1e41f4b71Sopenharmony_ci# Encryption and Decryption with an AES Symmetric Key (GCM Mode) (C/C++)
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4e41f4b71Sopenharmony_ciFor details about the algorithm specifications, see [AES](crypto-sym-encrypt-decrypt-spec.md#aes).
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7e41f4b71Sopenharmony_ci## Adding the Dynamic Library in the CMake Script
8e41f4b71Sopenharmony_ci```txt
9e41f4b71Sopenharmony_ci   target_link_libraries(entry PUBLIC libohcrypto.so)
10e41f4b71Sopenharmony_ci```
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12e41f4b71Sopenharmony_ci## How to Develop
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14e41f4b71Sopenharmony_ci**Encryption**
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17e41f4b71Sopenharmony_ci1. Use [OH_CryptoSymKeyGenerator_Create](../../reference/apis-crypto-architecture-kit/_crypto_sym_key_api.md#oh_cryptosymkeygenerator_create) and [OH_CryptoSymKeyGenerator_Generate](../../reference/apis-crypto-architecture-kit/_crypto_sym_key_api.md#oh_cryptosymkeygenerator_generate) to generate a 128-bit AES symmetric key (**OH_CryptoSymKey**).
18e41f4b71Sopenharmony_ci   
19e41f4b71Sopenharmony_ci   In addition to the example in this topic, [AES](crypto-sym-key-generation-conversion-spec.md#aes) and [Randomly Generating a Symmetric Key](crypto-generate-sym-key-randomly-ndk.md) may help you better understand how to generate an AES symmetric key. Note that the input parameters in the reference documents may be different from those in the example below.
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21e41f4b71Sopenharmony_ci2. Use [OH_CryptoSymCipher_Create](../../reference/apis-crypto-architecture-kit/_crypto_sym_cipher_api.md#oh_cryptosymcipher_create) with the string parameter **'AES128|GCM|PKCS7'** to create a **Cipher** instance. The key type is **AES128**, block cipher mode is **GCM**, and the padding mode is **PKCS7**.
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23e41f4b71Sopenharmony_ci3. Use [OH_CryptoSymCipherParams_Create](../../reference/apis-crypto-architecture-kit/_crypto_sym_cipher_api.md#oh_cryptosymcipherparams_create) to create a symmetric cipher parameter instance, and use [OH_CryptoSymCipherParams_SetParams](../../reference/apis-crypto-architecture-kit/_crypto_sym_cipher_api.md#oh_cryptosymcipherparams_setparam) to set cipher parameters.
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25e41f4b71Sopenharmony_ci4. Use [OH_CryptoSymCipher_Init](../../reference/apis-crypto-architecture-kit/_crypto_sym_cipher_api.md#oh_cryptosymcipher_init) to initialize the **Cipher** instance. Specifically, set **mode** to **CRYPTO_ENCRYPT_MODE**, and specify the key for encryption (**OH_CryptoSymKey**) and the encryption parameter instance (**OH_CryptoSymCipherParams**) corresponding to the GCM mode.
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27e41f4b71Sopenharmony_ci5. Use [OH_CryptoSymCipher_Update](../../reference/apis-crypto-architecture-kit/_crypto_sym_cipher_api.md#oh_cryptosymcipher_update) to update the data (plaintext) to be encrypted.
28e41f4b71Sopenharmony_ci   
29e41f4b71Sopenharmony_ci   Currently, the amount of data to be passed in by a single **update()** is not limited. You can determine how to pass in data based on the data volume.
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31e41f4b71Sopenharmony_ci   - If a small amount of data is to be encrypted, you can use **OH_CryptoSymCipher_Final()** immediately after **OH_CryptoSymCipher_Init()**.
32e41f4b71Sopenharmony_ci   - If a large amount of data is to be encrypted, you can call **OH_CryptoSymCipher_Update()** multiple times to pass in the data by segment.
