導航:首頁 > 文檔加密 > 加密代碼和加密編碼

加密代碼和加密編碼

發布時間:2024-07-21 08:29:23

A. 瀵嗙爜鏄浠涔

瀵嗙爜鏄涓縐嶇敤鏉ユ販娣嗙殑鎶鏈錛屼嬌鐢ㄨ呭笇鏈涘皢姝e父鐨勶紙鍙璇嗗埆鐨勶級淇℃伅杞鍙樹負鏃犳硶璇嗗埆鐨勪俊鎮銆

鐧誨綍緗戠珯銆佺數瀛愰偖綆卞拰閾惰屽彇嬈炬椂杈撳叆鐨勨滃瘑鐮佲濆叾瀹炰弗鏍兼潵璁插簲璇ヤ粎琚縐頒綔鈥滃彛浠も濓紝鍥犱負瀹冧笉鏄鏈鏉ユ剰涔変笂鐨勨滃姞瀵嗕唬鐮佲濓紝浣嗘槸涔熷彲浠ョО涓虹樺瘑鐨勫彿鐮併傚叾涓昏侀檺瀹氫簬涓鍒浜虹悊瑙o紙濡備竴鍒欑數鏂囷級鐨勭﹀彿緋葷粺銆傚傚瘑鐮佺數鎶ャ佸瘑鐮佸紡鎵撳瓧鏈恆

瀵嗙爜鏄鎸夌壒瀹氭硶鍒欑紪鎴愶紝鐢ㄤ互瀵歸氫俊鍙屾柟鐨勪俊鎮榪涜屾槑瀵嗗彉鎹㈢殑絎﹀彿銆傛崲鑰岃█涔嬶紝瀵嗙爜鏄闅愯斀浜嗙湡瀹炲唴瀹圭殑絎﹀彿搴忓垪銆傚氨鏄鎶婄敤鍏寮鐨勩佹爣鍑嗙殑淇℃伅緙栫爜琛ㄧず鐨勪俊鎮閫氳繃涓縐嶅彉鎹㈡墜孌碉紝灝嗗叾鍙樹負闄ら氫俊鍙屾柟浠ュ栧叾浠栦漢鎵涓嶈兘璇繪噦鐨勪俊鎮緙栫爜錛岃繖縐嶇嫭鐗圭殑淇℃伅緙栫爜灝辨槸瀵嗙爜銆

瀵嗙爜鐨勫姞瀵嗘柟娉曚粙緇

RSA綆楁硶鏄絎涓涓鑳藉悓鏃剁敤浜庡姞瀵嗗拰鏁板瓧絳懼悕鐨勭畻娉曪紝涔熸槗浜庣悊瑙e拰鎿嶄綔銆俁SA綆楁硶鏄涓縐嶉潪瀵圭О瀵嗙爜綆楁硶錛屾墍璋撻潪瀵圭О錛屽氨鏄鎸囪ョ畻娉曢渶瑕佷竴瀵瑰瘑閽ワ紝浣跨敤鍏朵腑涓涓鍔犲瘑錛屽垯闇瑕佺敤鍙︿竴涓鎵嶈兘瑙e瘑銆

ECC綆楁硶涔熸槸涓涓鑳藉悓鏃剁敤浜庡姞瀵嗗拰鏁板瓧絳懼悕鐨勭畻娉曪紝涔熸槗浜庣悊瑙e拰鎿嶄綔銆傚悓RSA綆楁硶鏄涓鏍鋒槸闈炲圭О瀵嗙爜綆楁硶浣跨敤鍏朵腑涓涓鍔犲瘑錛岀敤鍙︿竴涓鎵嶈兘瑙e瘑銆

鍥涙柟瀵嗙爜鐢4涓5脳5鐨勭煩闃墊潵鍔犲瘑銆傛瘡涓鐭╅樀閮芥湁25涓瀛楁瘝錛堥氬父浼氬彇娑圦鎴栧皢I錛孞瑙嗕綔鍚屼竴鏍鳳紝鎴栨敼榪涗負6脳6鐨勭煩闃碉紝鍔犲叆10涓鏁板瓧錛夈

B. java的md5的加密演算法代碼

import java.lang.reflect.*;

