Solved 2024/11 P1

2024/11/11.md

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+## \-\-- Day 11: Plutonian Pebbles \-\--
+
+The ancient civilization on [Pluto](/2019/day/20) was known for its
+ability to manipulate spacetime, and while The Historians explore their
+infinite corridors, you\'ve noticed a strange set of physics-defying
+stones.
+
+At first glance, they seem like normal stones: they\'re arranged in a
+perfectly *straight line*, and each stone has a *number* engraved on it.
+
+The strange part is that every time you
+blink, the stones
+*change*.
+
+Sometimes, the number engraved on a stone changes. Other times, a stone
+might *split in two*, causing all the other stones to shift over a bit
+to make room in their perfectly straight line.
+
+As you observe them for a while, you find that the stones have a
+consistent behavior. Every time you blink, the stones each
+*simultaneously* change according to the *first applicable rule* in this
+list:
+
+-   If the stone is engraved with the number `0`, it is replaced by a
+    stone engraved with the number `1`.
+-   If the stone is engraved with a number that has an *even* number of
+    digits, it is replaced by *two stones*. The left half of the digits
+    are engraved on the new left stone, and the right half of the digits
+    are engraved on the new right stone. (The new numbers don\'t keep
+    extra leading zeroes: `1000` would become stones `10` and `0`.)
+-   If none of the other rules apply, the stone is replaced by a new
+    stone; the old stone\'s number *multiplied by 2024* is engraved on
+    the new stone.
+
+No matter how the stones change, their *order is preserved*, and they
+stay on their perfectly straight line.
+
+How will the stones evolve if you keep blinking at them? You take a note
+of the number engraved on each stone in the line (your puzzle input).
+
+If you have an arrangement of five stones engraved with the numbers
+`0 1 10 99 999` and you blink once, the stones transform as follows:
+
+-   The first stone, `0`, becomes a stone marked `1`.
+-   The second stone, `1`, is multiplied by 2024 to become `2024`.
+-   The third stone, `10`, is split into a stone marked `1` followed by
+    a stone marked `0`.
+-   The fourth stone, `99`, is split into two stones marked `9`.
+-   The fifth stone, `999`, is replaced by a stone marked `2021976`.
+
+So, after blinking once, your five stones would become an arrangement of
+seven stones engraved with the numbers `1 2024 1 0 9 9 2021976`.
+
+Here is a longer example:
+
+    Initial arrangement:
+    125 17
+
+    After 1 blink:
+    253000 1 7
+
+    After 2 blinks:
+    253 0 2024 14168
+
+    After 3 blinks:
+    512072 1 20 24 28676032
+
+    After 4 blinks:
+    512 72 2024 2 0 2 4 2867 6032
+
+    After 5 blinks:
+    1036288 7 2 20 24 4048 1 4048 8096 28 67 60 32
+
+    After 6 blinks:
+    2097446912 14168 4048 2 0 2 4 40 48 2024 40 48 80 96 2 8 6 7 6 0 3 2
+
+In this example, after blinking six times, you would have `22` stones.
+After blinking 25 times, you would have `55312` stones!
+
+Consider the arrangement of stones in front of you. *How many stones
+will you have after blinking 25 times?*
+
+Your puzzle answer was `211306`.
+
+The first half of this puzzle is complete! It provides one gold star: \*
+
+## \-\-- Part Two \-\-- {#part2}
+
+The Historians sure are taking a long time. To be fair, the infinite
+corridors *are* very large.
+
+*How many stones would you have after blinking a total of 75 times?*
+
+Answer:
+
+Although it hasn\'t changed, you can still [get your puzzle
+input](11/input).
+

2024/11/solution.py

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+#!/bin/python3
+import sys,time,re
+from pprint import pprint
+from collections import deque
+sys.path.insert(0, '../../')
+from fred import list2int,get_re,nprint,lprint,loadFile
+start_time = time.time()
+
+input_f = 'test'
+
+part = 1
+#########################################
+#                                       #
+#              Part 1                   #
+#                                       #
+#########################################
+
+def rule1(number:int):
+    if number == 0:
+        return 1  
+    else:
+        print('Number not 0, why are you here')
+
+def rule2(number):
+    # Convert the number to a string
+    num_str = str(number)  
+    length = len(num_str)
+    
+    # Calculate the split index
+    middle = length // 2
+
+    # Split the number into two parts
+    left_part = num_str[:middle]
+    right_part = num_str[middle:]
+    #print(left_part,right_part)
+
+    return int(left_part), int(right_part)
+
+def part1(input_f):
+    instructions = []
+    with open(input_f) as file:
+        instructions = list2int(file.readline().strip().split(' '))
+    new_inst = []
+    for x in range(25):
+        for idx,inst in enumerate(instructions):
+
+            # Rule 1
+            if inst == 0:
+                new_inst.append(1)
+            else:
+                # Rule 2
+                t = list(str(inst))
+                if len(t) % 2 == 0:
+                    new_inst += rule2(inst)
+                else:
+                    # Rule 3
+                    new_inst.append(instructions[idx] * 2024)
+        instructions = new_inst
+        new_inst = []
+    
+    print(len(instructions)) 
+
+start_time = time.time()
+part1(input_f)
+print("--- %s seconds ---" % (time.time() - start_time))
+#########################################
+#                                       #
+#              Part 2                   #
+#                                       #
+#########################################
+
+def part2(input_f):
+    dq = []
+    with open(input_f) as file:
+        dq = deque(file.readline().strip().split(' '))
+    new_inst = deque([])
+
+    for r in range(75):
+        i = 0
+        while_time = time.time()
+
+        while i < len(dq):
+            if dq[i] == 0:
+                # Rule 1
+                new_inst.append(1)
+            else:
+                # Rule 2
+                if len(str(dq[i])) % 2 == 0:
+
+                    x = rule2(dq[i])
+                    new_inst.append(x[0])
+                    new_inst.append(x[1])
+                    
+                else:
+                    # Rule 3
+                    new_inst.append(int(dq[i]) * 2024)
+            i += 1
+ 
+        dq = new_inst
+        new_inst = deque([])
+        print(r,len(dq),"--- %s seconds ---" % (time.time() - while_time))
+
+        #print()
+    print(len(dq)) 
+
+start_time = time.time()
+part2(input_f)
+print("--- %s seconds ---" % (time.time() - start_time))