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84 lines
2.7 KiB
Lua
84 lines
2.7 KiB
Lua
--ProjectEuler/lua/Problem14.lua
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--Matthew Ellison
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-- Created: 02-07-19
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--Modified: 03-28-19
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--[[
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The following iterative sequence is defined for the set of positive integers:
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n → n/2 (n is even)
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n → 3n + 1 (n is odd)
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Which starting number, under one million, produces the longest chain?
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]]
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--All of my requires, unless otherwise listed, can be found at https://bitbucket.org/Mattrixwv/luaClasses
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--[[
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Copyright (C) 2019 Matthew Ellison
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This program is free software: you can redistribute it and/or modify
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it under the terms of the GNU Lesser General Public License as published by
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the Free Software Foundation, either version 3 of the License, or
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(at your option) any later version.
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This program is distributed in the hope that it will be useful,
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but WITHOUT ANY WARRANTY; without even the implied warranty of
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MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
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GNU Lesser General Public License for more details.
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You should have received a copy of the GNU Lesser General Public License
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along with this program. If not, see <https://www.gnu.org/licenses/>.
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]]
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require "Stopwatch"
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timer = Stopwatch:create();
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timer:start();
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TOP_NUM = 1000000 --The largest number that you will check against the chain
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--This function returns a table of numbers created by the chain
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function getChain(startNum)
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--Put the starting number in the list
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local chain = {};
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chain[#chain+1] = startNum;
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--Starting with the current number perform the correct opperations on the numbers until that number reaches 1
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while(startNum > 1) do
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--Determine if the number is odd or even and perform the correct operations and add the new number to the list
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if((startNum % 2) == 0) then
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startNum = startNum / 2;
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else
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startNum = (3 * startNum) + 1;
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end
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--Add the new number to the chain
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chain[#chain+1] = startNum;
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end
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--Return the list
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return chain;
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end
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--Setup your variables
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local largestChain = {};
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--Start at 1 and run up to TOP_NUM checking how long the chain is when started with each number
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for startingNumber=1,TOP_NUM do
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local currentChain = getChain(startingNumber);
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--If the new chain is longer than the current longest chain replace it
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if(#currentChain > #largestChain) then
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for location=1,#currentChain do
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largestChain[location] = currentChain[location];
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end
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end
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end
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timer:stop();
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--Print the results
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print("The longest chain with a starting number < " .. TOP_NUM .. " starts with " .. largestChain[1] .. " with a length of " .. #largestChain);
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print("It took " .. timer:getSeconds() .. " seconds to run this algorithm")
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--[[Results:
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The longest chain with a starting number < 1000000 starts with 837799 with a length of 525
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It took 13.704 seconds to run this algorithm
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]]
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