/*******************************************************************************
* keyBean 類實現了RSA Data Security, Inc.在提交給IETF 的RFC1321中的keyBean message-digest
* 演算法。
******************************************************************************/
public class keyBean {
/*
* 下面這些S11-S44實際上是一個4*4的矩陣,在原始的C實現中是用#define 實現的, 這里把它們實現成為static
* final是表示了只讀,切能在同一個進程空間內的多個 Instance間共享
*/
static final int S11 = 7;

static final int S12 = 12;

static final int S13 = 17;

static final int S14 = 22;

static final int S21 = 5;

static final int S22 = 9;

static final int S23 = 14;

static final int S24 = 20;

static final int S31 = 4;

static final int S32 = 11;

static final int S33 = 16;

static final int S34 = 23;

static final int S41 = 6;

static final int S42 = 10;

static final int S43 = 15;

static final int S44 = 21;

static final byte[] PADDING = { -128, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0, 0,
0, 0, 0, 0, 0, 0, 0 };

/*
* 下面的三個成員是keyBean計算過程中用到的3個核心數據,在原始的C實現中 被定義到keyBean_CTX結構中
*/
private long[] state = new long[4]; // state (ABCD)

private long[] count = new long[2]; // number of bits, molo 2^64 (lsb

// first)

private byte[] buffer = new byte[64]; // input buffer

/*
* digestHexStr是keyBean的唯一一個公共成員,是最新一次計算結果的 16進制ASCII表示.
*/

public String digestHexStr;

/*
* digest,是最新一次計算結果的2進制內部表示,表示128bit的keyBean值.
*/
private byte[] digest = new byte[16];

/*
* getkeyBeanofStr是類keyBean最主要的公共方法,入口參數是你想要進行keyBean變換的字元串
* 返回的是變換完的結果,這個結果是從公共成員digestHexStr取得的.
*/
public String getkeyBeanofStr(String inbuf) {
keyBeanInit();
keyBeanUpdate(inbuf.getBytes(), inbuf.length());
keyBeanFinal();
digestHexStr = "";
for (int i = 0; i < 16; i++) {
digestHexStr += byteHEX(digest[i]);
}
return digestHexStr;
}

// 這是keyBean這個類的標准構造函數,JavaBean要求有一個public的並且沒有參數的構造函數
public keyBean() {
keyBeanInit();
return;
}

/* keyBeanInit是一個初始化函數,初始化核心變數,裝入標準的幻數 */
private void keyBeanInit() {
count[0] = 0L;
count[1] = 0L;
// /* Load magic initialization constants.
state[0] = 0x67452301L;
state[1] = 0xefcdab89L;
state[2] = 0x98badcfeL;
state[3] = 0x10325476L;
return;
}

/*
* F, G, H ,I 是4個基本的keyBean函數,在原始的keyBean的C實現中,由於它們是
* 簡單的位運算,可能出於效率的考慮把它們實現成了宏,在java中,我們把它們 實現成了private方法,名字保持了原來C中的。
*/
private long F(long x, long y, long z) {
return (x & y) | ((~x) & z);
}

private long G(long x, long y, long z) {
return (x & z) | (y & (~z));
}

private long H(long x, long y, long z) {
return x ^ y ^ z;
}

private long I(long x, long y, long z) {
return y ^ (x | (~z));
}

/*
* FF,GG,HH和II將調用F,G,H,I進行近一步變換 FF, GG, HH, and II transformations for
* rounds 1, 2, 3, and 4. Rotation is separate from addition to prevent
* recomputation.
*/
private long FF(long a, long b, long c, long d, long x, long s, long ac) {
a += F(b, c, d) + x + ac;
a = ((int) a << s) | ((int) a >>> (32 - s));
a += b;
return a;
}

private long GG(long a, long b, long c, long d, long x, long s, long ac) {
a += G(b, c, d) + x + ac;
a = ((int) a << s) | ((int) a >>> (32 - s));
a += b;
return a;
}

private long HH(long a, long b, long c, long d, long x, long s, long ac) {
a += H(b, c, d) + x + ac;
a = ((int) a << s) | ((int) a >>> (32 - s));
a += b;
return a;
}

private long II(long a, long b, long c, long d, long x, long s, long ac) {
a += I(b, c, d) + x + ac;
a = ((int) a << s) | ((int) a >>> (32 - s));
a += b;
return a;
}

