Optimal Alphabet Stepping












26














Given an input string consisting of only letters, return the step-size that results in the minimum amount of steps that are needed to visit all the letters in order over a wrapping alphabet, starting at any letter.



For example, take the word, dog. If we use a step-size of 1, we end up with:



defghijklmnopqrstuvwxyzabcdefg   Alphabet
^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
defghijklmnopqrstuvwxyzabcdefg Visited letters
d o g Needed letters


For a total of 30 steps.



However, if we use a step-size of 11, we get:



defghijklmnopqrstuvwxyzabcdefghijklmnopqrstuvwxyzabcdefg
^ ^ ^ ^ ^ ^
d o z k v g Visited letters
d o g Needed letters


For a total of 6 steps. This is the minimum amount of steps, so the return result for dog is the step-size; 11.



Test cases:



"dog"      -> 11
"age" -> 6
"apple" -> 19
"alphabet" -> 9
"aaaaaaa" -> 0 for 0 indexed, 26 for 1 indexed
"abcdefga" -> 1 or 9
"aba" -> Any odd number except for 13
"ppcg" -> 15
"codegolf" -> 15
"testcase" -> 9
"z" -> Any number
"joking" -> 19


Rules




  • Input will be a non-empty string or array of characters consisting only of the letters a to z (you can choose between uppercase or lowercase)

  • Output can be 0 indexed (i.e. the range 0-25) or 1 indexed (1-26)

  • If there's a tie, you can output any step-size or all of them

  • This is code-golf, so the lowest amount of bytes for each language wins!










share|improve this question
























  • Do we need to handle empty input?
    – pizzapants184
    Dec 12 '18 at 4:32






  • 1




    @pizzapants184 No. I've updated the question to specify the input will be non-empty
    – Jo King
    Dec 12 '18 at 4:33












  • Can we take input as an array of characters?
    – Shaggy
    Dec 12 '18 at 6:54










  • @Shaggy Sure you can
    – Jo King
    Dec 12 '18 at 7:58










  • Is there a reason this uses letters instead of numbers?
    – Wît Wisarhd
    Dec 12 '18 at 13:54
















26














Given an input string consisting of only letters, return the step-size that results in the minimum amount of steps that are needed to visit all the letters in order over a wrapping alphabet, starting at any letter.



For example, take the word, dog. If we use a step-size of 1, we end up with:



defghijklmnopqrstuvwxyzabcdefg   Alphabet
^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
defghijklmnopqrstuvwxyzabcdefg Visited letters
d o g Needed letters


For a total of 30 steps.



However, if we use a step-size of 11, we get:



defghijklmnopqrstuvwxyzabcdefghijklmnopqrstuvwxyzabcdefg
^ ^ ^ ^ ^ ^
d o z k v g Visited letters
d o g Needed letters


For a total of 6 steps. This is the minimum amount of steps, so the return result for dog is the step-size; 11.



Test cases:



"dog"      -> 11
"age" -> 6
"apple" -> 19
"alphabet" -> 9
"aaaaaaa" -> 0 for 0 indexed, 26 for 1 indexed
"abcdefga" -> 1 or 9
"aba" -> Any odd number except for 13
"ppcg" -> 15
"codegolf" -> 15
"testcase" -> 9
"z" -> Any number
"joking" -> 19


Rules




  • Input will be a non-empty string or array of characters consisting only of the letters a to z (you can choose between uppercase or lowercase)

  • Output can be 0 indexed (i.e. the range 0-25) or 1 indexed (1-26)

  • If there's a tie, you can output any step-size or all of them

  • This is code-golf, so the lowest amount of bytes for each language wins!










share|improve this question
























  • Do we need to handle empty input?
    – pizzapants184
    Dec 12 '18 at 4:32






  • 1




    @pizzapants184 No. I've updated the question to specify the input will be non-empty
    – Jo King
    Dec 12 '18 at 4:33












  • Can we take input as an array of characters?
    – Shaggy
    Dec 12 '18 at 6:54










  • @Shaggy Sure you can
    – Jo King
    Dec 12 '18 at 7:58










  • Is there a reason this uses letters instead of numbers?
    – Wît Wisarhd
    Dec 12 '18 at 13:54














26












26








26


2





Given an input string consisting of only letters, return the step-size that results in the minimum amount of steps that are needed to visit all the letters in order over a wrapping alphabet, starting at any letter.



For example, take the word, dog. If we use a step-size of 1, we end up with:



defghijklmnopqrstuvwxyzabcdefg   Alphabet
^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
defghijklmnopqrstuvwxyzabcdefg Visited letters
d o g Needed letters


For a total of 30 steps.



However, if we use a step-size of 11, we get:



defghijklmnopqrstuvwxyzabcdefghijklmnopqrstuvwxyzabcdefg
^ ^ ^ ^ ^ ^
d o z k v g Visited letters
d o g Needed letters


For a total of 6 steps. This is the minimum amount of steps, so the return result for dog is the step-size; 11.



Test cases:



"dog"      -> 11
"age" -> 6
"apple" -> 19
"alphabet" -> 9
"aaaaaaa" -> 0 for 0 indexed, 26 for 1 indexed
"abcdefga" -> 1 or 9
"aba" -> Any odd number except for 13
"ppcg" -> 15
"codegolf" -> 15
"testcase" -> 9
"z" -> Any number
"joking" -> 19


Rules




  • Input will be a non-empty string or array of characters consisting only of the letters a to z (you can choose between uppercase or lowercase)

  • Output can be 0 indexed (i.e. the range 0-25) or 1 indexed (1-26)

  • If there's a tie, you can output any step-size or all of them

  • This is code-golf, so the lowest amount of bytes for each language wins!










share|improve this question















Given an input string consisting of only letters, return the step-size that results in the minimum amount of steps that are needed to visit all the letters in order over a wrapping alphabet, starting at any letter.



For example, take the word, dog. If we use a step-size of 1, we end up with:



defghijklmnopqrstuvwxyzabcdefg   Alphabet
^^^^^^^^^^^^^^^^^^^^^^^^^^^^^^
defghijklmnopqrstuvwxyzabcdefg Visited letters
d o g Needed letters


For a total of 30 steps.



However, if we use a step-size of 11, we get:



defghijklmnopqrstuvwxyzabcdefghijklmnopqrstuvwxyzabcdefg
^ ^ ^ ^ ^ ^
d o z k v g Visited letters
d o g Needed letters


For a total of 6 steps. This is the minimum amount of steps, so the return result for dog is the step-size; 11.



Test cases:



"dog"      -> 11
"age" -> 6
"apple" -> 19
"alphabet" -> 9
"aaaaaaa" -> 0 for 0 indexed, 26 for 1 indexed
"abcdefga" -> 1 or 9
"aba" -> Any odd number except for 13
"ppcg" -> 15
"codegolf" -> 15
"testcase" -> 9
"z" -> Any number
"joking" -> 19


Rules




  • Input will be a non-empty string or array of characters consisting only of the letters a to z (you can choose between uppercase or lowercase)

  • Output can be 0 indexed (i.e. the range 0-25) or 1 indexed (1-26)

  • If there's a tie, you can output any step-size or all of them

  • This is code-golf, so the lowest amount of bytes for each language wins!







code-golf alphabet






share|improve this question















share|improve this question













share|improve this question




share|improve this question








edited Dec 12 '18 at 7:59







Jo King

















asked Dec 12 '18 at 3:14









Jo KingJo King

21k248110




21k248110












  • Do we need to handle empty input?
    – pizzapants184
    Dec 12 '18 at 4:32






  • 1




    @pizzapants184 No. I've updated the question to specify the input will be non-empty
    – Jo King
    Dec 12 '18 at 4:33












  • Can we take input as an array of characters?
    – Shaggy
    Dec 12 '18 at 6:54










  • @Shaggy Sure you can
    – Jo King
    Dec 12 '18 at 7:58










  • Is there a reason this uses letters instead of numbers?
    – Wît Wisarhd
    Dec 12 '18 at 13:54


















  • Do we need to handle empty input?
    – pizzapants184
    Dec 12 '18 at 4:32






  • 1




    @pizzapants184 No. I've updated the question to specify the input will be non-empty
    – Jo King
    Dec 12 '18 at 4:33












  • Can we take input as an array of characters?
    – Shaggy
    Dec 12 '18 at 6:54










  • @Shaggy Sure you can
    – Jo King
    Dec 12 '18 at 7:58










  • Is there a reason this uses letters instead of numbers?
    – Wît Wisarhd
    Dec 12 '18 at 13:54
















Do we need to handle empty input?
– pizzapants184
Dec 12 '18 at 4:32




Do we need to handle empty input?
– pizzapants184
Dec 12 '18 at 4:32




1




1




@pizzapants184 No. I've updated the question to specify the input will be non-empty
– Jo King
Dec 12 '18 at 4:33






@pizzapants184 No. I've updated the question to specify the input will be non-empty
– Jo King
Dec 12 '18 at 4:33














Can we take input as an array of characters?
– Shaggy
Dec 12 '18 at 6:54




Can we take input as an array of characters?
– Shaggy
Dec 12 '18 at 6:54












@Shaggy Sure you can
– Jo King
Dec 12 '18 at 7:58




@Shaggy Sure you can
– Jo King
Dec 12 '18 at 7:58












Is there a reason this uses letters instead of numbers?
– Wît Wisarhd
Dec 12 '18 at 13:54




Is there a reason this uses letters instead of numbers?
– Wît Wisarhd
Dec 12 '18 at 13:54










10 Answers
10






active

oldest

votes


















6















Charcoal, 41 bytes



≔EEβEθ∧μ⌕⭆β§β⁺⌕β§θ⊖μ×κξλ⎇⊕⌊ιΣι⌊ιθI⌕θ⌊Φθ⊕ι


Try it online! Link is to verbose version of code. 0-indexed. Explanation:



Eβ


Loop over the 26 step sizes. (Actually I loop over the lowercase alphabet here and use the index variable.)



