HackerTrans
TopNewTrendsCommentsPastAskShowJobs

clangcmp

no profile record

comments

clangcmp
·5 năm trước·discuss
They did. They called it Newton's series
clangcmp
·5 năm trước·discuss
Disappointing, did not see the extremely easy and quite efficient method of calculating e through continued fractions.

  S =[2,1,2] 
  T =0

  for P in range(200):
    S += [1,1,(4 + 2*P)]

  for x in range(len(S)-1):
    T = 1 / (T + S[-(x+1)])

  print(S[0] + T) # value of e