1e41f4b71Sopenharmony_ci# Encryption and Decryption with an SM4 Symmetric Key (ECB Mode) (ArkTS) 2e41f4b71Sopenharmony_ci 3e41f4b71Sopenharmony_ci 4e41f4b71Sopenharmony_ciFor details about the algorithm specifications, see [SM4](crypto-sym-encrypt-decrypt-spec.md#sm4). 5e41f4b71Sopenharmony_ci 6e41f4b71Sopenharmony_ci**Encryption** 7e41f4b71Sopenharmony_ci 8e41f4b71Sopenharmony_ci 9e41f4b71Sopenharmony_ci1. Use [cryptoFramework.createSymKeyGenerator](../../reference/apis-crypto-architecture-kit/js-apis-cryptoFramework.md#cryptoframeworkcreatesymkeygenerator) and [SymKeyGenerator.generateSymKey](../../reference/apis-crypto-architecture-kit/js-apis-cryptoFramework.md#generatesymkey-1) to generate a 128-bit SM4 symmetric key (**SymKey**). 10e41f4b71Sopenharmony_ci 11e41f4b71Sopenharmony_ci In addition to the example in this topic, [SM4](crypto-sym-key-generation-conversion-spec.md#sm4) and [Randomly Generating a Symmetric Key](crypto-generate-sym-key-randomly.md) may help you better understand how to generate an SM4 symmetric key. Note that the input parameters in the reference documents may be different from those in the example below. 12e41f4b71Sopenharmony_ci 13e41f4b71Sopenharmony_ci2. Use [cryptoFramework.createCipher](../../reference/apis-crypto-architecture-kit/js-apis-cryptoFramework.md#cryptoframeworkcreatecipher) with the string parameter **'SM4_128|ECB|PKCS7'** to create a **Cipher** instance. The key type is **SM4_128**, block cipher mode is **ECB**, and the padding mode is **PKCS7**. 14e41f4b71Sopenharmony_ci 15e41f4b71Sopenharmony_ci3. Use [Cipher.init](../../reference/apis-crypto-architecture-kit/js-apis-cryptoFramework.md#init-1) to initialize the **Cipher** instance. In **Cipher.init**, set **opMode** to **CryptoMode.ENCRYPT_MODE** (encryption) and **key** to **SymKey** (the key used for encryption). 16e41f4b71Sopenharmony_ci 17e41f4b71Sopenharmony_ci When ECB mode is used, pass in **null** in **params**. 18e41f4b71Sopenharmony_ci 19e41f4b71Sopenharmony_ci4. Use [Cipher.update](../../reference/apis-crypto-architecture-kit/js-apis-cryptoFramework.md#update-1) to pass in the data to be encrypted (plaintext). 20e41f4b71Sopenharmony_ci 21e41f4b71Sopenharmony_ci - If a large amount of data is to be encrypted, you can use **Cipher.doFinal** immediately after **Cipher.init**. 22e41f4b71Sopenharmony_ci - If a large amount of data is to be encrypted, you can call **Cipher.update** multiple times to pass in the data by segment. 23e41f4b71Sopenharmony_ci 24e41f4b71Sopenharmony_ci5. Use [Cipher.doFinal](../../reference/apis-crypto-architecture-kit/js-apis-cryptoFramework.md#dofinal-1) to obtain the encrypted data. 25e41f4b71Sopenharmony_ci 26e41f4b71Sopenharmony_ci - If data has been passed in by **Cipher.update**, pass in **null** in the **data** parameter of **Cipher.doFinal**. 27e41f4b71Sopenharmony_ci - The output of **Cipher.doFinal** may be **null**. To avoid exceptions, always check whether the result is **null** before accessing specific data. 28e41f4b71Sopenharmony_ci 29e41f4b71Sopenharmony_ci 30e41f4b71Sopenharmony_ci**Decryption** 31e41f4b71Sopenharmony_ci 32e41f4b71Sopenharmony_ci 33e41f4b71Sopenharmony_ci1. Use [Cipher.init](../../reference/apis-crypto-architecture-kit/js-apis-cryptoFramework.md#init-1) to initialize the **Cipher** instance. In **Cipher.init**, set **opMode** to **CryptoMode.DECRYPT_MODE** (decryption) and **key** to **SymKey** (the key used for decryption). When ECB mode is used, pass in **null** in **params**. 