Eθ∧μ


Loop over each character of the input after the first.



⭆β§β⁺⌕β§θ⊖μ×κξ


Loop 26 times and generate the string of characters resulting by taking 26 steps at the given step size starting (0-indexed) with the previous character of the input.



⌕...λ


Find the position of the current character of the input in that string, or -1 if not found.



E...⎇⊕⌊ιΣι⌊ι


Take the sum of all the positions, unless one was not found, in which case use -1.



≔...θ


Save the sums.



⌊Φθ⊕ι


Find the minimum non-negative sum.



I⌕θ...


Find the first step size with that sum and output it.






share|improve this answer





























    4














    JavaScript, 143 bytes





    w=>(a=[...Array(26).keys(m=1/0)]).map(s=>~[...w].map(c=>(t+=a.find(v=>!p|(u(c,36)+~v*s-u(p,36))%26==0),p=c),p=t=0,u=parseInt)+t<m&&(m=t,n=s))|n


    Try it online!



    Thanks to Shaggy, using [...Array(26).keys()] saves 9 bytes.






    share|improve this answer























    • 144 bytes
      – Shaggy
      Dec 12 '18 at 6:55



















    4















    Jelly, 28 26 23 bytes



    S;þḅ26ŒpṢƑƇIŻ€S:g/ƊÞḢg/


    Output is 0-indexed. Input is a bytestring and can be in any case, but uppercase is much faster.



    Single-letter input has to be special-cased and costs 2 bytes. ._.



    Try it online!



    Note that this is a brute-force approach; inputs with four or more letters will time out on TIO. The test suite prepends _39 for "efficiency".



    How it works



    S;þḅ26ŒpṢƑƇIŻ€S:g/ƊÞḢg/  Main link. Argument: b (bytestring)

    S Take the sum (s) of the code points in b.
    ;þ Concatenate table; for each k in [1, ..., s] and each c in
    b, yield [k, c], grouping by c.
    ḅ26 Unbase 26; map [k, c] to (26k + c).
    Œp Take the Cartesian product.
    ṢƑƇ Comb by fixed sort; keep only increasing lists.
    I Increments; take the forward differences of each list.
    Ż€ Prepend a 0 to each list.
    I returns empty lists for single-letter input, so this is
    required to keep g/ (reduce by GCD) from crashing.
    Þ Sort the lists by the link to the left.
    S:g/Ɗ Divide the sum by the GCD.
    Ḣ Head; extract the first, smallest element.
    g/ Compute the GCD.





    share|improve this answer































      3















      Jelly, 17 bytes



      ƓI%
      26×þ%iþÇo!SỤḢ


      Input is a bytestring on STDIN, output is 1-indexed.



      Try it online!



      How it works



      ƓI%            Helper link. Argument: m (26 when called)

      Ɠ Read a line from STDIN and eval it as Python code.
      I Increments; take all forward differences.
      % Take the differences modulo m.


      26×þ%iþÇoSSỤḢ Main link. No arguments.

      26 Set the argument and the return value to 26.
      ×þ Create the multiplication table of [1, ..., 26] by [1, ..., 26].
      % Take all products modulo 26.
      Ç Call the helper link with argument 26.
      iþ Find the index of each integer to the right in each list to the left,
      grouping by the lists.
      o! Replace zero indices (element not found) with 26!.
      This works for strings up to 25! = 15511210043330985984000000 chars,
      which exceeds Python's 9223372036854775807 character limit on x64.
      S Take the sum of each column.
      Ụ Sort the indices by their corresponding values.
      Ḣ Head; extract the first index, which corresponds to the minimal value.





      share|improve this answer





























        3















        Python 2, 230 222 216 194 bytes





        A=map(chr,range(65,91)).index
        def t(s,l,S=0):
        a=A(s[0])
        for c in s[1:]:
        while a!=A(c)and S<len(s)*26:
        S+=1;a+=l;a%=26
        return S
        def f(s):T=[t(s,l)for l in range(26)];return T.index(min(T))


        Try it online!



        -22 bytes from tsh



        -14 bytes from Jo King



        This would be shorter in a language with a prime number of letters (wouldn't need the float('inf') handling of infinite loops). Actually, this submission would still need that for handling strings like "aaa". This submission now uses 26*len(s) as an upper bound, which stops infinite loops.



        This submission is 0-indexed (returns values from 0 to 25 inclusive).



        f takes a(n uppercase) string and returns the Optimal Alphabet Stepping



        t is a helper function that takes the string and an alphabet stepping and returns the number of hops needed to finish the string (or 26*len(s) if impossible).






        share|improve this answer



















        • 2




          Use while a!=A(c)and S<len(s)*26: and you may remove if a==i:return float('inf'), since len(s)*26 is upper bound of any answer.
          – tsh
          Dec 12 '18 at 6:41








        • 1




          Actually, you don't really need the whole range(65,91) part if you just subtract 65. 169 bytes
          – Jo King
          Dec 13 '18 at 0:12





















        3















        JavaScript (Node.js),  123 121 116  114 bytes





        s=>(i=26,F=m=>i--?F((g=x=>s[p]?s[k++>>5]?j=1+g(x+i,p+=b[p]==x%26+97):m:0)(b[p=k=0]+7)>m?m:(r=i,j)):r)(b=Buffer(s))


        Try it online!



        Commented



        NB: When trying to match a letter in the alphabet with a given step $i$, we need to advance the pointer at most $25$ times. After $26$ unsuccessful iterations, at least one letter must have been visited twice. So, the sequence is going to repeat forever and the letter we're looking for is not part of it. This is why we do s[k++ >> 5] in the recursive function $g$, so that it gives up after $32 times L$ iterations, where $L$ is the length of the input string.



        s => (                        // main function taking the string s
        i = 26, // i = current step, initialized to 26
        F = m => // F = recursive function taking the current minimum m
        i-- ? // decrement i; if i was not equal to 0:
        F( // do a recursive call to F:
        (g = x => // g = recursive function taking a character ID x
        s[p] ? // if there's still at least one letter to match:
        s[k++ >> 5] ? // if we've done less than 32 * s.length iterations:
        j = 1 + g( // add 1 to the final result and add the result of
        x + i, // a recursive call to g with x = x + i
        p += b[p] == // increment p if
        x % 26 + 97 // the current letter is matching
        ) // end of recursive call to g
        : // else (we've done too many iterations):
        m // stop recursion and yield the current minimum
        : // else (all letters have been matched):
        0 // stop recursion and yield 0
        )( // initial call to g with p = k = 0
        b[p = k = 0] + 7 // and x = ID of 1st letter
        ) > m ? // if the result is not better than the current minimum:
        m // leave m unchanged
        : // else:
        (r = i, j) // update m to j and r to i
        ) // end of recursive call to F
        : // else (i = 0):
        r // stop recursion and return the final result r
        )(b = Buffer(s)) // initial call to F with m = b = list of ASCII codes of s





        share|improve this answer































          3















          Ruby, 121 114 112 108 102 bytes





          ->a{(0..25).min_by{|i|c=a[j=0];h=1;(i.times{c=c.next[-1]};j+=1;c==a[h]?h+=1:0)while(a*26)[j]&&a[h];j}}


          Try it online!



          0-indexed. Takes input as an array of characters.






          share|improve this answer































            2















            Red, 197 bytes



            func[s][a: collect[repeat n 26[keep #"`"+ n]]m: p: 99 a: append/dup a a m
            u: find a s/1 repeat n 26[v: extract u n
            d: 0 foreach c s[until[(v/(d: d + 1) = c)or(d > length? v)]]if d < m[m: d p: n]]p]


            Try it online!






            share|improve this answer





























              2















              05AB1E (legacy), 33 27 26 bytes



              Ç¥ε₂%U₂L<©ε®*₂%Xk'-žm:]øOWk


              Uses the legacy version because there seems to be a bug when you want to modify/use the result after a nested map in the new 05AB1E version..



              0-indexed output.



              Try it online or verify all test cases.



              Explanation:





              Ç                        # ASCII values of the (implicit) input
              ¥ # Deltas (differences between each pair)
              ε # Map each delta to:
              ₂% # Take modulo-26 of the delta
              U # Pop and store it in variable `X`
              ₂L< # Push a list in the range [0,25]
              © # Store it in the register (without popping)
              ε # Map each `y` to:
              ®* # Multiply each `y` by the list [0,25] of the register
              ₂% # And take modulo-26
              # (We now have a list of size 26 in steps of `y` modulo-26)
              Xk # Get the index of `X` in this inner list (-1 if not found)
              '-₄: '# Replace the minus sign with "1000"
              # (so -1 becomes 10001; others remain unchanged)
              ] # Close both maps
              ø # Zip; swapping rows/columns
              O # Sum each
              W # Get the smallest one (without popping the list)
              k # Get the index of this smallest value in the list
              # (and output the result implicitly)





              share|improve this answer































                2















                Python 3, 191 178 162 bytes



                Thanks everyone for all your tips! this is looking much more golflike.



                *w,=map(ord,input())
                a=
                for i in range(26):
                n=1;p=w[0]
                for c in w:
                while n<len(w)*26and p!=c:
                n+=1;p+=i;
                if p>122:p-=26
                a+=[n]
                print(a.index(min(a)))


                Try it online!



                And my original code if anyone's interested.



                Turns the word into a list of ASCII values, then iterates through step sizes 0 to 25, checking how many steps it takes to exhaust the list (there's a ceiling to stop infinite loops).



                Number of steps is added to the list a.