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34e41f4b71Sopenharmony_ci6. Use [OH_CryptoSymCipher_Final](../../reference/apis-crypto-architecture-kit/_crypto_sym_cipher_api.md#oh_cryptosymcipher_final) to generate the ciphertext.
35e41f4b71Sopenharmony_ci   - If data has been passed in by **OH_CryptoSymCipher_Update()**, pass in **null** in the **data** parameter of **OH_CryptoSymCipher_Final**.
36e41f4b71Sopenharmony_ci   - The output of **OH_CryptoSymCipher_Final** may be **null**. To avoid exceptions, always check whether the result is **null** before accessing specific data.
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38e41f4b71Sopenharmony_ci7. Use [OH_CryptoSymCipherParams_Create](../../reference/apis-crypto-architecture-kit/_crypto_sym_cipher_api.md#oh_cryptosymcipherparams_create) to create a **Params** instance, and use [OH_CryptoSymCipherParams_SetParam](../../reference/apis-crypto-architecture-kit/_crypto_sym_cipher_api.md#oh_cryptosymcipherparams_setparam) to set **authTag** as the authentication information for decryption.
39e41f4b71Sopenharmony_ci   
40e41f4b71Sopenharmony_ciIn GCM mode, extract the last 16 bytes from the encrypted data as the authentication information for initializing the **Cipher** instance in decryption. In the example, **authTag** is of 16 bytes.
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42e41f4b71Sopenharmony_ci8. Use [OH_CryptoSymKeyGenerator_Destroy](../../reference/apis-crypto-architecture-kit/_crypto_sym_key_api.md#oh_cryptosymkeygenerator_destroy), [OH_CryptoSymCipher_Destroy](../../reference/apis-crypto-architecture-kit/_crypto_sym_cipher_api.md#oh_cryptosymcipher_destroy), and [OH_CryptoSymCipherParams_Destroy](../../reference/apis-crypto-architecture-kit/_crypto_sym_cipher_api.md#oh_cryptosymcipherparams_destroy) to destroy the instances created.
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45e41f4b71Sopenharmony_ci**Decryption**
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48e41f4b71Sopenharmony_ci1. Use [OH_CryptoSymCipher_Init](../../reference/apis-crypto-architecture-kit/_crypto_sym_cipher_api.md#oh_cryptosymcipher_init) to initialize the **Cipher** instance. Specifically, set **mode** to **CRYPTO_DECRYPT_MODE**, and specify the key for decryption (**OH_CryptoSymKey**) and the decryption parameter instance (**OH_CryptoSymCipherParams**) corresponding to the GCM mode.
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50e41f4b71Sopenharmony_ci2. Use [OH_CryptoSymCipher_Update](../../reference/apis-crypto-architecture-kit/_crypto_sym_cipher_api.md#oh_cryptosymcipher_update) to update the data (ciphertext) to be decrypted.
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52e41f4b71Sopenharmony_ci3. Use [OH_CryptoSymCipher_Final](../../reference/apis-crypto-architecture-kit/_crypto_sym_cipher_api.md#oh_cryptosymcipher_final) to generate the plaintext.