/*
* keyBeanUpdate是keyBean的主計算過程,inbuf是要變換的位元組串,inputlen是長度,這個
* 函數由getkeyBeanofStr調用,調用之前需要調用keyBeaninit,因此把它設計成private的
*/
private void keyBeanUpdate(byte[] inbuf, int inputLen) {
int i, index, partLen;
byte[] block = new byte[64];
index = (int) (count[0] >>> 3) & 0x3F;
// /* Update number of bits */
if ((count[0] += (inputLen << 3)) < (inputLen << 3))
count[1]++;
count[1] += (inputLen >>> 29);
partLen = 64 - index;
// Transform as many times as possible.
if (inputLen >= partLen) {
keyBeanMemcpy(buffer, inbuf, index, 0, partLen);
keyBeanTransform(buffer);
for (i = partLen; i + 63 < inputLen; i += 64) {
keyBeanMemcpy(block, inbuf, 0, i, 64);
keyBeanTransform(block);
}
index = 0;
} else
i = 0;
// /* Buffer remaining input */
keyBeanMemcpy(buffer, inbuf, index, i, inputLen - i);
}

/*
* keyBeanFinal整理和填寫輸出結果
*/
private void keyBeanFinal() {
byte[] bits = new byte[8];
int index, padLen;
// /* Save number of bits */
Encode(bits, count, 8);
// /* Pad out to 56 mod 64.
index = (int) (count[0] >>> 3) & 0x3f;
padLen = (index < 56) ? (56 - index) : (120 - index);
keyBeanUpdate(PADDING, padLen);
// /* Append length (before padding) */
keyBeanUpdate(bits, 8);
// /* Store state in digest */
Encode(digest, state, 16);
}

/*
* keyBeanMemcpy是一個內部使用的byte數組的塊拷貝函數,從input的inpos開始把len長度的
* 位元組拷貝到output的outpos位置開始
*/
private void keyBeanMemcpy(byte[] output, byte[] input, int outpos,
int inpos, int len) {
int i;
for (i = 0; i < len; i++)
output[outpos + i] = input[inpos + i];
}