34e41f4b71Sopenharmony_ci 35e41f4b71Sopenharmony_ci2. Use [Cipher.update](../../reference/apis-crypto-architecture-kit/js-apis-cryptoFramework.md#update-1) to pass in the data to be decrypted (ciphertext). 36e41f4b71Sopenharmony_ci 37e41f4b71Sopenharmony_ci3. Use [Cipher.doFinal](../../reference/apis-crypto-architecture-kit/js-apis-cryptoFramework.md#dofinal-1) to obtain the decrypted data. 38e41f4b71Sopenharmony_ci 39e41f4b71Sopenharmony_ci 40e41f4b71Sopenharmony_ci- Example (using asynchronous APIs): 41e41f4b71Sopenharmony_ci 42e41f4b71Sopenharmony_ci ```ts 43e41f4b71Sopenharmony_ci import { cryptoFramework } from '@kit.CryptoArchitectureKit'; 44e41f4b71Sopenharmony_ci import { buffer } from '@kit.ArkTS'; 45e41f4b71Sopenharmony_ci 46e41f4b71Sopenharmony_ci // Encrypt the message. 47e41f4b71Sopenharmony_ci async function encryptMessagePromise(symKey: cryptoFramework.SymKey, plainText: cryptoFramework.DataBlob) { 48e41f4b71Sopenharmony_ci let cipher = cryptoFramework.createCipher('SM4_128|ECB|PKCS7'); 49e41f4b71Sopenharmony_ci await cipher.init(cryptoFramework.CryptoMode.ENCRYPT_MODE, symKey, null); 50e41f4b71Sopenharmony_ci let encryptData = await cipher.doFinal(plainText); 51e41f4b71Sopenharmony_ci return encryptData; 52e41f4b71Sopenharmony_ci } 53e41f4b71Sopenharmony_ci // Decrypt the message. 54e41f4b71Sopenharmony_ci async function decryptMessagePromise(symKey: cryptoFramework.SymKey, cipherText: cryptoFramework.DataBlob) { 55e41f4b71Sopenharmony_ci let decoder = cryptoFramework.createCipher('SM4_128|ECB|PKCS7'); 56e41f4b71Sopenharmony_ci await decoder.init(cryptoFramework.CryptoMode.DECRYPT_MODE, symKey, null); 57e41f4b71Sopenharmony_ci let decryptData = await decoder.doFinal(cipherText); 58e41f4b71Sopenharmony_ci return decryptData; 59e41f4b71Sopenharmony_ci } 60e41f4b71Sopenharmony_ci async function genSymKeyByData(symKeyData: Uint8Array) { 61e41f4b71Sopenharmony_ci let symKeyBlob: cryptoFramework.DataBlob = { data: symKeyData }; 62e41f4b71Sopenharmony_ci let symGenerator = cryptoFramework.createSymKeyGenerator('SM4_128'); 63e41f4b71Sopenharmony_ci let symKey = await symGenerator.convertKey(symKeyBlob); 64e41f4b71Sopenharmony_ci console.info('convertKey success'); 65e41f4b71Sopenharmony_ci return symKey; 66e41f4b71Sopenharmony_ci } 67e41f4b71Sopenharmony_ci async function main() { 68e41f4b71Sopenharmony_ci let keyData = new Uint8Array([7, 154, 52, 176, 4, 236, 150, 43, 237, 9, 145, 166, 141, 174, 224, 131]); 69e41f4b71Sopenharmony_ci let symKey = await genSymKeyByData(keyData); 70e41f4b71Sopenharmony_ci let message = "This is a test"; 71e41f4b71Sopenharmony_ci let plainText: cryptoFramework.DataBlob = { data: new Uint8Array(buffer.from(message, 'utf-8').buffer) }; 72e41f4b71Sopenharmony_ci let encryptText = await encryptMessagePromise(symKey, plainText); 73e41f4b71Sopenharmony_ci let decryptText = await decryptMessagePromise(symKey, encryptText); 74e41f4b71Sopenharmony_ci if (plainText.data.toString() === decryptText.data.toString()) { 