Openssl-rc2

RC2是一种对称加密算法,所见到的安全解决方案中,使用RC2的算法不多,从资料上看,RC2算法可以替代DES算法,而且计算速度快,能在16位计算机上实现,密钥长度从1到128字节都可以。一般采用16字节,计算的数据块为8字节。


void RC2_set_key(RC2_KEY *key, int len, const unsigned char *data,int bits);

设置密钥

key: RC2的密钥对象;

len:密钥长度;

data: 密钥数据;

bits:BSAFE使用的密钥数据的位数,如果不对key做修改,此数据设定为1024,在RSA的BSAFE的库中,此数据设定为128;


void RC2_ecb_encrypt(const unsigned char *in,unsigned char *out,RC2_KEY *key,
             int enc);

RC2 ecb计算;

in: 输入数据;

out: 输出数据;

key: RC2的密钥对象;

enc: 加密/解密模式。 加密:RC2_ENCRYPT, 解密:RC2_DECRYPT


void RC2_encrypt(unsigned long *data,RC2_KEY *key);

RC2加密计算,此函数是被其他库函数调用的底层函数;

data: 输入/输出数据;

key: RC2密钥对象;


void RC2_decrypt(unsigned long *data,RC2_KEY *key);

RC2解密计算,此函数被其他函数调用的底层函数;

data: 输入/输出数据;

key: RC2密钥对象;


void RC2_cbc_encrypt(const unsigned char *in, unsigned char *out, long length,
    RC2_KEY *ks, unsigned char *iv, int enc);

RC2 cbc加密/解密计算;

in: 输入数据;

out: 输出数据;

length: 数据长度;

ks: RC2密钥对象;

iv: 初始化向量;

enc: 加密/解密模式。 加密:RC2_ENCRYPT, 解密:RC2_DECRYPT

void RC2_cfb64_encrypt(const unsigned char *in, unsigned char *out,
               long length, RC2_KEY *schedule, unsigned char *ivec,
               int *num, int enc);

RC2的cfb64 加密/解密计算;

in: 输入数据;

out: 输出数据;

length: 数据长度;

schedule: RC2密钥对象;

ivec: 初始化向量;

enc: 加密/解密模式。 加密:RC2_ENCRYPT, 解密:RC2_DECRYPT



void RC2_ofb64_encrypt(const unsigned char *in, unsigned char *out,
               long length, RC2_KEY *schedule, unsigned char *ivec,
               int *num);

RC2的ofb64 加密;

in: 输入数据;

out: 输出数据;

length: 数据长度;

schedule: RC2密钥对象;

ivec: 初始化向量;