/*
* keyBeanTransform是keyBean核心變換程序,有keyBeanUpdate調用,block是分塊的原始位元組
*/
private void keyBeanTransform(byte block[]) {
long a = state[0], b = state[1], c = state[2], d = state[3];
long[] x = new long[16];
Decode(x, block, 64);
/* Round 1 */
a = FF(a, b, c, d, x[0], S11, 0xd76aa478L); /* 1 */
d = FF(d, a, b, c, x[1], S12, 0xe8c7b756L); /* 2 */
c = FF(c, d, a, b, x[2], S13, 0x242070dbL); /* 3 */
b = FF(b, c, d, a, x[3], S14, 0xc1bdceeeL); /* 4 */
a = FF(a, b, c, d, x[4], S11, 0xf57c0fafL); /* 5 */
d = FF(d, a, b, c, x[5], S12, 0x4787c62aL); /* 6 */
c = FF(c, d, a, b, x[6], S13, 0xa8304613L); /* 7 */
b = FF(b, c, d, a, x[7], S14, 0xfd469501L); /* 8 */
a = FF(a, b, c, d, x[8], S11, 0x698098d8L); /* 9 */
d = FF(d, a, b, c, x[9], S12, 0x8b44f7afL); /* 10 */
c = FF(c, d, a, b, x[10], S13, 0xffff5bb1L); /* 11 */
b = FF(b, c, d, a, x[11], S14, 0x895cd7beL); /* 12 */
a = FF(a, b, c, d, x[12], S11, 0x6b901122L); /* 13 */
d = FF(d, a, b, c, x[13], S12, 0xfd987193L); /* 14 */
c = FF(c, d, a, b, x[14], S13, 0xa679438eL); /* 15 */
b = FF(b, c, d, a, x[15], S14, 0x49b40821L); /* 16 */
/* Round 2 */
a = GG(a, b, c, d, x[1], S21, 0xf61e2562L); /* 17 */
d = GG(d, a, b, c, x[6], S22, 0xc040b340L); /* 18 */
c = GG(c, d, a, b, x[11], S23, 0x265e5a51L); /* 19 */
b = GG(b, c, d, a, x[0], S24, 0xe9b6c7aaL); /* 20 */
a = GG(a, b, c, d, x[5], S21, 0xd62f105dL); /* 21 */
d = GG(d, a, b, c, x[10], S22, 0x2441453L); /* 22 */
c = GG(c, d, a, b, x[15], S23, 0xd8a1e681L); /* 23 */
b = GG(b, c, d, a, x[4], S24, 0xe7d3fbc8L); /* 24 */
a = GG(a, b, c, d, x[9], S21, 0x21e1cde6L); /* 25 */
d = GG(d, a, b, c, x[14], S22, 0xc33707d6L); /* 26 */
c = GG(c, d, a, b, x[3], S23, 0xf4d50d87L); /* 27 */
b = GG(b, c, d, a, x[8], S24, 0x455a14edL); /* 28 */
a = GG(a, b, c, d, x[13], S21, 0xa9e3e905L); /* 29 */
d = GG(d, a, b, c, x[2], S22, 0xfcefa3f8L); /* 30 */
c = GG(c, d, a, b, x[7], S23, 0x676f02d9L); /* 31 */
b = GG(b, c, d, a, x[12], S24, 0x8d2a4c8aL); /* 32 */
/* Round 3 */
a = HH(a, b, c, d, x[5], S31, 0xfffa3942L); /* 33 */
d = HH(d, a, b, c, x[8], S32, 0x8771f681L); /* 34 */
c = HH(c, d, a, b, x[11], S33, 0x6d9d6122L); /* 35 */
b = HH(b, c, d, a, x[14], S34, 0xfde5380cL); /* 36 */
a = HH(a, b, c, d, x[1], S31, 0xa4beea44L); /* 37 */
d = HH(d, a, b, c, x[4], S32, 0x4bdecfa9L); /* 38 */
c = HH(c, d, a, b, x[7], S33, 0xf6bb4b60L); /* 39 */
b = HH(b, c, d, a, x[10], S34, 0xbebfbc70L); /* 40 */
a = HH(a, b, c, d, x[13], S31, 0x289b7ec6L); /* 41 */
d = HH(d, a, b, c, x[0], S32, 0xeaa127faL); /* 42 */
c = HH(c, d, a, b, x[3], S33, 0xd4ef3085L); /* 43 */
b = HH(b, c, d, a, x[6], S34, 0x4881d05L); /* 44 */
a = HH(a, b, c, d, x[9], S31, 0xd9d4d039L); /* 45 */
d = HH(d, a, b, c, x[12], S32, 0xe6db99e5L); /* 46 */
c = HH(c, d, a, b, x[15], S33, 0x1fa27cf8L); /* 47 */
b = HH(b, c, d, a, x[2], S34, 0xc4ac5665L); /* 48 */
/* Round 4 */
a = II(a, b, c, d, x[0], S41, 0xf4292244L); /* 49 */
d = II(d, a, b, c, x[7], S42, 0x432aff97L); /* 50 */
c = II(c, d, a, b, x[14], S43, 0xab9423a7L); /* 51 */
b = II(b, c, d, a, x[5], S44, 0xfc93a039L); /* 52 */
a = II(a, b, c, d, x[12], S41, 0x655b59c3L); /* 53 */
d = II(d, a, b, c, x[3], S42, 0x8f0ccc92L); /* 54 */
c = II(c, d, a, b, x[10], S43, 0xffeff47dL); /* 55 */
b = II(b, c, d, a, x[1], S44, 0x85845dd1L); /* 56 */
a = II(a, b, c, d, x[8], S41, 0x6fa87e4fL); /* 57 */
d = II(d, a, b, c, x[15], S42, 0xfe2ce6e0L); /* 58 */
c = II(c, d, a, b, x[6], S43, 0xa3014314L); /* 59 */
b = II(b, c, d, a, x[13], S44, 0x4e0811a1L); /* 60 */
a = II(a, b, c, d, x[4], S41, 0xf7537e82L); /* 61 */
d = II(d, a, b, c, x[11], S42, 0xbd3af235L); /* 62 */
c = II(c, d, a, b, x[2], S43, 0x2ad7d2bbL); /* 63 */
b = II(b, c, d, a, x[9], S44, 0xeb86d391L); /* 64 */
state[0] += a;
state[1] += b;
state[2] += c;
state[3] += d;
}