                After the big for loop, the index of the smallest value in a is printed. This is equal to the value of i (the step size) for that iteration of the loop, QED.






                share|improve this answer



















                • 1




                  Hi & Welcome to PPCG! For starters, your posted byte count doesn't match that on TIO :) Now, for a couple of quick hints: range(26) is enough - you don't need to specify the start, since 0 is the default; a.append(n) could be a+=[n]; the first line would be shorter as map w=list(map(ord,input())), (actually with your current algorithm, in Py2 you could drop list(...) wrapping as well); avoid extra spacing/line breaks as much as possible (e.g., no need for newlines in oneliners: if p>122:p-=26)
                  – Kirill L.
                  Dec 12 '18 at 15:06






                • 1




                  Also, that n>99 look suspicious, is that an arbitrary constant to break out of inifinite loop? Then it probably should be something like 26*len(w), as you never know, how large the input will be.
                  – Kirill L.
                  Dec 12 '18 at 15:07






                • 1




                  BTW, you can still get rid of that list(...) in Py3 and also of one extra if: 165 bytes. Also, take a look at this tips topic, I'm sure you'll greatly improve your skills using advices from there!
                  – Kirill L.
                  Dec 12 '18 at 15:44






                • 1




                  I'm not a python expert, but I think you can do while p!=c and n>len(w)*26: and get rid of that last if statement for -8 bytes.
                  – Spitemaster
                  Dec 12 '18 at 18:19






                • 2




                  Although it looks terrible and goes against everything Python is, you can change n+=1 and p+=i on seperate lines to n+=1;p+=i on one.
                  – nedla2004
                  Dec 12 '18 at 18:24











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                10 Answers
                10






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                10 Answers
                10






                active

                oldest

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                active

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                active

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                6















                Charcoal, 41 bytes



                ≔EEβEθ∧μ⌕⭆β§β⁺⌕β§θ⊖μ×κξλ⎇⊕⌊ιΣι⌊ιθI⌕θ⌊Φθ⊕ι


                Try it online! Link is to verbose version of code. 0-indexed. Explanation:



                Eβ


                Loop over the 26 step sizes. (Actually I loop over the lowercase alphabet here and use the index variable.)



                Eθ∧μ


                Loop over each character of the input after the first.



                ⭆β§β⁺⌕β§θ⊖μ×κξ


                Loop 26 times and generate the string of characters resulting by taking 26 steps at the given step size starting (0-indexed) with the previous character of the input.



                ⌕...λ


                Find the position of the current character of the input in that string, or -1 if not found.



                E...⎇⊕⌊ιΣι⌊ι


                Take the sum of all the positions, unless one was not found, in which case use -1.



                ≔...θ


                Save the sums.



                ⌊Φθ⊕ι


                Find the minimum non-negative sum.



                I⌕θ...


                Find the first step size with that sum and output it.






                share|improve this answer


























                  6















                  Charcoal, 41 bytes



                  ≔EEβEθ∧μ⌕⭆β§β⁺⌕β§θ⊖μ×κξλ⎇⊕⌊ιΣι⌊ιθI⌕θ⌊Φθ⊕ι


                  Try it online! Link is to verbose version of code. 0-indexed. Explanation:



                  Eβ


                  Loop over the 26 step sizes. (Actually I loop over the lowercase alphabet here and use the index variable.)



                  Eθ∧μ


                  Loop over each character of the input after the first.



                  ⭆β§β⁺⌕β§θ⊖μ×κξ


                  Loop 26 times and generate the string of characters resulting by taking 26 steps at the given step size starting (0-indexed) with the previous character of the input.



                  ⌕...λ


                  Find the position of the current character of the input in that string, or -1 if not found.



                  E...⎇⊕⌊ιΣι⌊ι


                  Take the sum of all the positions, unless one was not found, in which case use -1.



                  ≔...θ


                  Save the sums.



                  ⌊Φθ⊕ι


                  Find the minimum non-negative sum.



                  I⌕θ...


                  Find the first step size with that sum and output it.






                  share|improve this answer
























                    6












                    6








                    6







                    Charcoal, 41 bytes



                    ≔EEβEθ∧μ⌕⭆β§β⁺⌕β§θ⊖μ×κξλ⎇⊕⌊ιΣι⌊ιθI⌕θ⌊Φθ⊕ι


                    Try it online! Link is to verbose version of code. 0-indexed. Explanation:



                    Eβ


                    Loop over the 26 step sizes. (Actually I loop over the lowercase alphabet here and use the index variable.)



                    Eθ∧μ


                    Loop over each character of the input after the first.



                    ⭆β§β⁺⌕β§θ⊖μ×κξ


                    Loop 26 times and generate the string of characters resulting by taking 26 steps at the given step size starting (0-indexed) with the previous character of the input.



                    ⌕...λ


                    Find the position of the current character of the input in that string, or -1 if not found.



                    E...⎇⊕⌊ιΣι⌊ι


                    Take the sum of all the positions, unless one was not found, in which case use -1.



                    ≔...θ


                    Save the sums.



                    ⌊Φθ⊕ι


                    Find the minimum non-negative sum.



                    I⌕θ...


                    Find the first step size with that sum and output it.






                    share|improve this answer













                    Charcoal, 41 bytes



                    ≔EEβEθ∧μ⌕⭆β§β⁺⌕β§θ⊖μ×κξλ⎇⊕⌊ιΣι⌊ιθI⌕θ⌊Φθ⊕ι


                    Try it online! Link is to verbose version of code. 0-indexed. Explanation:



                    Eβ


                    Loop over the 26 step sizes. (Actually I loop over the lowercase alphabet here and use the index variable.)



                    Eθ∧μ


                    Loop over each character of the input after the first.



                    ⭆β§β⁺⌕β§θ⊖μ×κξ


                    Loop 26 times and generate the string of characters resulting by taking 26 steps at the given step size starting (0-indexed) with the previous character of the input.



                    ⌕...λ


                    Find the position of the current character of the input in that string, or -1 if not found.



                    E...⎇⊕⌊ιΣι⌊ι


                    Take the sum of all the positions, unless one was not found, in which case use -1.



                    ≔...θ


                    Save the sums.



                    ⌊Φθ⊕ι


                    Find the minimum non-negative sum.



                    I⌕θ...


                    Find the first step size with that sum and output it.







                    share|improve this answer












                    share|improve this answer



                    share|improve this answer










                    answered Dec 12 '18 at 9:38









                    NeilNeil

                    79.6k744177




                    79.6k744177























                        4














                        JavaScript, 143 bytes





                        w=>(a=[...Array(26).keys(m=1/0)]).map(s=>~[...w].map(c=>(t+=a.find(v=>!p|(u(c,36)+~v*s-u(p,36))%26==0),p=c),p=t=0,u=parseInt)+t<m&&(m=t,n=s))|n


                        Try it online!



                        Thanks to Shaggy, using [...Array(26).keys()] saves 9 bytes.






                        share|improve this answer























                        • 144 bytes
                          – Shaggy
                          Dec 12 '18 at 6:55
















                        4














                        JavaScript, 143 bytes





                        w=>(a=[...Array(26).keys(m=1/0)]).map(s=>~[...w].map(c=>(t+=a.find(v=>!p|(u(c,36)+~v*s-u(p,36))%26==0),p=c),p=t=0,u=parseInt)+t<m&&(m=t,n=s))|n


                        Try it online!



                        Thanks to Shaggy, using [...Array(26).keys()] saves 9 bytes.






                        share|improve this answer























                        • 144 bytes
                          – Shaggy
                          Dec 12 '18 at 6:55














                        4












                        4








                        4






                        JavaScript, 143 bytes





                        w=>(a=[...Array(26).keys(m=1/0)]).map(s=>~[...w].map(c=>(t+=a.find(v=>!p|(u(c,36)+~v*s-u(p,36))%26==0),p=c),p=t=0,u=parseInt)+t<m&&(m=t,n=s))|n


                        Try it online!



                        Thanks to Shaggy, using [...Array(26).keys()] saves 9 bytes.






                        share|improve this answer














                        JavaScript, 143 bytes





                        w=>(a=[...Array(26).keys(m=1/0)]).map(s=>~[...w].map(c=>(t+=a.find(v=>!p|(u(c,36)+~v*s-u(p,36))%26==0),p=c),p=t=0,u=parseInt)+t<m&&(m=t,n=s))|n


                        Try it online!



                        Thanks to Shaggy, using [...Array(26).keys()] saves 9 bytes.







                        share|improve this answer














                        share|improve this answer



                        share|improve this answer








                        edited Dec 12 '18 at 8:22

























                        answered Dec 12 '18 at 6:25









                        tshtsh

                        8,48511546




                        8,48511546












                        • 144 bytes
                          – Shaggy
                          Dec 12 '18 at 6:55


















                        • 144 bytes
                          – Shaggy
                          Dec 12 '18 at 6:55
















                        144 bytes
                        – Shaggy
                        Dec 12 '18 at 6:55




                        144 bytes
                        – Shaggy
                        Dec 12 '18 at 6:55











                        4















                        Jelly, 28 26 23 bytes



                        S;þḅ26ŒpṢƑƇIŻ€S:g/ƊÞḢg/


                        Output is 0-indexed. Input is a bytestring and can be in any case, but uppercase is much faster.



                        Single-letter input has to be special-cased and costs 2 bytes. ._.



                        Try it online!



                        Note that this is a brute-force approach; inputs with four or more letters will time out on TIO. The test suite prepends _39 for "efficiency".



                        How it works



                        S;þḅ26ŒpṢƑƇIŻ€S:g/ƊÞḢg/  Main link. Argument: b (bytestring)

                        S Take the sum (s) of the code points in b.
                        ;þ Concatenate table; for each k in [1, ..., s] and each c in
                        b, yield [k, c], grouping by c.
                        ḅ26 Unbase 26; map [k, c] to (26k + c).
                        Œp Take the Cartesian product.
                        ṢƑƇ Comb by fixed sort; keep only increasing lists.
                        I Increments; take the forward differences of each list.
                        Ż€ Prepend a 0 to each list.
                        I returns empty lists for single-letter input, so this is
                        required to keep g/ (reduce by GCD) from crashing.
                        Þ Sort the lists by the link to the left.
                        S:g/Ɗ Divide the sum by the GCD.
                        Ḣ Head; extract the first, smallest element.
                        g/ Compute the GCD.