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55e41f4b71Sopenharmony_ci**Example **
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57e41f4b71Sopenharmony_ci```c++
58e41f4b71Sopenharmony_ci#include "CryptoArchitectureKit/crypto_common.h"
59e41f4b71Sopenharmony_ci#include "CryptoArchitectureKit/crypto_sym_cipher.h"
60e41f4b71Sopenharmony_ci
61e41f4b71Sopenharmony_cistatic OH_Crypto_ErrCode doTestAesGcm()
62e41f4b71Sopenharmony_ci{
63e41f4b71Sopenharmony_ci    OH_CryptoSymKeyGenerator *genCtx = nullptr;
64e41f4b71Sopenharmony_ci    OH_CryptoSymCipher *encCtx = nullptr;
65e41f4b71Sopenharmony_ci    OH_CryptoSymCipher *decCtx = nullptr;
66e41f4b71Sopenharmony_ci    OH_CryptoSymKey *keyCtx = nullptr;
67e41f4b71Sopenharmony_ci    OH_CryptoSymCipherParams *params = nullptr;
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69e41f4b71Sopenharmony_ci    Crypto_DataBlob outUpdate = {.data = nullptr, .len = 0};
70e41f4b71Sopenharmony_ci    Crypto_DataBlob decUpdate = {.data = nullptr, .len = 0};
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72e41f4b71Sopenharmony_ci    uint8_t aad[8] = {0};
73e41f4b71Sopenharmony_ci    uint8_t tag[16] = {0};
74e41f4b71Sopenharmony_ci    uint8_t iv[12] = {0};
75e41f4b71Sopenharmony_ci    Crypto_DataBlob ivData = {.data = iv, .len = sizeof(iv)};
76e41f4b71Sopenharmony_ci    Crypto_DataBlob aadData = {.data = aad, .len = sizeof(aad)};
77e41f4b71Sopenharmony_ci    Crypto_DataBlob tagData = {.data = tag, .len = sizeof(tag)};
78e41f4b71Sopenharmony_ci    Crypto_DataBlob tagOutPut = {.data = nullptr, .len = 0};
79e41f4b71Sopenharmony_ci    uint8_t plainText[] = "this is test!";
80e41f4b71Sopenharmony_ci    Crypto_DataBlob msgBlob = {.data = reinterpret_cast<uint8_t *>(plainText), .len = 13};
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82e41f4b71Sopenharmony_ci    // Generate a symmetric key.
83e41f4b71Sopenharmony_ci    OH_Crypto_ErrCode ret;
84e41f4b71Sopenharmony_ci    ret = OH_CryptoSymKeyGenerator_Create("AES128", &genCtx);
85e41f4b71Sopenharmony_ci    if (ret != CRYPTO_SUCCESS) {
86e41f4b71Sopenharmony_ci        goto end;
87e41f4b71Sopenharmony_ci    }
88e41f4b71Sopenharmony_ci    ret = OH_CryptoSymKeyGenerator_Generate(genCtx, &keyCtx);
89e41f4b71Sopenharmony_ci    if (ret != CRYPTO_SUCCESS) {
90e41f4b71Sopenharmony_ci        goto end;
91e41f4b71Sopenharmony_ci    }
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93e41f4b71Sopenharmony_ci    // Set parameters.
94e41f4b71Sopenharmony_ci    ret = OH_CryptoSymCipherParams_Create(&params);
95e41f4b71Sopenharmony_ci    if (ret != CRYPTO_SUCCESS) {
96e41f4b71Sopenharmony_ci        goto end;
97e41f4b71Sopenharmony_ci    }
98e41f4b71Sopenharmony_ci    ret = OH_CryptoSymCipherParams_SetParam(params, CRYPTO_IV_DATABLOB, &ivData);
99e41f4b71Sopenharmony_ci    if (ret != CRYPTO_SUCCESS) {
100e41f4b71Sopenharmony_ci        goto end;
101e41f4b71Sopenharmony_ci    }
102e41f4b71Sopenharmony_ci    ret = OH_CryptoSymCipherParams_SetParam(params, CRYPTO_AAD_DATABLOB, &aadData);
103e41f4b71Sopenharmony_ci    if (ret != CRYPTO_SUCCESS) {
104e41f4b71Sopenharmony_ci        goto end;
105e41f4b71Sopenharmony_ci    }
106e41f4b71Sopenharmony_ci    ret = OH_CryptoSymCipherParams_SetParam(params, CRYPTO_TAG_DATABLOB, &tagData);
107e41f4b71Sopenharmony_ci    if (ret != CRYPTO_SUCCESS) {
108e41f4b71Sopenharmony_ci        goto end;
109e41f4b71Sopenharmony_ci    }
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111e41f4b71Sopenharmony_ci      // Encrypt data.