/*
* Encode把long數組按順序拆成byte數組,因為java的long類型是64bit的, 只拆低32bit,以適應原始C實現的用途
*/
private void Encode(byte[] output, long[] input, int len) {
int i, j;
for (i = 0, j = 0; j < len; i++, j += 4) {
output[j] = (byte) (input[i] & 0xffL);
output[j + 1] = (byte) ((input[i] >>> 8) & 0xffL);
output[j + 2] = (byte) ((input[i] >>> 16) & 0xffL);
output[j + 3] = (byte) ((input[i] >>> 24) & 0xffL);
}
}

/*
* Decode把byte數組按順序合成成long數組,因為java的long類型是64bit的,
* 只合成低32bit,高32bit清零,以適應原始C實現的用途
*/
private void Decode(long[] output, byte[] input, int len) {
int i, j;

for (i = 0, j = 0; j < len; i++, j += 4)
output[i] = b2iu(input[j]) | (b2iu(input[j + 1]) << 8)
| (b2iu(input[j + 2]) << 16) | (b2iu(input[j + 3]) << 24);
return;
}

/*
* b2iu是我寫的一個把byte按照不考慮正負號的原則的」升位」程序,因為java沒有unsigned運算
*/
public static long b2iu(byte b) {
return b < 0 ? b & 0x7F + 128 : b;
}

/*
* byteHEX(),用來把一個byte類型的數轉換成十六進制的ASCII表示,
* 因為java中的byte的toString無法實現這一點,我們又沒有C語言中的 sprintf(outbuf,"%02X",ib)
*/
public static String byteHEX(byte ib) {
char[] Digit = { '0', '1', '2', '3', '4', '5', '6', '7', '8', '9', 'A',
'B', 'C', 'D', 'E', 'F' };
char[] ob = new char[2];
ob[0] = Digit[(ib >>> 4) & 0X0F];
ob[1] = Digit[ib & 0X0F];
String s = new String(ob);
return s;
}

public static void main(String args[]) {

keyBean m = new keyBean();
if (Array.getLength(args) == 0) { // 如果沒有參數,執行標準的Test Suite
System.out.println("keyBean Test suite:");
System.out.println("keyBean(\"):" + m.getkeyBeanofStr(""));
System.out.println("keyBean(\"a\"):" + m.getkeyBeanofStr("a"));
System.out.println("keyBean(\"abc\"):" + m.getkeyBeanofStr("abc"));
System.out.println("keyBean(\"message digest\"):"
+ m.getkeyBeanofStr("message digest"));
System.out.println("keyBean(\"abcdefghijklmnopqrstuvwxyz\"):"
+ m.getkeyBeanofStr("abcdefghijklmnopqrstuvwxyz"));
System.out
.println("keyBean(\"\"):"
+ m
.getkeyBeanofStr(""));
} else
System.out.println("keyBean(" + args[0] + ")="
+ m.getkeyBeanofStr(args[0]));

}
}

C. 關於nodejs 怎麼實現 crypto des加密

就是加密和解密使用同一個密鑰,通常稱之為「Session Key 」這種加密技術在當今被廣泛採用,如美國政府所採用的DES加密標准就是一種典型的「對稱式」加密法,它的Session Key長度為56bits。
非對稱式加密:
就是加密和解密所使用的不是同一個密鑰,通常有兩個密鑰,稱為「公鑰」和「私鑰」,它們兩個必需配對使用,否則不能打開加密文件。
加密為系統中經常使用的功能,node自帶強大的加密功能Crypto,下面通過簡單的例子進行練習。
1、加密模塊的引用:
var crypto=require('crypto');
var $=require('underscore');var DEFAULTS = {
encoding: {
input: 'utf8',
output: 'hex'
},
algorithms: ['bf', 'blowfish', 'aes-128-cbc']
};