                        share|improve this answer




























                          4















                          Jelly, 28 26 23 bytes



                          S;þḅ26ŒpṢƑƇIŻ€S:g/ƊÞḢg/


                          Output is 0-indexed. Input is a bytestring and can be in any case, but uppercase is much faster.



                          Single-letter input has to be special-cased and costs 2 bytes. ._.



                          Try it online!



                          Note that this is a brute-force approach; inputs with four or more letters will time out on TIO. The test suite prepends _39 for "efficiency".



                          How it works



                          S;þḅ26ŒpṢƑƇIŻ€S:g/ƊÞḢg/  Main link. Argument: b (bytestring)

                          S Take the sum (s) of the code points in b.
                          ;þ Concatenate table; for each k in [1, ..., s] and each c in
                          b, yield [k, c], grouping by c.
                          ḅ26 Unbase 26; map [k, c] to (26k + c).
                          Œp Take the Cartesian product.
                          ṢƑƇ Comb by fixed sort; keep only increasing lists.
                          I Increments; take the forward differences of each list.
                          Ż€ Prepend a 0 to each list.
                          I returns empty lists for single-letter input, so this is
                          required to keep g/ (reduce by GCD) from crashing.
                          Þ Sort the lists by the link to the left.
                          S:g/Ɗ Divide the sum by the GCD.
                          Ḣ Head; extract the first, smallest element.
                          g/ Compute the GCD.





                          share|improve this answer


























                            4












                            4








                            4







                            Jelly, 28 26 23 bytes



                            S;þḅ26ŒpṢƑƇIŻ€S:g/ƊÞḢg/


                            Output is 0-indexed. Input is a bytestring and can be in any case, but uppercase is much faster.



                            Single-letter input has to be special-cased and costs 2 bytes. ._.



                            Try it online!



                            Note that this is a brute-force approach; inputs with four or more letters will time out on TIO. The test suite prepends _39 for "efficiency".



                            How it works



                            S;þḅ26ŒpṢƑƇIŻ€S:g/ƊÞḢg/  Main link. Argument: b (bytestring)

                            S Take the sum (s) of the code points in b.
                            ;þ Concatenate table; for each k in [1, ..., s] and each c in
                            b, yield [k, c], grouping by c.
                            ḅ26 Unbase 26; map [k, c] to (26k + c).
                            Œp Take the Cartesian product.
                            ṢƑƇ Comb by fixed sort; keep only increasing lists.
                            I Increments; take the forward differences of each list.
                            Ż€ Prepend a 0 to each list.
                            I returns empty lists for single-letter input, so this is
                            required to keep g/ (reduce by GCD) from crashing.
                            Þ Sort the lists by the link to the left.
                            S:g/Ɗ Divide the sum by the GCD.
                            Ḣ Head; extract the first, smallest element.
                            g/ Compute the GCD.





                            share|improve this answer















                            Jelly, 28 26 23 bytes



                            S;þḅ26ŒpṢƑƇIŻ€S:g/ƊÞḢg/


                            Output is 0-indexed. Input is a bytestring and can be in any case, but uppercase is much faster.



                            Single-letter input has to be special-cased and costs 2 bytes. ._.



                            Try it online!



                            Note that this is a brute-force approach; inputs with four or more letters will time out on TIO. The test suite prepends _39 for "efficiency".



                            How it works



                            S;þḅ26ŒpṢƑƇIŻ€S:g/ƊÞḢg/  Main link. Argument: b (bytestring)

                            S Take the sum (s) of the code points in b.
                            ;þ Concatenate table; for each k in [1, ..., s] and each c in
                            b, yield [k, c], grouping by c.
                            ḅ26 Unbase 26; map [k, c] to (26k + c).
                            Œp Take the Cartesian product.
                            ṢƑƇ Comb by fixed sort; keep only increasing lists.
                            I Increments; take the forward differences of each list.
                            Ż€ Prepend a 0 to each list.
                            I returns empty lists for single-letter input, so this is
                            required to keep g/ (reduce by GCD) from crashing.
                            Þ Sort the lists by the link to the left.
                            S:g/Ɗ Divide the sum by the GCD.
                            Ḣ Head; extract the first, smallest element.
                            g/ Compute the GCD.






                            share|improve this answer














                            share|improve this answer



                            share|improve this answer








                            edited Dec 12 '18 at 14:34

























                            answered Dec 12 '18 at 13:31









                            DennisDennis

                            187k32297735




                            187k32297735























                                3















                                Jelly, 17 bytes



                                ƓI%
                                26×þ%iþÇo!SỤḢ


                                Input is a bytestring on STDIN, output is 1-indexed.



                                Try it online!



                                How it works



                                ƓI%            Helper link. Argument: m (26 when called)

                                Ɠ Read a line from STDIN and eval it as Python code.
                                I Increments; take all forward differences.
                                % Take the differences modulo m.


                                26×þ%iþÇoSSỤḢ Main link. No arguments.

                                26 Set the argument and the return value to 26.
                                ×þ Create the multiplication table of [1, ..., 26] by [1, ..., 26].
                                % Take all products modulo 26.
                                Ç Call the helper link with argument 26.
                                iþ Find the index of each integer to the right in each list to the left,
                                grouping by the lists.
                                o! Replace zero indices (element not found) with 26!.
                                This works for strings up to 25! = 15511210043330985984000000 chars,
                                which exceeds Python's 9223372036854775807 character limit on x64.
                                S Take the sum of each column.
                                Ụ Sort the indices by their corresponding values.
                                Ḣ Head; extract the first index, which corresponds to the minimal value.





                                share|improve this answer


























                                  3















                                  Jelly, 17 bytes



                                  ƓI%
                                  26×þ%iþÇo!SỤḢ


                                  Input is a bytestring on STDIN, output is 1-indexed.



                                  Try it online!



                                  How it works



                                  ƓI%            Helper link. Argument: m (26 when called)

                                  Ɠ Read a line from STDIN and eval it as Python code.
                                  I Increments; take all forward differences.
                                  % Take the differences modulo m.


                                  26×þ%iþÇoSSỤḢ Main link. No arguments.

                                  26 Set the argument and the return value to 26.
                                  ×þ Create the multiplication table of [1, ..., 26] by [1, ..., 26].
                                  % Take all products modulo 26.
                                  Ç Call the helper link with argument 26.
                                  iþ Find the index of each integer to the right in each list to the left,
                                  grouping by the lists.
                                  o! Replace zero indices (element not found) with 26!.
                                  This works for strings up to 25! = 15511210043330985984000000 chars,
                                  which exceeds Python's 9223372036854775807 character limit on x64.
                                  S Take the sum of each column.
                                  Ụ Sort the indices by their corresponding values.
                                  Ḣ Head; extract the first index, which corresponds to the minimal value.





                                  share|improve this answer
























                                    3












                                    3








                                    3







                                    Jelly, 17 bytes



                                    ƓI%
                                    26×þ%iþÇo!SỤḢ


                                    Input is a bytestring on STDIN, output is 1-indexed.



                                    Try it online!



                                    How it works



                                    ƓI%            Helper link. Argument: m (26 when called)

                                    Ɠ Read a line from STDIN and eval it as Python code.
                                    I Increments; take all forward differences.
                                    % Take the differences modulo m.


                                    26×þ%iþÇoSSỤḢ Main link. No arguments.

                                    26 Set the argument and the return value to 26.
                                    ×þ Create the multiplication table of [1, ..., 26] by [1, ..., 26].
                                    % Take all products modulo 26.
                                    Ç Call the helper link with argument 26.
                                    iþ Find the index of each integer to the right in each list to the left,
                                    grouping by the lists.
                                    o! Replace zero indices (element not found) with 26!.
                                    This works for strings up to 25! = 15511210043330985984000000 chars,
                                    which exceeds Python's 9223372036854775807 character limit on x64.
                                    S Take the sum of each column.
                                    Ụ Sort the indices by their corresponding values.
                                    Ḣ Head; extract the first index, which corresponds to the minimal value.





                                    share|improve this answer













                                    Jelly, 17 bytes



                                    ƓI%
                                    26×þ%iþÇo!SỤḢ


                                    Input is a bytestring on STDIN, output is 1-indexed.



                                    Try it online!



                                    How it works



                                    ƓI%            Helper link. Argument: m (26 when called)

                                    Ɠ Read a line from STDIN and eval it as Python code.
                                    I Increments; take all forward differences.
                                    % Take the differences modulo m.


                                    26×þ%iþÇoSSỤḢ Main link. No arguments.

                                    26 Set the argument and the return value to 26.
                                    ×þ Create the multiplication table of [1, ..., 26] by [1, ..., 26].
                                    % Take all products modulo 26.
                                    Ç Call the helper link with argument 26.
                                    iþ Find the index of each integer to the right in each list to the left,
                                    grouping by the lists.
                                    o! Replace zero indices (element not found) with 26!.
                                    This works for strings up to 25! = 15511210043330985984000000 chars,
                                    which exceeds Python's 9223372036854775807 character limit on x64.
                                    S Take the sum of each column.
                                    Ụ Sort the indices by their corresponding values.
                                    Ḣ Head; extract the first index, which corresponds to the minimal value.






                                    share|improve this answer












                                    share|improve this answer



                                    share|improve this answer










                                    answered Dec 12 '18 at 18:06









                                    DennisDennis

                                    187k32297735




                                    187k32297735























                                        3















                                        Python 2, 230 222 216 194 bytes





                                        A=map(chr,range(65,91)).index
                                        def t(s,l,S=0):
                                        a=A(s[0])
                                        for c in s[1:]:
                                        while a!=A(c)and S<len(s)*26:
                                        S+=1;a+=l;a%=26
                                        return S
                                        def f(s):T=[t(s,l)for l in range(26)];return T.index(min(T))


                                        Try it online!



