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一个利用随机数加密字串的算法

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发表于 2007-5-27 17:15:05 | 显示全部楼层 |阅读模式
一个利用随机数加密字串的算法
       首先这个算法没什么特殊之处,只是怕以后找不到,所以放到了这上面
       每个字节加密后有6种结果(占两个字节,如果需要大于6种的话,就要多用1个字节,即占3 个字节),也就是说如果字串占n个字节的话,可能产生的结果为6的n次方个,这个算法破解的强度不大,大家可以完善一下:
´窗体上一个按钮,两个listbox
Option Explicit
Private Sub Command1_Click()
    Dim i As Long
    Dim s As String
    For i = 1 To 100
        s = encode("这是一个测试 hello world")
        List1.AddItem s
        s = decode(s)
        List2.AddItem s
    Next
End Sub
Private Function encode(ByVal s As String) As String ´加密
    If Len(s) = 0 Then Exit Function
    Dim buff() As Byte
    buff = StrConv(s, vbFromUnicode)
    Dim i As Long
    Dim j As Byte
    Dim k As Byte, m As Byte
    Dim mstr As String
    mstr = "ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789abcdefghijklmnopqrstuvwxyz"
    Dim outs As String
    i = UBound(buff) + 1
    outs = Space(2 * i)
    Dim temps As String
    For i = 0 To UBound(buff)
        Randomize Time
        j = CByte(5 * (Math.Rnd()) + 0) ´最大产生的随机数只能是5,不能再大了,再大的话,就要多用一个字节
        buff(i) = buff(i) Xor j
        k = buff(i) Mod Len(mstr)
        m = buff(i) \ Len(mstr)
        m = m * 2 ^ 3 + j
        temps = Mid(mstr, k + 1, 1) + Mid(mstr, m + 1, 1)
        Mid(outs, 2 * i + 1, 2) = temps
     Next
     encode = outs
End Function
Private Function decode(ByVal s As String) As String ´解密
    On Error GoTo myERR
    Dim i As Long
    Dim j As Byte
    Dim k As Byte
    Dim m As Byte
    Dim mstr As String
    mstr = "ABCDEFGHIJKLMNOPQRSTUVWXYZ0123456789abcdefghijklmnopqrstuvwxyz"
    Dim t1 As String, t2 As String
    Dim buff() As Byte
    Dim n As Long
    n = 0
    For i = 1 To Len(s) Step 2
        t1 = Mid(s, i, 1)
        t2 = Mid(s, i + 1, 1)
        k = InStr(1, mstr, t1) - 1
        m = InStr(1, mstr, t2) - 1
        j = m \ 2 ^ 3
        m = m - j * 2 ^ 3
        ReDim Preserve buff(n)
        buff(n) = j * Len(mstr) + k
        buff(n) = buff(n) Xor m
        n = n + 1
     Next
     decode = StrConv(buff, vbUnicode)
     Exit Function
myERR:
     decode = ""
End Function
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