默認加密演算法配置項:
輸入數據格式為utf8,輸出格式為hex,
演算法使用bf,blowfish,aes-128-abc三種加密演算法;
2、配置項初始化:
function MixCrypto(options) {
if (typeof options == 'string')
options = { key: options };

options = $.extend({}, DEFAULTS, options);
this.key = options.key;
this.inputEncoding = options.encoding.input;
this.outputEncoding = options.encoding.output;
this.algorithms = options.algorithms;
}

加密演算法可以進行配置,通過配置option進行不同加密演算法及編碼的使用。
3、加密方法代碼如下:
MixCrypto.prototype.encrypt = function (plaintext) {
return $.rece(this.algorithms, function (memo, a) {
var cipher = crypto.createCipher(a, this.key);
return cipher.update(memo, this.inputEncoding, this.outputEncoding)
+ cipher.final(this.outputEncoding)
}, plaintext, this);
};

使用crypto進行數據的加密處理。
4、解密方法代碼如下:
MixCrypto.prototype.decrypt = function (crypted) {
try {
return $.receRight(this.algorithms, function (memo, a) {
var decipher = crypto.createDecipher(a, this.key);
return decipher.update(memo, this.outputEncoding, this.inputEncoding)
+ decipher.final(this.inputEncoding);
}, crypted, this);
} catch (e) {
return;
}
};

D. 求php aes加密代碼,編碼是UTF-8


$key=pack('H*',"");

//顯示AES-128,192,256對應的密鑰長度:
//16,24,32位元組。
$key_size=strlen($key);
echo"Keysize:".$key_size." ";

$plaintext="ThisstringwasAES-256/CBC/ZeroBytePaddingencrypted.";


$iv_size=mcrypt_get_iv_size(MCRYPT_RIJNDAEL_128,MCRYPT_MODE_CBC);
$iv=mcrypt_create_iv($iv_size,MCRYPT_RAND);$ciphertext=mcrypt_encrypt(MCRYPT_RIJNDAEL_128,$key,
$plaintext,MCRYPT_MODE_CBC,$iv);

E. 求java加密源代碼(MD5,base64)

加密什麼加密字元串嗎,我這里有md5的演算法
public final static String MD5(String pwd) {
char hexDigits[] = { '0', '1', '2', '3', '4', '5', '6', '7', '8', '9',
'A', 'B', 'C', 'D', 'E', 'F' };
try {
byte[] strTemp = pwd.getBytes();
MessageDigest mdTemp = MessageDigest.getInstance("MD5");
mdTemp.update(strTemp);
byte[] md = mdTemp.digest();
int j = md.length;
char str[] = new char[j * 2];
int k = 0;
for (int i = 0; i < j; i++) {
byte byte0 = md[i];
str[k++] = hexDigits[byte0 >>> 4 & 0xf];
str[k++] = hexDigits[byte0 & 0xf];
}
return new String(str);
} catch (Exception e) {
return null;
}
}

閱讀全文

與加密代碼和加密編碼相關的資料

熱點內容
怎麼申請郵箱的伺服器 瀏覽:13
c項目兩個工程怎麼編譯 瀏覽:645
知乎app有什麼作用 瀏覽:451
單片機帶的比較器 瀏覽:391
程序員都是精英 瀏覽:19
10種編程語言 瀏覽:749
綿陽學駕駛手機上下什麼app 瀏覽:129
python如何模擬網頁操作 瀏覽:40
單片機多文件編譯方法 瀏覽:839
不動產壓縮時間 瀏覽:571
租房管理平台源碼 瀏覽:65
復樂園pdf 瀏覽:457
程序員找到公交車 瀏覽:698
嬰兒寶寶操有什麼APP推薦 瀏覽:73
如何將資料庫附加到伺服器上 瀏覽:391
php退出循環 瀏覽:479
夢幻西遊怎麼修改伺服器人數上限 瀏覽:332
自動開啟命令 瀏覽:847
查詢雲伺服器訪問的ip 瀏覽:838
智能app的弱點是什麼 瀏覽:412