                                        -22 bytes from tsh



                                        -14 bytes from Jo King



                                        This would be shorter in a language with a prime number of letters (wouldn't need the float('inf') handling of infinite loops). Actually, this submission would still need that for handling strings like "aaa". This submission now uses 26*len(s) as an upper bound, which stops infinite loops.



                                        This submission is 0-indexed (returns values from 0 to 25 inclusive).



                                        f takes a(n uppercase) string and returns the Optimal Alphabet Stepping



                                        t is a helper function that takes the string and an alphabet stepping and returns the number of hops needed to finish the string (or 26*len(s) if impossible).






                                        share|improve this answer



















                                        • 2




                                          Use while a!=A(c)and S<len(s)*26: and you may remove if a==i:return float('inf'), since len(s)*26 is upper bound of any answer.
                                          – tsh
                                          Dec 12 '18 at 6:41








                                        • 1




                                          Actually, you don't really need the whole range(65,91) part if you just subtract 65. 169 bytes
                                          – Jo King
                                          Dec 13 '18 at 0:12


















                                        3















                                        Python 2, 230 222 216 194 bytes





                                        A=map(chr,range(65,91)).index
                                        def t(s,l,S=0):
                                        a=A(s[0])
                                        for c in s[1:]:
                                        while a!=A(c)and S<len(s)*26:
                                        S+=1;a+=l;a%=26
                                        return S
                                        def f(s):T=[t(s,l)for l in range(26)];return T.index(min(T))


                                        Try it online!



                                        -22 bytes from tsh



                                        -14 bytes from Jo King



                                        This would be shorter in a language with a prime number of letters (wouldn't need the float('inf') handling of infinite loops). Actually, this submission would still need that for handling strings like "aaa". This submission now uses 26*len(s) as an upper bound, which stops infinite loops.



                                        This submission is 0-indexed (returns values from 0 to 25 inclusive).



                                        f takes a(n uppercase) string and returns the Optimal Alphabet Stepping



                                        t is a helper function that takes the string and an alphabet stepping and returns the number of hops needed to finish the string (or 26*len(s) if impossible).






                                        share|improve this answer



















                                        • 2




                                          Use while a!=A(c)and S<len(s)*26: and you may remove if a==i:return float('inf'), since len(s)*26 is upper bound of any answer.
                                          – tsh
                                          Dec 12 '18 at 6:41








                                        • 1




                                          Actually, you don't really need the whole range(65,91) part if you just subtract 65. 169 bytes
                                          – Jo King
                                          Dec 13 '18 at 0:12
















                                        3












                                        3








                                        3







                                        Python 2, 230 222 216 194 bytes





                                        A=map(chr,range(65,91)).index
                                        def t(s,l,S=0):
                                        a=A(s[0])
                                        for c in s[1:]:
                                        while a!=A(c)and S<len(s)*26:
                                        S+=1;a+=l;a%=26
                                        return S
                                        def f(s):T=[t(s,l)for l in range(26)];return T.index(min(T))


                                        Try it online!



                                        -22 bytes from tsh



                                        -14 bytes from Jo King



                                        This would be shorter in a language with a prime number of letters (wouldn't need the float('inf') handling of infinite loops). Actually, this submission would still need that for handling strings like "aaa". This submission now uses 26*len(s) as an upper bound, which stops infinite loops.



                                        This submission is 0-indexed (returns values from 0 to 25 inclusive).



                                        f takes a(n uppercase) string and returns the Optimal Alphabet Stepping



                                        t is a helper function that takes the string and an alphabet stepping and returns the number of hops needed to finish the string (or 26*len(s) if impossible).






                                        share|improve this answer















                                        Python 2, 230 222 216 194 bytes





                                        A=map(chr,range(65,91)).index
                                        def t(s,l,S=0):
                                        a=A(s[0])
                                        for c in s[1:]:
                                        while a!=A(c)and S<len(s)*26:
                                        S+=1;a+=l;a%=26
                                        return S
                                        def f(s):T=[t(s,l)for l in range(26)];return T.index(min(T))


                                        Try it online!



                                        -22 bytes from tsh



                                        -14 bytes from Jo King



                                        This would be shorter in a language with a prime number of letters (wouldn't need the float('inf') handling of infinite loops). Actually, this submission would still need that for handling strings like "aaa". This submission now uses 26*len(s) as an upper bound, which stops infinite loops.



                                        This submission is 0-indexed (returns values from 0 to 25 inclusive).



                                        f takes a(n uppercase) string and returns the Optimal Alphabet Stepping



                                        t is a helper function that takes the string and an alphabet stepping and returns the number of hops needed to finish the string (or 26*len(s) if impossible).







                                        share|improve this answer














                                        share|improve this answer



                                        share|improve this answer








                                        edited Dec 12 '18 at 22:42

























                                        answered Dec 12 '18 at 5:35









                                        pizzapants184pizzapants184

                                        2,644716




                                        2,644716








                                        • 2




                                          Use while a!=A(c)and S<len(s)*26: and you may remove if a==i:return float('inf'), since len(s)*26 is upper bound of any answer.
                                          – tsh
                                          Dec 12 '18 at 6:41








                                        • 1




                                          Actually, you don't really need the whole range(65,91) part if you just subtract 65. 169 bytes
                                          – Jo King
                                          Dec 13 '18 at 0:12
















                                        • 2




                                          Use while a!=A(c)and S<len(s)*26: and you may remove if a==i:return float('inf'), since len(s)*26 is upper bound of any answer.
                                          – tsh
                                          Dec 12 '18 at 6:41








                                        • 1




                                          Actually, you don't really need the whole range(65,91) part if you just subtract 65. 169 bytes
                                          – Jo King
                                          Dec 13 '18 at 0:12










                                        2




                                        2




                                        Use while a!=A(c)and S<len(s)*26: and you may remove if a==i:return float('inf'), since len(s)*26 is upper bound of any answer.
                                        – tsh
                                        Dec 12 '18 at 6:41






                                        Use while a!=A(c)and S<len(s)*26: and you may remove if a==i:return float('inf'), since len(s)*26 is upper bound of any answer.
                                        – tsh
                                        Dec 12 '18 at 6:41






                                        1




                                        1




                                        Actually, you don't really need the whole range(65,91) part if you just subtract 65. 169 bytes
                                        – Jo King
                                        Dec 13 '18 at 0:12






                                        Actually, you don't really need the whole range(65,91) part if you just subtract 65. 169 bytes
                                        – Jo King
                                        Dec 13 '18 at 0:12













                                        3















                                        JavaScript (Node.js),  123 121 116  114 bytes





                                        s=>(i=26,F=m=>i--?F((g=x=>s[p]?s[k++>>5]?j=1+g(x+i,p+=b[p]==x%26+97):m:0)(b[p=k=0]+7)>m?m:(r=i,j)):r)(b=Buffer(s))


                                        Try it online!



                                        Commented



                                        NB: When trying to match a letter in the alphabet with a given step $i$, we need to advance the pointer at most $25$ times. After $26$ unsuccessful iterations, at least one letter must have been visited twice. So, the sequence is going to repeat forever and the letter we're looking for is not part of it. This is why we do s[k++ >> 5] in the recursive function $g$, so that it gives up after $32 times L$ iterations, where $L$ is the length of the input string.



                                        s => (                        // main function taking the string s
                                        i = 26, // i = current step, initialized to 26
                                        F = m => // F = recursive function taking the current minimum m
                                        i-- ? // decrement i; if i was not equal to 0:
                                        F( // do a recursive call to F:
                                        (g = x => // g = recursive function taking a character ID x
                                        s[p] ? // if there's still at least one letter to match:
                                        s[k++ >> 5] ? // if we've done less than 32 * s.length iterations:
                                        j = 1 + g( // add 1 to the final result and add the result of
                                        x + i, // a recursive call to g with x = x + i
                                        p += b[p] == // increment p if
                                        x % 26 + 97 // the current letter is matching
                                        ) // end of recursive call to g
                                        : // else (we've done too many iterations):
                                        m // stop recursion and yield the current minimum
                                        : // else (all letters have been matched):
                                        0 // stop recursion and yield 0
                                        )( // initial call to g with p = k = 0
                                        b[p = k = 0] + 7 // and x = ID of 1st letter
                                        ) > m ? // if the result is not better than the current minimum:
                                        m // leave m unchanged
                                        : // else:
                                        (r = i, j) // update m to j and r to i
                                        ) // end of recursive call to F
                                        : // else (i = 0):
                                        r // stop recursion and return the final result r
                                        )(b = Buffer(s)) // initial call to F with m = b = list of ASCII codes of s





                                        share|improve this answer




























                                          3















                                          JavaScript (Node.js),  123 121 116  114 bytes





                                          s=>(i=26,F=m=>i--?F((g=x=>s[p]?s[k++>>5]?j=1+g(x+i,p+=b[p]==x%26+97):m:0)(b[p=k=0]+7)>m?m:(r=i,j)):r)(b=Buffer(s))


                                          Try it online!



                                          Commented



                                          NB: When trying to match a letter in the alphabet with a given step $i$, we need to advance the pointer at most $25$ times. After $26$ unsuccessful iterations, at least one letter must have been visited twice. So, the sequence is going to repeat forever and the letter we're looking for is not part of it. This is why we do s[k++ >> 5] in the recursive function $g$, so that it gives up after $32 times L$ iterations, where $L$ is the length of the input string.



