diff options
| author | William Carroll <wpcarro@gmail.com> | 2020-11-14T15·28+0000 |
|---|---|---|
| committer | William Carroll <wpcarro@gmail.com> | 2020-11-14T15·28+0000 |
| commit | a0e9e2b310697c1d14093f9df354284689c332ea (patch) | |
| tree | 3cf5d3ff9aff6ee312c205b2c477f554370d039f /scratch/facebook/moderate/unsorted-substring.py | |
| parent | 48fde5f27838b63d33fe69eb5f13f5d54314555d (diff) | |
Solve unsorted-substring a second time
This solution operates in O(n) time instead of O(n*log(n)) time, which surprisingly isn't *that* big of a difference... Consider a size of n of 10M... 1) ~10s 2) ~0.5s So, yes, the O(n*log(n)) will take 100x longer to complete, but for an enormous input size of 10M elements, it can still complete in under a minute. The difference between that and the second, faster, algorithm, is just 9s.
Diffstat (limited to 'scratch/facebook/moderate/unsorted-substring.py')
| -rw-r--r-- | scratch/facebook/moderate/unsorted-substring.py | 56 |
1 files changed, 51 insertions, 5 deletions
diff --git a/scratch/facebook/moderate/unsorted-substring.py b/scratch/facebook/moderate/unsorted-substring.py index bc2229030fbd..de7326b05822 100644 --- a/scratch/facebook/moderate/unsorted-substring.py +++ b/scratch/facebook/moderate/unsorted-substring.py @@ -2,6 +2,10 @@ # the starting and ending integers that, if their elements were sorted, the # entire array would be sorted. +################################################################################ +# First Attempt +################################################################################ + def unsorted_substring(xs): ys = xs[:]; ys.sort() m = 0 @@ -14,8 +18,50 @@ def unsorted_substring(xs): n -= 1 return m, n -print(unsorted_substring([1,2,4,7,10,11,7,12,6,7,16,18,19])) -print(unsorted_substring([1,2,3,4])) -print(unsorted_substring([4,3,2,1])) -print(unsorted_substring([1,3,2,4])) -print(unsorted_substring([2,1,3,4])) +################################################################################ +# Second Attempt +################################################################################ + +def unsorted_substring_2(xs): + beg = 1 + while xs[beg - 1] <= xs[beg]: + beg += 1 + if beg >= len(xs): + return -1, -1 + end = len(xs) - 2 + while xs[end + 1] >= xs[end]: + end -= 1 + + min_mid = xs[beg] + max_mid = xs[beg] + i = beg + 1 + while i <= end: + min_mid = min(min_mid, xs[i]) + max_mid = max(max_mid, xs[i]) + i += 1 + + # beg -= 1 until max(lhs) <= min(mid) + while beg - 1 >= 0 and xs[beg - 1] >= min_mid: + beg -= 1 + + # end += 1 while max(mid) <= min(rhs) + while end + 1 < len(xs) and max_mid >= xs[end + 1]: + end += 1 + return beg, end + +################################################################################ +# Tests +################################################################################ + +xs = [ + [1,2,4,7,10,11,7,12,6,7,16,18,19], + [1,2,3,4], + [4,3,2,1], + [1,3,2,4], + [2,1,3,4], +] + +for x in xs: + print("Testing: {}".format(x)) + print("1) {}".format(unsorted_substring(x))) + print("2) {}".format(unsorted_substring_2(x))) |