75e41f4b71Sopenharmony_ci console.info('decrypt ok'); 76e41f4b71Sopenharmony_ci console.info('decrypt plainText: ' + buffer.from(decryptText.data).toString('utf-8')); 77e41f4b71Sopenharmony_ci } else { 78e41f4b71Sopenharmony_ci console.error('decrypt failed'); 79e41f4b71Sopenharmony_ci } 80e41f4b71Sopenharmony_ci } 81e41f4b71Sopenharmony_ci ``` 82e41f4b71Sopenharmony_ci 83e41f4b71Sopenharmony_ci- Example (using synchronous APIs): 84e41f4b71Sopenharmony_ci 85e41f4b71Sopenharmony_ci ```ts 86e41f4b71Sopenharmony_ci import { cryptoFramework } from '@kit.CryptoArchitectureKit'; 87e41f4b71Sopenharmony_ci import { buffer } from '@kit.ArkTS'; 88e41f4b71Sopenharmony_ci 89e41f4b71Sopenharmony_ci // Encrypt the message. 90e41f4b71Sopenharmony_ci function encryptMessage(symKey: cryptoFramework.SymKey, plainText: cryptoFramework.DataBlob) { 91e41f4b71Sopenharmony_ci let cipher = cryptoFramework.createCipher('SM4_128|ECB|PKCS7'); 92e41f4b71Sopenharmony_ci cipher.initSync(cryptoFramework.CryptoMode.ENCRYPT_MODE, symKey, null); 93e41f4b71Sopenharmony_ci let encryptData = cipher.doFinalSync(plainText); 94e41f4b71Sopenharmony_ci return encryptData; 95e41f4b71Sopenharmony_ci } 96e41f4b71Sopenharmony_ci // Decrypt the message. 97e41f4b71Sopenharmony_ci function decryptMessage(symKey: cryptoFramework.SymKey, cipherText: cryptoFramework.DataBlob) { 98e41f4b71Sopenharmony_ci let decoder = cryptoFramework.createCipher('SM4_128|ECB|PKCS7'); 99e41f4b71Sopenharmony_ci decoder.initSync(cryptoFramework.CryptoMode.DECRYPT_MODE, symKey, null); 100e41f4b71Sopenharmony_ci let decryptData = decoder.doFinalSync(cipherText); 101e41f4b71Sopenharmony_ci return decryptData; 102e41f4b71Sopenharmony_ci } 103e41f4b71Sopenharmony_ci async function genSymKeyByData(symKeyData: Uint8Array) { 104e41f4b71Sopenharmony_ci let symKeyBlob: cryptoFramework.DataBlob = { data: symKeyData }; 105e41f4b71Sopenharmony_ci let symGenerator = cryptoFramework.createSymKeyGenerator('SM4_128'); 106e41f4b71Sopenharmony_ci let symKey = symGenerator.convertKey(symKeyBlob); 107e41f4b71Sopenharmony_ci console.info('convertKey success'); 108e41f4b71Sopenharmony_ci return symKey; 109e41f4b71Sopenharmony_ci } 110e41f4b71Sopenharmony_ci async function main() { 111e41f4b71Sopenharmony_ci let keyData = new Uint8Array([7, 154, 52, 176, 4, 236, 150, 43, 237, 9, 145, 166, 141, 174, 224, 131]); 112e41f4b71Sopenharmony_ci let symKey = await genSymKeyByData(keyData); 113e41f4b71Sopenharmony_ci let message = "This is a test"; 114e41f4b71Sopenharmony_ci let plainText: cryptoFramework.DataBlob = { data: new Uint8Array(buffer.from(message, 'utf-8').buffer) }; 115e41f4b71Sopenharmony_ci let encryptText = encryptMessage(symKey, plainText); 116e41f4b71Sopenharmony_ci let decryptText = decryptMessage(symKey, encryptText); 117e41f4b71Sopenharmony_ci if (plainText.data.toString() === decryptText.data.toString()) { 118e41f4b71Sopenharmony_ci console.info('decrypt ok'); 119e41f4b71Sopenharmony_ci console.info('decrypt plainText: ' + buffer.from(decryptText.data).toString('utf-8')); 120e41f4b71Sopenharmony_ci } else { 121e41f4b71Sopenharmony_ci console.error('decrypt failed'); 122e41f4b71Sopenharmony_ci } 123e41f4b71Sopenharmony_ci } 124e41f4b71Sopenharmony_ci ``` 125