I thought about it for 15 mins, but couldn’t think of any mathematical tricks. I thought of lots of minor tricks, like comparing the number to the result and not adding any more multiplications if it’s over, things that would cut 10%-20% here and there, but nothing which fundamentally changes big O running time.
For reference, here’s my solution for part 2 in smalltalk. I just generated every possible permutation and tested it. Part 1 is similar, mainly I just used bit magic to avoid generating permutations.
(even if you haven’t used it, smalltalk is fairly readable, everything is left to right, except in parens)
day7p2: in
| input |
input := in lines collect: [ :l | (l splitOn: '\:|\s' asRegex) reject: #isEmpty thenCollect: #asInteger ].
^ (input select: [ :line |
(#(1 2 3) permutationsWithRepetitionsOfSize: line size - 2)
anySatisfy: [ :num | (self d7addmulcat: line ops: num) = (line at: 1)]
]) sum: #first.
d7addmulcat: nums ops: ops
| final |
final := nums at: 2.
ops withIndexDo: [ :op :i |
op = 1 ifTrue: [ final := final * (nums at: i + 2) ].
op = 2 ifTrue: [ final := final + (nums at: i + 2) ].
op = 3 ifTrue: [ final := (final asString, (nums at: i+2) asString) asInteger ]
].
^ final
I don’t entirely see how, you still need every possible combination of the left side to see what they would become. Plus addition and multiplication are order independent anyway
The point is to prune away search space as early as possible. If the rightmost operand is 5, say, and the answer ends in a 7, then the rightmost operator cannot be anything other than plus. This is a deduction you can’t make going left to right. Remember that in this problem the usual order of operations does not apply.
I actually did this. It did not end up being any faster than the brute-force solution since it seems to only catch the easy cases
Perhaps your implementation continues the search longer than necessary? I got curious and tried it myself. Runtime went from 0.599s (brute force) to 0.017s.