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I wanted to basically rearrange the alphabet with a keyword infront as I am doing a simple substitutional cipher. I have kind of worked out the logic of doing that but I am a bit stuck on the coding side.

What I wanted was something like:

Dim key = "keyword"

    For i = 0 to 26

    'insert keyword and put in A to Z after without duplicating characters

    Next


'output: keywordabcfghijlmnpqstuvxz
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Could you give us more of the 'rules' to follow? From what we have so far, you don't need a (for) loop ... Just append abcfghijlmnpqstuvxz in front of your key value.. If this is not the full approach you have in mind, please let us know more –  Nonym Nov 16 '11 at 18:18
    
@NonymIty: He does not want to repeat the characters of the keyword in the appendix. –  Olivier Jacot-Descombes Nov 16 '11 at 18:26
1  
Shouldn't this be 0 to 25? –  Escobar Ceaser Nov 16 '11 at 18:40
    
yeh the for loop was to check for unique characters. I am still very new to this language :( –  K_McCormic Nov 16 '11 at 18:55
    
Thanks for all the replies! They all work! –  K_McCormic Nov 16 '11 at 19:12

3 Answers 3

up vote 3 down vote accepted

I think looping through the key is cleaner than looping through the alphabet:

Dim key as string = "keyword"

Dim alphabet As new StringBuilder("abcdefghijklmnopqrstuvwxyz")

for each c As Char in key
    alphabet.Replace(c.ToString(), Nothing)
next

return key & alphabet.ToString()

or slightly more efficient change the replace line as follows to avoid scanning all 26 letters of the alphabet on each iteration:

    alphabet.Replace(c.ToString(), Nothing, 0, 1)
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1  
This solution gets more effective as the key get longer: key.len x ((26+key.len)/2) times. (The alphabet get shorter as it get's removed). The other solutions: 26 x key.len times. –  Gerhard Powell Nov 16 '11 at 19:08
    
thank you for the reply –  K_McCormic Nov 16 '11 at 19:11
    
@GerhardPowell I agree this one searches less, but isn't this one key.len X alphabet.len / 2 (aka key.len X 26 / 2 aka key.len X 13) not counting a shrinking alphabet. It only gets better (faster) on each pass. Can you elaborate on the +key.len you mentioned? –  tcarvin Nov 16 '11 at 19:39
1  
Sorry. Mistake in my formula. key.len x ((26 + (26-key.len))/2). So the avg of the alphabet and alphabet with all the keys removed. –  Gerhard Powell Nov 16 '11 at 20:25
1  
@GerhardPowell Go it, very nice. If you use my 2nd Replace command then that number is divided in half yet again because the alphabet scan jumps out after finding a match. So on average an alphabet scan will need only to visit 1/2 the characters. So after much reducing that is key.len x (52 - key.len) / 4. Like you said, it should get more efficient the longer the key. –  tcarvin Nov 16 '11 at 20:39
Public Function Rearrange(keyword As String) As String
    Dim cipher As New StringBuilder(26)
    cipher.Append(keyword)
    For c As Char = "a"C To "z"C
        If Not keyword.Contains(c) Then
            cipher.Append(c)
        End If
    Next
    Return cipher.ToString()
End Function
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thank you for the reply it really helped –  K_McCormic Nov 16 '11 at 19:11

Here is the solution in vb:

Public Function words(key As String) As String
    Dim ret As String
    ret = key
    key = key.ToLower()
    For c As Char = "a"c To "z"c
        If Not key.Contains(c) Then
            ret = ret + c.ToString
        End If
    Next

    Return ret
End Function

If you want to check for unique char for the key, then you can just run a for loop through the characters of the key and remove the current char if already exist. Remember to move the for loop one char back if you delete the char.

share|improve this answer
    
Thanks :) I will try remove the character if they are duplicated –  K_McCormic Nov 16 '11 at 19:14

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