num: 参与计算的向量数据的字节个数





RC2是由著名密码学家Ron Rivest设计的一种传统对称分组加密算法,它可作为DES算法的建议替代算法。它的输入和输出都是64比特。密钥的长度是从8字节到128字节可变,但目前的实现是8字节(1998年)。 此算法被设计为可容易地在16位的微处理器上实现。在一个IBM AT机上,RC2加密算法的执行可比DES算法快两倍(假设进行密钥扩展)。在C#中用RC2CryptoServiceProvider可以实现此算法算法原理: 1.根据计算机cpu序列号 ,硬盘ID,网卡硬件地址 号生成注册码: //获取机器码 public static string getMachineCode() { string machineCode = ""; MD5CryptoServiceProvider provider1; byte[] array1; string text1; string text2; byte num1; byte[] array2; int num2; provider1 = new MD5CryptoServiceProvider(); string cpuInfo = "";//cpu序列号 ManagementClass cimobject = new ManagementClass("Win32_Processor"); ManagementObjectCollection moc = cimobject.GetInstances(); foreach (ManagementObject mo in moc) { cpuInfo += mo.Properties["ProcessorId"].Value.ToString(); } //获取硬盘ID string HDid = ""; ManagementClass cimobjectHDid = new ManagementClass("Win32_DiskDrive"); ManagementObjectCollection mocHDid = cimobjectHDid.GetInstances(); foreach (ManagementObject mo in mocHDid) { HDid += (string)mo.Properties["Model"].Value; } //获取网卡硬件地址 string strMac = ""; ManagementClass mc = new ManagementClass("Win32_NetworkAdapterConfiguration"); ManagementObjectCollection mocMac = mc.GetInstances(); foreach (ManagementObject mo in mocMac) { if ((bool)mo["IPEnabled"] == true) strMac += mo["MacAddress"].ToString(); mo.Dispose(); } array1 = provider1.ComputeHash(Encoding.Default.GetBytes(cpuInfo + strMac)); text1 = "ENTOPYMICROSYSTEMSDEVINIMMUHENDISLIK231456789ACD23456789AEFABGHJKLMNPRSTUVWYZXAHMETALIAKKASHAKANESKICI"; text2 = string.Empty; array2 = array1; for (num2 = 0; (num2 < array2.Length); num2 = (num2 + 1)) { num1 = array2[num2]; text2 = string.Concat(text2, text1.Substring((num1 % text1.Length), 1)); } machineCode = text2.Substring(0, 10); return machineCode; } 2.根据注册码按照RC2生成注册码: //根据算法得到注册码 public static string getRegisterCode(string machineCode,string _configName) { string computeCode = ""; byte[] array1, array2, array3, array4; MemoryStream stream1 = new MemoryStream(); BinaryFormatter formatter1 = new BinaryFormatter(); formatter1.Serialize(stream1, machineCode); array1 = stream1.ToArray(); RC2CryptoServiceProvider provider11 = new RC2CryptoServiceProvider(); provider11.KeySize = 128; #region byte[] str1 = new byte[8] ; byte[] str2 = new byte[16] ; DataTable dt = Xml.GetAllDataFromXml("Config.xml"); if (dt != null && dt.Rows.Count > 0) { foreach(DataRow dr in dt.Rows) { if (dr[1].ToString() == _configName) { str1 = new byte[] { byte.Parse(dr[2].ToString()), byte.Parse(dr[3].ToString()), byte.Parse(dr[4].ToString()), byte.Parse(dr[5].ToString()), byte.Parse(dr[6].ToString()), byte.Parse(dr[7].ToString()), byte.Parse(dr[8].ToString()), byte.Parse(dr[9].ToString()) }; str2 = new byte[] { byte.Parse(dr[10].ToString()), byte.Parse(dr[11].ToString()), byte.Parse(dr[12].ToString()), byte.Parse(dr[13].ToString()), byte.Parse(dr[14].ToString()), byte.Parse(dr[15].ToString()), byte.Parse(dr[16].ToString()), byte.Parse(dr[17].ToString()), byte.Parse(dr[18].ToString()), byte.Parse(dr[19].ToString()), byte.Parse(dr[20].ToString()), byte.Parse(dr[21].ToString()), byte.Parse(dr[22].ToString()), byte.Parse(dr[23].ToString()),byte.Parse(dr[24].ToString()),byte.Parse(dr[25].ToString()) }; break; } } } #endregion array2 =str1 ; array3 = str2 ; provider11.IV = array2; provider11.Key = array2; ICryptoTransform transform1 = provider11.CreateEncryptor(); stream1 = new MemoryStream(); CryptoStream stream2 = new CryptoStream(stream1, transform1, System.Security.Cryptography.CryptoStreamMode.Write); try { stream2.Write(array1, 0, array1.Length); stream2.FlushFinalBlock(); array4 = stream1.ToArray(); } finally { stream1.Close(); stream2.Close(); } stream1 = new MemoryStream(); formatter1.Serialize(stream1, array4); computeCode = Convert.ToBase64String(stream1.ToArray()).Trim(); return computeCode; } 3.check public static bool checkRegisterCode(string machineCode, string registerCode,string configName) { string computeCode = getRegisterCode(machineCode, configName); if (computeCode == registerCode) { return true; } else return false; }
中提到了openssl speed命令的用法。其中,-evp选项用于指定使用EVP加密算法进行性能测试。具体用法如下: openssl speed -evp [算法名称] 其中,算法名称可以是以下之一: - md2 - mdc2 - md5 - hmac - sha1 - sha256 - sha512 - whirlpool - rmd160 - idea-cbc - seed-cbc - rc2-cbc - rc5-cbc - bf-cbc - des-cbc - des-ede3 - aes-128-cbc - aes-192-cbc - aes-256-cbc - aes-128-ige - aes-192-ige - aes-256-ige - camellia-128-cbc - camellia-192-cbc - camellia-256-cbc - rc4 - rsa512 - rsa1024 - rsa2048 - rsa4096 - dsa512 - dsa1024 - dsa2048 - ecdsap160 - ecdsap192 - ecdsap224 - ecdsap256 - ecdsap384 - ecdsap512 - ecdsak163 - ecdsak233 - ecdsak283 - ecdsak409 - ecdsak571 - ecdsab163 - ecdsab233 - ecdsab283 - ecdsab409 - ecdsab571 - ecdsa - ecdhp192 - ecdhp224 - ecdhp256 - ecdhp384 - ecdhp512 - ecdhk163 - ecdhk233 - ecdhk283 - ecdhk409 - ecdhk571 - ecdhb163 - ecdhb233 - ecdhb283 - ecdhb409 - ecdhb571 - ecdh - idea - seed - rc2 - des - aes - camellia - rsa - blowfish 所以,要使用openssl speed -evp命令,只需要替换为所需的加密算法即可。<span class="em">1</span><span class="em">2</span> #### 引用[.reference_title] - *1* [openssl 的VC工程for openssl-1.0.0e](https://download.youkuaiyun.com/download/hello_hi_hi/3640407)[target="_blank" data-report-click={"spm":"1018.2226.3001.9630","extra":{"utm_source":"vip_chatgpt_common_search_pc_result","utm_medium":"distribute.pc_search_result.none-task-cask-2~all~insert_cask~default-1-null.142^v92^chatsearchT0_1"}}] [.reference_item style="max-width: 50%"] - *2* [OpenSSL命令---speed](https://blog.youkuaiyun.com/as3luyuan123/article/details/16851125)[target="_blank" data-report-click={"spm":"1018.2226.3001.9630","extra":{"utm_source":"vip_chatgpt_common_search_pc_result","utm_medium":"distribute.pc_search_result.none-task-cask-2~all~insert_cask~default-1-null.142^v92^chatsearchT0_1"}}] [.reference_item style="max-width: 50%"] [ .reference_list ]
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