                                          s => (                        // main function taking the string s
                                          i = 26, // i = current step, initialized to 26
                                          F = m => // F = recursive function taking the current minimum m
                                          i-- ? // decrement i; if i was not equal to 0:
                                          F( // do a recursive call to F:
                                          (g = x => // g = recursive function taking a character ID x
                                          s[p] ? // if there's still at least one letter to match:
                                          s[k++ >> 5] ? // if we've done less than 32 * s.length iterations:
                                          j = 1 + g( // add 1 to the final result and add the result of
                                          x + i, // a recursive call to g with x = x + i
                                          p += b[p] == // increment p if
                                          x % 26 + 97 // the current letter is matching
                                          ) // end of recursive call to g
                                          : // else (we've done too many iterations):
                                          m // stop recursion and yield the current minimum
                                          : // else (all letters have been matched):
                                          0 // stop recursion and yield 0
                                          )( // initial call to g with p = k = 0
                                          b[p = k = 0] + 7 // and x = ID of 1st letter
                                          ) > m ? // if the result is not better than the current minimum:
                                          m // leave m unchanged
                                          : // else:
                                          (r = i, j) // update m to j and r to i
                                          ) // end of recursive call to F
                                          : // else (i = 0):
                                          r // stop recursion and return the final result r
                                          )(b = Buffer(s)) // initial call to F with m = b = list of ASCII codes of s





                                          share|improve this answer


























                                            3












                                            3








                                            3







                                            JavaScript (Node.js),  123 121 116  114 bytes





                                            s=>(i=26,F=m=>i--?F((g=x=>s[p]?s[k++>>5]?j=1+g(x+i,p+=b[p]==x%26+97):m:0)(b[p=k=0]+7)>m?m:(r=i,j)):r)(b=Buffer(s))


                                            Try it online!



                                            Commented



                                            NB: When trying to match a letter in the alphabet with a given step $i$, we need to advance the pointer at most $25$ times. After $26$ unsuccessful iterations, at least one letter must have been visited twice. So, the sequence is going to repeat forever and the letter we're looking for is not part of it. This is why we do s[k++ >> 5] in the recursive function $g$, so that it gives up after $32 times L$ iterations, where $L$ is the length of the input string.



                                            s => (                        // main function taking the string s
                                            i = 26, // i = current step, initialized to 26
                                            F = m => // F = recursive function taking the current minimum m
                                            i-- ? // decrement i; if i was not equal to 0:
                                            F( // do a recursive call to F:
                                            (g = x => // g = recursive function taking a character ID x
                                            s[p] ? // if there's still at least one letter to match:
                                            s[k++ >> 5] ? // if we've done less than 32 * s.length iterations:
                                            j = 1 + g( // add 1 to the final result and add the result of
                                            x + i, // a recursive call to g with x = x + i
                                            p += b[p] == // increment p if
                                            x % 26 + 97 // the current letter is matching
                                            ) // end of recursive call to g
                                            : // else (we've done too many iterations):
                                            m // stop recursion and yield the current minimum
                                            : // else (all letters have been matched):
                                            0 // stop recursion and yield 0
                                            )( // initial call to g with p = k = 0
                                            b[p = k = 0] + 7 // and x = ID of 1st letter
                                            ) > m ? // if the result is not better than the current minimum:
                                            m // leave m unchanged
                                            : // else:
                                            (r = i, j) // update m to j and r to i
                                            ) // end of recursive call to F
                                            : // else (i = 0):
                                            r // stop recursion and return the final result r
                                            )(b = Buffer(s)) // initial call to F with m = b = list of ASCII codes of s





                                            share|improve this answer















                                            JavaScript (Node.js),  123 121 116  114 bytes





                                            s=>(i=26,F=m=>i--?F((g=x=>s[p]?s[k++>>5]?j=1+g(x+i,p+=b[p]==x%26+97):m:0)(b[p=k=0]+7)>m?m:(r=i,j)):r)(b=Buffer(s))


                                            Try it online!



                                            Commented



                                            NB: When trying to match a letter in the alphabet with a given step $i$, we need to advance the pointer at most $25$ times. After $26$ unsuccessful iterations, at least one letter must have been visited twice. So, the sequence is going to repeat forever and the letter we're looking for is not part of it. This is why we do s[k++ >> 5] in the recursive function $g$, so that it gives up after $32 times L$ iterations, where $L$ is the length of the input string.



                                            s => (                        // main function taking the string s
                                            i = 26, // i = current step, initialized to 26
                                            F = m => // F = recursive function taking the current minimum m
                                            i-- ? // decrement i; if i was not equal to 0:
                                            F( // do a recursive call to F:
                                            (g = x => // g = recursive function taking a character ID x
                                            s[p] ? // if there's still at least one letter to match:
                                            s[k++ >> 5] ? // if we've done less than 32 * s.length iterations:
                                            j = 1 + g( // add 1 to the final result and add the result of
                                            x + i, // a recursive call to g with x = x + i
                                            p += b[p] == // increment p if
                                            x % 26 + 97 // the current letter is matching
                                            ) // end of recursive call to g
                                            : // else (we've done too many iterations):
                                            m // stop recursion and yield the current minimum
                                            : // else (all letters have been matched):
                                            0 // stop recursion and yield 0
                                            )( // initial call to g with p = k = 0
                                            b[p = k = 0] + 7 // and x = ID of 1st letter
                                            ) > m ? // if the result is not better than the current minimum:
                                            m // leave m unchanged
                                            : // else:
                                            (r = i, j) // update m to j and r to i
                                            ) // end of recursive call to F
                                            : // else (i = 0):
                                            r // stop recursion and return the final result r
                                            )(b = Buffer(s)) // initial call to F with m = b = list of ASCII codes of s






                                            share|improve this answer














                                            share|improve this answer



                                            share|improve this answer








                                            edited Dec 13 '18 at 9:55

























                                            answered Dec 12 '18 at 11:29









                                            ArnauldArnauld

                                            72.7k689306




                                            72.7k689306























                                                3















                                                Ruby, 121 114 112 108 102 bytes





                                                ->a{(0..25).min_by{|i|c=a[j=0];h=1;(i.times{c=c.next[-1]};j+=1;c==a[h]?h+=1:0)while(a*26)[j]&&a[h];j}}


                                                Try it online!



                                                0-indexed. Takes input as an array of characters.






                                                share|improve this answer




























                                                  3















                                                  Ruby, 121 114 112 108 102 bytes





                                                  ->a{(0..25).min_by{|i|c=a[j=0];h=1;(i.times{c=c.next[-1]};j+=1;c==a[h]?h+=1:0)while(a*26)[j]&&a[h];j}}


                                                  Try it online!



                                                  0-indexed. Takes input as an array of characters.






                                                  share|improve this answer


























                                                    3












                                                    3








                                                    3







                                                    Ruby, 121 114 112 108 102 bytes





                                                    ->a{(0..25).min_by{|i|c=a[j=0];h=1;(i.times{c=c.next[-1]};j+=1;c==a[h]?h+=1:0)while(a*26)[j]&&a[h];j}}


                                                    Try it online!



                                                    0-indexed. Takes input as an array of characters.






                                                    share|improve this answer















                                                    Ruby, 121 114 112 108 102 bytes





                                                    ->a{(0..25).min_by{|i|c=a[j=0];h=1;(i.times{c=c.next[-1]};j+=1;c==a[h]?h+=1:0)while(a*26)[j]&&a[h];j}}


                                                    Try it online!



                                                    0-indexed. Takes input as an array of characters.







                                                    share|improve this answer














                                                    share|improve this answer



                                                    share|improve this answer








                                                    edited Dec 14 '18 at 11:24

























                                                    answered Dec 12 '18 at 10:47









                                                    Kirill L.Kirill L.

                                                    3,6751319




                                                    3,6751319























                                                        2















                                                        Red, 197 bytes



                                                        func[s][a: collect[repeat n 26[keep #"`"+ n]]m: p: 99 a: append/dup a a m
                                                        u: find a s/1 repeat n 26[v: extract u n
                                                        d: 0 foreach c s[until[(v/(d: d + 1) = c)or(d > length? v)]]if d < m[m: d p: n]]p]


                                                        Try it online!






                                                        share|improve this answer


























                                                          2















                                                          Red, 197 bytes



                                                          func[s][a: collect[repeat n 26[keep #"`"+ n]]m: p: 99 a: append/dup a a m
                                                          u: find a s/1 repeat n 26[v: extract u n
                                                          d: 0 foreach c s[until[(v/(d: d + 1) = c)or(d > length? v)]]if d < m[m: d p: n]]p]


                                                          Try it online!






                                                          share|improve this answer
























                                                            2












                                                            2








                                                            2







                                                            Red, 197 bytes



                                                            func[s][a: collect[repeat n 26[keep #"`"+ n]]m: p: 99 a: append/dup a a m
                                                            u: find a s/1 repeat n 26[v: extract u n
                                                            d: 0 foreach c s[until[(v/(d: d + 1) = c)or(d > length? v)]]if d < m[m: d p: n]]p]


                                                            Try it online!






                                                            share|improve this answer













                                                            Red, 197 bytes



                                                            func[s][a: collect[repeat n 26[keep #"`"+ n]]m: p: 99 a: append/dup a a m
                                                            u: find a s/1 repeat n 26[v: extract u n
                                                            d: 0 foreach c s[until[(v/(d: d + 1) = c)or(d > length? v)]]if d < m[m: d p: n]]p]


                                                            Try it online!







                                                            share|improve this answer












                                                            share|improve this answer



                                                            share|improve this answer










                                                            answered Dec 12 '18 at 11:57









                                                            Galen IvanovGalen Ivanov

                                                            6,37711032




                                                            6,37711032























                                                                2















                                                                05AB1E (legacy), 33 27 26 bytes



                                                                Ç¥ε₂%U₂L<©ε®*₂%Xk'-žm:]øOWk


                                                                Uses the legacy version because there seems to be a bug when you want to modify/use the result after a nested map in the new 05AB1E version..



                                                                0-indexed output.



                                                                Try it online or verify all test cases.