112e41f4b71Sopenharmony_ci    ret = OH_CryptoSymCipher_Create("AES128|GCM|PKCS7", &encCtx);
113e41f4b71Sopenharmony_ci    if (ret != CRYPTO_SUCCESS) {
114e41f4b71Sopenharmony_ci        goto end;
115e41f4b71Sopenharmony_ci    }
116e41f4b71Sopenharmony_ci    ret = OH_CryptoSymCipher_Init(encCtx, CRYPTO_ENCRYPT_MODE, keyCtx, params);
117e41f4b71Sopenharmony_ci    if (ret != CRYPTO_SUCCESS) {
118e41f4b71Sopenharmony_ci        goto end;
119e41f4b71Sopenharmony_ci    }
120e41f4b71Sopenharmony_ci    ret = OH_CryptoSymCipher_Update(encCtx, &msgBlob, &outUpdate);
121e41f4b71Sopenharmony_ci    if (ret != CRYPTO_SUCCESS) {
122e41f4b71Sopenharmony_ci        goto end;
123e41f4b71Sopenharmony_ci    }
124e41f4b71Sopenharmony_ci    ret = OH_CryptoSymCipher_Final(encCtx, nullptr, &tagOutPut);
125e41f4b71Sopenharmony_ci    if (ret != CRYPTO_SUCCESS) {
126e41f4b71Sopenharmony_ci        goto end;
127e41f4b71Sopenharmony_ci    }
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129e41f4b71Sopenharmony_ci    // Decrypt data.
130e41f4b71Sopenharmony_ci    ret = OH_CryptoSymCipher_Create("AES128|GCM|PKCS7", &decCtx);
131e41f4b71Sopenharmony_ci    if (ret != CRYPTO_SUCCESS) {
132e41f4b71Sopenharmony_ci        goto end;
133e41f4b71Sopenharmony_ci    }
134e41f4b71Sopenharmony_ci    ret = OH_CryptoSymCipherParams_SetParam(params, CRYPTO_TAG_DATABLOB, &tagOutPut);
135e41f4b71Sopenharmony_ci    if (ret != CRYPTO_SUCCESS) {
136e41f4b71Sopenharmony_ci        goto end;
137e41f4b71Sopenharmony_ci    }
138e41f4b71Sopenharmony_ci    ret = OH_CryptoSymCipher_Init(decCtx, CRYPTO_DECRYPT_MODE, keyCtx, params);
139e41f4b71Sopenharmony_ci    if (ret != CRYPTO_SUCCESS) {
140e41f4b71Sopenharmony_ci        goto end;
141e41f4b71Sopenharmony_ci    }
142e41f4b71Sopenharmony_ci    ret = OH_CryptoSymCipher_Final(decCtx, &outUpdate, &decUpdate);
143e41f4b71Sopenharmony_ci    if (ret != CRYPTO_SUCCESS) {
144e41f4b71Sopenharmony_ci        goto end;
145e41f4b71Sopenharmony_ci    }
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147e41f4b71Sopenharmony_ciend:
148e41f4b71Sopenharmony_ci    OH_CryptoSymCipherParams_Destroy(params);
149e41f4b71Sopenharmony_ci    OH_CryptoSymCipher_Destroy(encCtx);
150e41f4b71Sopenharmony_ci    OH_CryptoSymCipher_Destroy(decCtx);
151e41f4b71Sopenharmony_ci    OH_CryptoSymKeyGenerator_Destroy(genCtx);
152e41f4b71Sopenharmony_ci    OH_CryptoSymKey_Destroy(keyCtx);
153e41f4b71Sopenharmony_ci    OH_Crypto_FreeDataBlob(&outUpdate);
154e41f4b71Sopenharmony_ci    OH_Crypto_FreeDataBlob(&decUpdate);
155e41f4b71Sopenharmony_ci    OH_Crypto_FreeDataBlob(&tagOutPut);
156e41f4b71Sopenharmony_ci    return ret;
157e41f4b71Sopenharmony_ci}
158e41f4b71Sopenharmony_ci```
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