Implemented solutions 5-7 in ipython.

2018-02-03 20:57:46 +01:00
parent 3f5ee98ee8
commit e5685b8f07
6 changed files with 1145 additions and 0 deletions
--- a/ipython/EulerProblem005.ipynb
+++ b/ipython/EulerProblem005.ipynb
@@ -0,0 +1,130 @@
+{
+ "cells": [
+  {
+   "cell_type": "markdown",
+   "metadata": {},
+   "source": [
+    "# Euler Problem\n",
+    "\n",
+    "2520 is the smallest number that can be divided by each of the numbers from 1 to 10 without any remainder.\n",
+    "\n",
+    "What is the smallest positive number that is evenly divisible by all of the numbers from 1 to 20?\n",
+    "\n"
+   ]
+  },
+  {
+   "cell_type": "markdown",
+   "metadata": {},
+   "source": [
+    "My easiest guess is to multiply all prime numbers till the number."
+   ]
+  },
+  {
+   "cell_type": "code",
+   "execution_count": 1,
+   "metadata": {
+    "collapsed": true
+   },
+   "outputs": [],
+   "source": [
+    "def get_primes_smaller(number):\n",
+    "    primes = []\n",
+    "    prospects = [n for n in range(2, number)]\n",
+    "    while prospects:\n",
+    "        p = prospects[0]\n",
+    "        prospects = [x for x in prospects if x % p != 0]\n",
+    "        primes.append(p)\n",
+    "    return primes"
+   ]
+  },
+  {
+   "cell_type": "code",
+   "execution_count": 2,
+   "metadata": {
+    "collapsed": false
+   },
+   "outputs": [
+    {
+     "name": "stdout",
+     "output_type": "stream",
+     "text": [
+      "210\n"
+     ]
+    }
+   ],
+   "source": [
+    "from operator import mul\n",
+    "from functools import reduce\n",
+    "\n",
+    "def get_number_which_is_divisible_by_all_numbers_from_one_to(n):\n",
+    "    ps= get_primes_smaller(n + 1)\n",
+    "    return reduce(mul, ps, 1)\n",
+    "\n",
+    "print(get_number_which_is_divisible_by_all_numbers_from_one_to(10))"
+   ]
+  },
+  {
+   "cell_type": "markdown",
+   "metadata": {},
+   "source": [
+    "That obviously didn't work. The reason is that the same prime can occur multiple times in the factorization of a divisor. For example $2^{3} = 8$. We can always brute force of course. We do a smart brute force and only check multiples from the product of primes because this factor must be part of the solution."
+   ]
+  },
+  {
+   "cell_type": "code",
+   "execution_count": 3,
+   "metadata": {
+    "collapsed": false
+   },
+   "outputs": [
+    {
+     "name": "stdout",
+     "output_type": "stream",
+     "text": [
+      "232792560\n"
+     ]
+    }
+   ],
+   "source": [
+    "def is_divisible_by_numbers_smaller_or_equal(number, maximum_number):\n",
+    "    for n in range(2, maximum_number + 1):\n",
+    "        if number % n != 0:\n",
+    "            return False\n",
+    "    return True\n",
+    "\n",
+    "def get_number_which_is_divisible_by_all_numbers_from_one_to(n):\n",
+    "    ps = get_primes_smaller(n + 1)\n",
+    "    factor = reduce(mul, ps, 1)\n",
+    "    multiples_of_factor = factor\n",
+    "    while True:\n",
+    "        if is_divisible_by_numbers_smaller_or_equal(multiples_of_factor, n):\n",
+    "            return multiples_of_factor\n",
+    "        multiples_of_factor += factor\n",
+    "\n",
+    "assert(get_number_which_is_divisible_by_all_numbers_from_one_to(10) == 2520)\n",
+    "print(get_number_which_is_divisible_by_all_numbers_from_one_to(20))"
+   ]
+  }
+ ],
+ "metadata": {
+  "kernelspec": {
+   "display_name": "Python 3",
+   "language": "python",
+   "name": "python3"
+  },
+  "language_info": {
+   "codemirror_mode": {
+    "name": "ipython",
+    "version": 3
+   },
+   "file_extension": ".py",
+   "mimetype": "text/x-python",
+   "name": "python",
+   "nbconvert_exporter": "python",
+   "pygments_lexer": "ipython3",
+   "version": "3.5.4"
+  }
+ },
+ "nbformat": 4,
+ "nbformat_minor": 0
+}