                                                                Explanation:





                                                                Ç                        # ASCII values of the (implicit) input
                                                                ¥ # Deltas (differences between each pair)
                                                                ε # Map each delta to:
                                                                ₂% # Take modulo-26 of the delta
                                                                U # Pop and store it in variable `X`
                                                                ₂L< # Push a list in the range [0,25]
                                                                © # Store it in the register (without popping)
                                                                ε # Map each `y` to:
                                                                ®* # Multiply each `y` by the list [0,25] of the register
                                                                ₂% # And take modulo-26
                                                                # (We now have a list of size 26 in steps of `y` modulo-26)
                                                                Xk # Get the index of `X` in this inner list (-1 if not found)
                                                                '-₄: '# Replace the minus sign with "1000"
                                                                # (so -1 becomes 10001; others remain unchanged)
                                                                ] # Close both maps
                                                                ø # Zip; swapping rows/columns
                                                                O # Sum each
                                                                W # Get the smallest one (without popping the list)
                                                                k # Get the index of this smallest value in the list
                                                                # (and output the result implicitly)





                                                                share|improve this answer




























                                                                  2















                                                                  05AB1E (legacy), 33 27 26 bytes



                                                                  Ç¥ε₂%U₂L<©ε®*₂%Xk'-žm:]øOWk


                                                                  Uses the legacy version because there seems to be a bug when you want to modify/use the result after a nested map in the new 05AB1E version..



                                                                  0-indexed output.



                                                                  Try it online or verify all test cases.



                                                                  Explanation:





                                                                  Ç                        # ASCII values of the (implicit) input
                                                                  ¥ # Deltas (differences between each pair)
                                                                  ε # Map each delta to:
                                                                  ₂% # Take modulo-26 of the delta
                                                                  U # Pop and store it in variable `X`
                                                                  ₂L< # Push a list in the range [0,25]
                                                                  © # Store it in the register (without popping)
                                                                  ε # Map each `y` to:
                                                                  ®* # Multiply each `y` by the list [0,25] of the register
                                                                  ₂% # And take modulo-26
                                                                  # (We now have a list of size 26 in steps of `y` modulo-26)
                                                                  Xk # Get the index of `X` in this inner list (-1 if not found)
                                                                  '-₄: '# Replace the minus sign with "1000"
                                                                  # (so -1 becomes 10001; others remain unchanged)
                                                                  ] # Close both maps
                                                                  ø # Zip; swapping rows/columns
                                                                  O # Sum each
                                                                  W # Get the smallest one (without popping the list)
                                                                  k # Get the index of this smallest value in the list
                                                                  # (and output the result implicitly)





                                                                  share|improve this answer


























                                                                    2












                                                                    2








                                                                    2







                                                                    05AB1E (legacy), 33 27 26 bytes



                                                                    Ç¥ε₂%U₂L<©ε®*₂%Xk'-žm:]øOWk


                                                                    Uses the legacy version because there seems to be a bug when you want to modify/use the result after a nested map in the new 05AB1E version..



                                                                    0-indexed output.



                                                                    Try it online or verify all test cases.



                                                                    Explanation:





                                                                    Ç                        # ASCII values of the (implicit) input
                                                                    ¥ # Deltas (differences between each pair)
                                                                    ε # Map each delta to:
                                                                    ₂% # Take modulo-26 of the delta
                                                                    U # Pop and store it in variable `X`
                                                                    ₂L< # Push a list in the range [0,25]
                                                                    © # Store it in the register (without popping)
                                                                    ε # Map each `y` to:
                                                                    ®* # Multiply each `y` by the list [0,25] of the register
                                                                    ₂% # And take modulo-26
                                                                    # (We now have a list of size 26 in steps of `y` modulo-26)
                                                                    Xk # Get the index of `X` in this inner list (-1 if not found)
                                                                    '-₄: '# Replace the minus sign with "1000"
                                                                    # (so -1 becomes 10001; others remain unchanged)
                                                                    ] # Close both maps
                                                                    ø # Zip; swapping rows/columns
                                                                    O # Sum each
                                                                    W # Get the smallest one (without popping the list)
                                                                    k # Get the index of this smallest value in the list
                                                                    # (and output the result implicitly)





                                                                    share|improve this answer















                                                                    05AB1E (legacy), 33 27 26 bytes



                                                                    Ç¥ε₂%U₂L<©ε®*₂%Xk'-žm:]øOWk


                                                                    Uses the legacy version because there seems to be a bug when you want to modify/use the result after a nested map in the new 05AB1E version..



                                                                    0-indexed output.



                                                                    Try it online or verify all test cases.



                                                                    Explanation:





                                                                    Ç                        # ASCII values of the (implicit) input
                                                                    ¥ # Deltas (differences between each pair)
                                                                    ε # Map each delta to:
                                                                    ₂% # Take modulo-26 of the delta
                                                                    U # Pop and store it in variable `X`
                                                                    ₂L< # Push a list in the range [0,25]
                                                                    © # Store it in the register (without popping)
                                                                    ε # Map each `y` to:
                                                                    ®* # Multiply each `y` by the list [0,25] of the register
                                                                    ₂% # And take modulo-26
                                                                    # (We now have a list of size 26 in steps of `y` modulo-26)
                                                                    Xk # Get the index of `X` in this inner list (-1 if not found)
                                                                    '-₄: '# Replace the minus sign with "1000"
                                                                    # (so -1 becomes 10001; others remain unchanged)
                                                                    ] # Close both maps
                                                                    ø # Zip; swapping rows/columns
                                                                    O # Sum each
                                                                    W # Get the smallest one (without popping the list)
                                                                    k # Get the index of this smallest value in the list
                                                                    # (and output the result implicitly)






                                                                    share|improve this answer














                                                                    share|improve this answer



                                                                    share|improve this answer








                                                                    edited Dec 12 '18 at 20:14

























                                                                    answered Dec 12 '18 at 19:57









                                                                    Kevin CruijssenKevin Cruijssen

                                                                    36k554189




                                                                    36k554189























                                                                        2















                                                                        Python 3, 191 178 162 bytes



                                                                        Thanks everyone for all your tips! this is looking much more golflike.



                                                                        *w,=map(ord,input())
                                                                        a=
                                                                        for i in range(26):
                                                                        n=1;p=w[0]
                                                                        for c in w:
                                                                        while n<len(w)*26and p!=c:
                                                                        n+=1;p+=i;
                                                                        if p>122:p-=26
                                                                        a+=[n]
                                                                        print(a.index(min(a)))


                                                                        Try it online!



                                                                        And my original code if anyone's interested.



                                                                        Turns the word into a list of ASCII values, then iterates through step sizes 0 to 25, checking how many steps it takes to exhaust the list (there's a ceiling to stop infinite loops).



                                                                        Number of steps is added to the list a.



                                                                        After the big for loop, the index of the smallest value in a is printed. This is equal to the value of i (the step size) for that iteration of the loop, QED.






                                                                        share|improve this answer



















                                                                        • 1




                                                                          Hi & Welcome to PPCG! For starters, your posted byte count doesn't match that on TIO :) Now, for a couple of quick hints: range(26) is enough - you don't need to specify the start, since 0 is the default; a.append(n) could be a+=[n]; the first line would be shorter as map w=list(map(ord,input())), (actually with your current algorithm, in Py2 you could drop list(...) wrapping as well); avoid extra spacing/line breaks as much as possible (e.g., no need for newlines in oneliners: if p>122:p-=26)
                                                                          – Kirill L.
                                                                          Dec 12 '18 at 15:06






                                                                        • 1




                                                                          Also, that n>99 look suspicious, is that an arbitrary constant to break out of inifinite loop? Then it probably should be something like 26*len(w), as you never know, how large the input will be.
                                                                          – Kirill L.
                                                                          Dec 12 '18 at 15:07






                                                                        • 1




                                                                          BTW, you can still get rid of that list(...) in Py3 and also of one extra if: 165 bytes. Also, take a look at this tips topic, I'm sure you'll greatly improve your skills using advices from there!
                                                                          – Kirill L.
                                                                          Dec 12 '18 at 15:44






                                                                        • 1




                                                                          I'm not a python expert, but I think you can do while p!=c and n>len(w)*26: and get rid of that last if statement for -8 bytes.
                                                                          – Spitemaster
                                                                          Dec 12 '18 at 18:19






                                                                        • 2




                                                                          Although it looks terrible and goes against everything Python is, you can change n+=1 and p+=i on seperate lines to n+=1;p+=i on one.
                                                                          – nedla2004
                                                                          Dec 12 '18 at 18:24
















                                                                        2















                                                                        Python 3, 191 178 162 bytes



                                                                        Thanks everyone for all your tips! this is looking much more golflike.



                                                                        *w,=map(ord,input())
                                                                        a=
                                                                        for i in range(26):
                                                                        n=1;p=w[0]
                                                                        for c in w:
                                                                        while n<len(w)*26and p!=c:
                                                                        n+=1;p+=i;
                                                                        if p>122:p-=26
                                                                        a+=[n]
                                                                        print(a.index(min(a)))


                                                                        Try it online!



                                                                        And my original code if anyone's interested.



                                                                        Turns the word into a list of ASCII values, then iterates through step sizes 0 to 25, checking how many steps it takes to exhaust the list (there's a ceiling to stop infinite loops).



                                                                        Number of steps is added to the list a.



                                                                        After the big for loop, the index of the smallest value in a is printed. This is equal to the value of i (the step size) for that iteration of the loop, QED.






