCBORfor sending a request already encoded inbytes. It receives the request object encoded inbytes, subscription id, and callback gas limit as parameters. Then, it sends the request to the router by calling theFunctionsClientsendRequestfunction. Note: This function is helpful if you want to encode a request offchain before sending it, saving gas when submitting the request.
-
-
fulfillRequestto be invoked during the callback. This function is defined inFunctionsClientasvirtual(readfulfillRequestAPI reference). So, your smart contract must override the function to implement the callback. The implementation of the callback is straightforward: the contract stores the latest response and error ins_lastResponseands_lastErrorbefore emitting theResponseevent.s_lastResponse = response; s_lastError = err; emit Response(requestId, s_lastResponse, s_lastError);
JavaScript example
source.js
The Decentralized Oracle Network will run the JavaScript code. The code is self-explanatory and has comments to help you understand all the steps.
This JavaScript source code uses Functions.makeHttpRequest to make HTTP requests. To request the BTC asset price, the source code calls the https://pro-api.coinmarketcap.com/v1/cryptocurrency/quotes/latest/ URL. If you read the Functions.makeHttpRequest documentation, you see that you must provide the following parameters:
-
url:https://pro-api.coinmarketcap.com/v1/cryptocurrency/quotes/latest -
headers: This is an HTTP headers object set to"X-CMC_PRO_API_KEY": secrets.apiKey. TheapiKeyis passed in the secrets, see request. -
params: The query parameters object:{ convert: currencyCode, id: coinMarketCapCoinId }
To check the expected API response, run the curl command in your terminal:
curl -X 'GET' \
'https://pro-api.coinmarketcap.com/v1/cryptocurrency/quotes/latest?id=1&convert=USD' \
-H 'accept: application/json' \
-H 'X-CMC_PRO_API_KEY: REPLACE_WITH_YOUR_API_KEY'
The response should be similar to the following example:
{
...,
"data": {
"1": {
"id": 1,
"name": "Bitcoin",
"symbol": "BTC",
"slug": "bitcoin",
...,
"quote": {
"USD": {
"price": 23036.068560170934,
"volume_24h": 33185308895.694683,
"volume_change_24h": 24.8581,
"percent_change_1h": 0.07027098,
"percent_change_24h": 1.79073805,
"percent_change_7d": 10.29859656,
"percent_change_30d": 38.10735851,
"percent_change_60d": 39.26624921,
"percent_change_90d": 11.59835416,
"market_cap": 443982488416.99316,
"market_cap_dominance": 42.385,
"fully_diluted_market_cap": 483757439763.59,
"tvl": null,
"last_updated": "2023-01-26T18:27:00.000Z"
}
}
}
}
}
The price is located at data,1,quote,USD,price.
The main steps of the scripts are:
- Fetch the
currencyCodeandcoinMarketCapCoinIdfromargs. - Construct the HTTP object
coinMarketCapRequestusingFunctions.makeHttpRequest. - Make the HTTP call.
- Read the asset price from the response.
- Return the result as a buffer using the helper function:
Functions.encodeUint256. Note: Because solidity doesn't support decimals, we multiply the result by100and round the result to the nearest integer. Note: Read this article if you are new to Javascript Buffers and want to understand why they are important.
request.js
This explanation focuses on the request.js script and shows how to use the Chainlink Functions NPM package in your own JavaScript/TypeScript project to send requests to a DON. The code is self-explanatory and has comments to help you understand all the steps.
The script imports:
- path and fs : Used to read the source file.
- ethers: Ethers.js library, enables the script to interact with the blockchain.
@chainlink/functions-toolkit: Chainlink Functions NPM package. All its utilities are documented in the NPM README.@chainlink/env-enc: A tool for loading and storing encrypted environment variables. Read the official documentation to learn more.../abi/functionsClient.json: The abi of the contract your script will interact with. Note: The script was tested with this FunctionsConsumerExample contract.
The script has two hardcoded values that you have to change using your own Functions consumer contract and subscription ID:
const consumerAddress = "0x8dFf78B7EE3128D00E90611FBeD20A71397064D9" // REPLACE this with your Functions consumer address
const subscriptionId = 3 // REPLACE this with your subscription ID
The primary function that the script executes is makeRequestSepolia. This function can be broken into six main parts:
-
Definition of necessary identifiers:
routerAddress: Chainlink Functions router address on Sepolia.donId: Identifier of the DON that will fulfill your requests on Sepolia.gatewayUrls: The secrets endpoint URL to which you will upload the encrypted secrets.explorerUrl: Block explorer URL of the Sepolia testnet.source: The source code must be a string object. That's why we usefs.readFileSyncto readsource.jsand then calltoString()to get the content as astringobject.args: During the execution of your function, These arguments are passed to the source code. Theargsvalue is["1", "USD"], which fetches the BTC/USD price.secrets: The secrets object that will be encrypted.slotIdNumber: Slot ID at the DON where to upload the encrypted secrets.expirationTimeMinutes: Expiration time in minutes of the encrypted secrets.gasLimit: Maximum gas that Chainlink Functions can use when transmitting the response to your contract.- Initialization of ethers
signerandproviderobjects. The signer is used to make transactions on the blockchain, and the provider reads data from the blockchain.
-
Simulating your request in a local sandbox environment:
- Use
simulateScriptfrom the Chainlink Functions NPM package. - Read the
responseof the simulation. If successful, use the Functions NPM packagedecodeResultfunction andReturnTypeenum to decode the response to the expected returned type (ReturnType.uint256in this example).
- Use
-
Estimating the costs:
- Initialize a
SubscriptionManagerfrom the Functions NPM package, then call theestimateFunctionsRequestCostfunction. - The response is returned in Juels (1 LINK = 10**18 Juels). Use the
ethers.utils.formatEtherutility function to convert the output to LINK.
- Initialize a
-
Encrypt the secrets, then upload the encrypted secrets to the DON. This is done in two steps:
- Initialize a
SecretsManagerinstance from the Functions NPM package, then call theencryptSecretsfunction. - Call the
uploadEncryptedSecretsToDONfunction of theSecretsManagerinstance. This function returns an object containing asuccessboolean as long asversion, the secret version on the DON storage. Note: When making the request, you must pass the slot ID and version to tell the DON where to fetch the encrypted secrets.
- Initialize a
-
Making a Chainlink Functions request:
- Initialize your functions consumer contract using the contract address, abi, and ethers signer.
- Call the
sendRequestfunction of your consumer contract.
-
Waiting for the response:
- Initialize a
ResponseListenerfrom the Functions NPM package and then call thelistenForResponseFromTransactionfunction to wait for a response. By default, this function waits for five minutes. - Upon reception of the response, use the Functions NPM package
decodeResultfunction andReturnTypeenum to decode the response to the expected returned type (ReturnType.uint256in this example).
- Initialize a