我有一个从1到...的数据库ID,我需要加密这个号码以用于追踪号码 如何通过加密数据库ID并解密来生成数字字符串? 追求号码必须尽可能短。
答案 0 :(得分:2)
您需要这种加密有多安全?使用另一个int的简单XOR可能就是您所需要的,但您可能必须小心使用符号位。
或者,如果您想要更安全的东西,只需实现一个简单的32位Feistel密码。这是我之前准备的一个:
/**
* IntegerPerm is a reversible keyed permutation of the integers.
* This class is not cryptographically secure as the F function
* is too simple and there are not enough rounds.
*
* @author Martin Ross
*/
public final class IntegerPerm {
//////////////////
// Private Data //
//////////////////
/** Non-zero default key, from www.random.org */
private final static int DEFAULT_KEY = 0x6CFB18E2;
private final static int LOW_16_MASK = 0xFFFF;
private final static int HALF_SHIFT = 16;
private final static int NUM_ROUNDS = 4;
/** Permutation key */
private int mKey;
/** Round key schedule */
private int[] mRoundKeys = new int[NUM_ROUNDS];
//////////////////
// Constructors //
//////////////////
public IntegerPerm() { this(DEFAULT_KEY); }
public IntegerPerm(int key) { setKey(key); }
////////////////////
// Public Methods //
////////////////////
/** Sets a new value for the key and key schedule. */
public void setKey(int newKey) {
assert (NUM_ROUNDS == 4) : "NUM_ROUNDS is not 4";
mKey = newKey;
mRoundKeys[0] = mKey & LOW_16_MASK;
mRoundKeys[1] = ~(mKey & LOW_16_MASK);
mRoundKeys[2] = mKey >>> HALF_SHIFT;
mRoundKeys[3] = ~(mKey >>> HALF_SHIFT);
} // end setKey()
/** Returns the current value of the key. */
public int getKey() { return mKey; }
/**
* Calculates the enciphered (i.e. permuted) value of the given integer
* under the current key.
*
* @param plain the integer to encipher.
*
* @return the enciphered (permuted) value.
*/
public int encipher(int plain) {
// 1 Split into two halves.
int rhs = plain & LOW_16_MASK;
int lhs = plain >>> HALF_SHIFT;
// 2 Do NUM_ROUNDS simple Feistel rounds.
for (int i = 0; i < NUM_ROUNDS; ++i) {
if (i > 0) {
// Swap lhs <-> rhs
final int temp = lhs;
lhs = rhs;
rhs = temp;
} // end if
// Apply Feistel round function F().
rhs ^= F(lhs, i);
} // end for
// 3 Recombine the two halves and return.
return (lhs << HALF_SHIFT) + (rhs & LOW_16_MASK);
} // end encipher()
/**
* Calculates the deciphered (i.e. inverse permuted) value of the given
* integer under the current key.
*
* @param cypher the integer to decipher.
*
* @return the deciphered (inverse permuted) value.
*/
public int decipher(int cypher) {
// 1 Split into two halves.
int rhs = cypher & LOW_16_MASK;
int lhs = cypher >>> HALF_SHIFT;
// 2 Do NUM_ROUNDS simple Feistel rounds.
for (int i = 0; i < NUM_ROUNDS; ++i) {
if (i > 0) {
// Swap lhs <-> rhs
final int temp = lhs;
lhs = rhs;
rhs = temp;
} // end if
// Apply Feistel round function F().
rhs ^= F(lhs, NUM_ROUNDS - 1 - i);
} // end for
// 4 Recombine the two halves and return.
return (lhs << HALF_SHIFT) + (rhs & LOW_16_MASK);
} // end decipher()
/////////////////////
// Private Methods //
/////////////////////
// The F function for the Feistel rounds.
private int F(int num, int round) {
// XOR with round key.
num ^= mRoundKeys[round];
// Square, then XOR the high and low parts.
num *= num;
return (num >>> HALF_SHIFT) ^ (num & LOW_16_MASK);
} // end F()
} // end class IntegerPerm
答案 1 :(得分:1)
如何转换整数(DEC) - &gt;八进制?
好吧,1-7不会以这种方式“加密”。答案 2 :(得分:0)
您可以获得一个不错的加密安全随机数生成器,向数据库添加一个表,将ID与其加密版本相关联,然后进行设置。
只需为每个ID生成一个随机数,确保它尚未被用作其他ID的加密版本,并且瞧。
这会阻止任何试图破解你使用的方案的人,因为你实际上没有使用它。