                                                                        share|improve this answer



















                                                                        • 1




                                                                          Hi & Welcome to PPCG! For starters, your posted byte count doesn't match that on TIO :) Now, for a couple of quick hints: range(26) is enough - you don't need to specify the start, since 0 is the default; a.append(n) could be a+=[n]; the first line would be shorter as map w=list(map(ord,input())), (actually with your current algorithm, in Py2 you could drop list(...) wrapping as well); avoid extra spacing/line breaks as much as possible (e.g., no need for newlines in oneliners: if p>122:p-=26)
                                                                          – Kirill L.
                                                                          Dec 12 '18 at 15:06






                                                                        • 1




                                                                          Also, that n>99 look suspicious, is that an arbitrary constant to break out of inifinite loop? Then it probably should be something like 26*len(w), as you never know, how large the input will be.
                                                                          – Kirill L.
                                                                          Dec 12 '18 at 15:07






                                                                        • 1




                                                                          BTW, you can still get rid of that list(...) in Py3 and also of one extra if: 165 bytes. Also, take a look at this tips topic, I'm sure you'll greatly improve your skills using advices from there!
                                                                          – Kirill L.
                                                                          Dec 12 '18 at 15:44






                                                                        • 1




                                                                          I'm not a python expert, but I think you can do while p!=c and n>len(w)*26: and get rid of that last if statement for -8 bytes.
                                                                          – Spitemaster
                                                                          Dec 12 '18 at 18:19






                                                                        • 2




                                                                          Although it looks terrible and goes against everything Python is, you can change n+=1 and p+=i on seperate lines to n+=1;p+=i on one.
                                                                          – nedla2004
                                                                          Dec 12 '18 at 18:24














                                                                        2












                                                                        2








                                                                        2







                                                                        Python 3, 191 178 162 bytes



                                                                        Thanks everyone for all your tips! this is looking much more golflike.



                                                                        *w,=map(ord,input())
                                                                        a=
                                                                        for i in range(26):
                                                                        n=1;p=w[0]
                                                                        for c in w:
                                                                        while n<len(w)*26and p!=c:
                                                                        n+=1;p+=i;
                                                                        if p>122:p-=26
                                                                        a+=[n]
                                                                        print(a.index(min(a)))


                                                                        Try it online!



                                                                        And my original code if anyone's interested.



                                                                        Turns the word into a list of ASCII values, then iterates through step sizes 0 to 25, checking how many steps it takes to exhaust the list (there's a ceiling to stop infinite loops).



                                                                        Number of steps is added to the list a.



                                                                        After the big for loop, the index of the smallest value in a is printed. This is equal to the value of i (the step size) for that iteration of the loop, QED.






                                                                        share|improve this answer















                                                                        Python 3, 191 178 162 bytes



                                                                        Thanks everyone for all your tips! this is looking much more golflike.



                                                                        *w,=map(ord,input())
                                                                        a=
                                                                        for i in range(26):
                                                                        n=1;p=w[0]
                                                                        for c in w:
                                                                        while n<len(w)*26and p!=c:
                                                                        n+=1;p+=i;
                                                                        if p>122:p-=26
                                                                        a+=[n]
                                                                        print(a.index(min(a)))


                                                                        Try it online!



                                                                        And my original code if anyone's interested.



                                                                        Turns the word into a list of ASCII values, then iterates through step sizes 0 to 25, checking how many steps it takes to exhaust the list (there's a ceiling to stop infinite loops).



                                                                        Number of steps is added to the list a.



                                                                        After the big for loop, the index of the smallest value in a is printed. This is equal to the value of i (the step size) for that iteration of the loop, QED.







                                                                        share|improve this answer














                                                                        share|improve this answer



                                                                        share|improve this answer








                                                                        edited Dec 13 '18 at 0:06

























                                                                        answered Dec 12 '18 at 14:23









                                                                        TerjerberTerjerber

                                                                        514




                                                                        514








                                                                        • 1




                                                                          Hi & Welcome to PPCG! For starters, your posted byte count doesn't match that on TIO :) Now, for a couple of quick hints: range(26) is enough - you don't need to specify the start, since 0 is the default; a.append(n) could be a+=[n]; the first line would be shorter as map w=list(map(ord,input())), (actually with your current algorithm, in Py2 you could drop list(...) wrapping as well); avoid extra spacing/line breaks as much as possible (e.g., no need for newlines in oneliners: if p>122:p-=26)
                                                                          – Kirill L.
                                                                          Dec 12 '18 at 15:06






                                                                        • 1




                                                                          Also, that n>99 look suspicious, is that an arbitrary constant to break out of inifinite loop? Then it probably should be something like 26*len(w), as you never know, how large the input will be.
                                                                          – Kirill L.
                                                                          Dec 12 '18 at 15:07






                                                                        • 1




                                                                          BTW, you can still get rid of that list(...) in Py3 and also of one extra if: 165 bytes. Also, take a look at this tips topic, I'm sure you'll greatly improve your skills using advices from there!
                                                                          – Kirill L.
                                                                          Dec 12 '18 at 15:44






                                                                        • 1




                                                                          I'm not a python expert, but I think you can do while p!=c and n>len(w)*26: and get rid of that last if statement for -8 bytes.
                                                                          – Spitemaster
                                                                          Dec 12 '18 at 18:19






                                                                        • 2




                                                                          Although it looks terrible and goes against everything Python is, you can change n+=1 and p+=i on seperate lines to n+=1;p+=i on one.
                                                                          – nedla2004
                                                                          Dec 12 '18 at 18:24














                                                                        • 1




                                                                          Hi & Welcome to PPCG! For starters, your posted byte count doesn't match that on TIO :) Now, for a couple of quick hints: range(26) is enough - you don't need to specify the start, since 0 is the default; a.append(n) could be a+=[n]; the first line would be shorter as map w=list(map(ord,input())), (actually with your current algorithm, in Py2 you could drop list(...) wrapping as well); avoid extra spacing/line breaks as much as possible (e.g., no need for newlines in oneliners: if p>122:p-=26)
                                                                          – Kirill L.
                                                                          Dec 12 '18 at 15:06






                                                                        • 1




                                                                          Also, that n>99 look suspicious, is that an arbitrary constant to break out of inifinite loop? Then it probably should be something like 26*len(w), as you never know, how large the input will be.
                                                                          – Kirill L.
                                                                          Dec 12 '18 at 15:07






                                                                        • 1




                                                                          BTW, you can still get rid of that list(...) in Py3 and also of one extra if: 165 bytes. Also, take a look at this tips topic, I'm sure you'll greatly improve your skills using advices from there!
                                                                          – Kirill L.
                                                                          Dec 12 '18 at 15:44






                                                                        • 1




                                                                          I'm not a python expert, but I think you can do while p!=c and n>len(w)*26: and get rid of that last if statement for -8 bytes.
                                                                          – Spitemaster
                                                                          Dec 12 '18 at 18:19






                                                                        • 2




                                                                          Although it looks terrible and goes against everything Python is, you can change n+=1 and p+=i on seperate lines to n+=1;p+=i on one.
                                                                          – nedla2004
                                                                          Dec 12 '18 at 18:24








                                                                        1




                                                                        1




                                                                        Hi & Welcome to PPCG! For starters, your posted byte count doesn't match that on TIO :) Now, for a couple of quick hints: range(26) is enough - you don't need to specify the start, since 0 is the default; a.append(n) could be a+=[n]; the first line would be shorter as map w=list(map(ord,input())), (actually with your current algorithm, in Py2 you could drop list(...) wrapping as well); avoid extra spacing/line breaks as much as possible (e.g., no need for newlines in oneliners: if p>122:p-=26)
                                                                        – Kirill L.
                                                                        Dec 12 '18 at 15:06




                                                                        Hi & Welcome to PPCG! For starters, your posted byte count doesn't match that on TIO :) Now, for a couple of quick hints: range(26) is enough - you don't need to specify the start, since 0 is the default; a.append(n) could be a+=[n]; the first line would be shorter as map w=list(map(ord,input())), (actually with your current algorithm, in Py2 you could drop list(...) wrapping as well); avoid extra spacing/line breaks as much as possible (e.g., no need for newlines in oneliners: if p>122:p-=26)
                                                                        – Kirill L.
                                                                        Dec 12 '18 at 15:06




                                                                        1




                                                                        1




                                                                        Also, that n>99 look suspicious, is that an arbitrary constant to break out of inifinite loop? Then it probably should be something like 26*len(w), as you never know, how large the input will be.
                                                                        – Kirill L.
                                                                        Dec 12 '18 at 15:07




                                                                        Also, that n>99 look suspicious, is that an arbitrary constant to break out of inifinite loop? Then it probably should be something like 26*len(w), as you never know, how large the input will be.
                                                                        – Kirill L.
                                                                        Dec 12 '18 at 15:07




                                                                        1




                                                                        1




                                                                        BTW, you can still get rid of that list(...) in Py3 and also of one extra if: 165 bytes. Also, take a look at this tips topic, I'm sure you'll greatly improve your skills using advices from there!
                                                                        – Kirill L.
                                                                        Dec 12 '18 at 15:44




                                                                        BTW, you can still get rid of that list(...) in Py3 and also of one extra if: 165 bytes. Also, take a look at this tips topic, I'm sure you'll greatly improve your skills using advices from there!
                                                                        – Kirill L.
                                                                        Dec 12 '18 at 15:44




                                                                        1




                                                                        1




                                                                        I'm not a python expert, but I think you can do while p!=c and n>len(w)*26: and get rid of that last if statement for -8 bytes.
                                                                        – Spitemaster
                                                                        Dec 12 '18 at 18:19




                                                                        I'm not a python expert, but I think you can do while p!=c and n>len(w)*26: and get rid of that last if statement for -8 bytes.
                                                                        – Spitemaster
                                                                        Dec 12 '18 at 18:19




                                                                        2




                                                                        2




                                                                        Although it looks terrible and goes against everything Python is, you can change n+=1 and p+=i on seperate lines to n+=1;p+=i on one.
                                                                        – nedla2004
                                                                        Dec 12 '18 at 18:24




                                                                        Although it looks terrible and goes against everything Python is, you can change n+=1 and p+=i on seperate lines to n+=1;p+=i on one.
                                                                        – nedla2004
                                                                        Dec 12 '18 at 18:24


















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