day 10 part 2
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2 changed files with 73 additions and 67 deletions
102
day10/2.py
102
day10/2.py
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@ -1,77 +1,47 @@
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from tqdm import tqdm
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with open(r'day10/input.txt', 'r') as input:
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lines = list(map(lambda x: list(map(lambda y: int(y),x.split(','))),input.read().split('\n')[:-1]))
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lines = input.read().split('\n')[:-1]
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def surface(a,b):
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return (abs(a[0]-b[0])+1)*(abs(a[1]-b[1])+1)
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def add_joltage(config,button):
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return tuple(config[i]+1 if i in button else config[i] for i in range(len(config)))
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dim = [100000,100000]
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GLOBAL_MIN_PUSH = [10**6 for _ in lines]
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hotspots = set()
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def find_min_tries(target,buttons,current,current_total,GLOBAL_MIN_PUSH,i):
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border = set()
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# On élimine les cas triviaux.
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if current==target and GLOBAL_MIN_PUSH[i] > current_total :
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GLOBAL_MIN_PUSH[i] = current_total
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return None
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if buttons == []:
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return None
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if current_total >= GLOBAL_MIN_PUSH[i]:
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return None
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for i in range(len(lines)):
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hotspots.add(lines[i][0])
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hotspots.add(lines[i][0]-1)
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hotspots.add(lines[i][0]+1)
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hotspots.add(lines[i][1])
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hotspots.add(lines[i][1]-1)
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hotspots.add(lines[i][1]+1)
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j = (i+1)%len(lines)
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if lines[i][0] == lines[j][0]:
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sign = 1 if lines[i][1] <= lines[j][1] else -1
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for x in range(lines[i][1],lines[j][1],sign):
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border.add((lines[i][0],x))
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else:
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sign = 1 if lines[i][0] <= lines[j][0] else -1
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for x in range(lines[i][0],lines[j][0],sign):
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border.add((x,lines[i][1]))
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# On compte combien de fois on peut presser le bouton en cours
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max_push = 99999
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for pos in buttons[0]:
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max_push = min(max_push,target[pos]-current[pos])
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print(hotspots)
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# On cherche une solution pour chaque nombre de pressions
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pushes = 0
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new = current
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for _ in range(max_push+1):
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find_min_tries(target,buttons[1:],new,current_total+pushes,GLOBAL_MIN_PUSH,i)
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new=add_joltage(new,buttons[0])
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pushes+=1
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return None
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def is_point_inside(a):
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# up, down, left, right
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ranges = [[0,a[1]],[a[1],dim[1]],[a[0],dim[0]],[0,a[0]]]
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for j in range(4):
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count = 0
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last = False
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for i in hotspots:
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if i < ranges[j][0] or i > ranges[j][1]: continue
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coord = (a[0],i) if j < 2 else (i,a[1])
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if coord in border: last = True
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elif last and coord not in border:
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last = False
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count +=1
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if count%2 == 0:
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return False
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return True
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joltage = []
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buttons = []
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def is_rect_inside(a,b):
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precision = 1000
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upper_left = (min(a[0],b[0]),min(a[1],b[1]))
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lower_right = (max(a[0],b[0]),max(a[1],b[1]))
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upper_right = (max(a[0],b[0]),min(a[1],b[1]))
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lower_left = (min(a[0],b[0]),max(a[1],b[1]))
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upper_border = (range(upper_left[0],upper_right[1],precision),[upper_left[1]])
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lower_border = (range(lower_left[0],lower_right[0],precision),[lower_left[1]])
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right_border = ([lower_right[0]], range(upper_right[1],lower_right[1],precision))
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left_border = ([lower_left[0]],range(upper_left[1],lower_left[0],precision))
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for line in lines:
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split_line = line.split(' ')
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buttons.append(list(map(lambda x: set(map(int,(x[1:-1]).split(','))),split_line[1:-1])))
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joltage.append(tuple(map(lambda x:int(x),split_line[-1][1:-1].split(','))))
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for border_2 in [upper_border,lower_border,left_border,right_border]:
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for i in border_2[0]:
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for j in border_2[1]:
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if (i,j) not in border and not is_point_inside((i,j)):
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return False
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return True
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best = surface(lines[0],lines[1])
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for i in range(len(lines)):
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print(i,len(lines))
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for j in range(i):
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if surface(lines[i],lines[j]) > best and is_rect_inside(lines[i],lines[j]):
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best = max(best,surface(lines[i],lines[j]))
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print("new best found")
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print(best)
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for i in tqdm(range(len(lines))):
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find_min_tries(joltage[i],buttons[i],tuple(0 for _ in joltage[i]),0,GLOBAL_MIN_PUSH,i)
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print(sum(GLOBAL_MIN_PUSH))
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36
day10/2linearopt.py
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36
day10/2linearopt.py
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@ -0,0 +1,36 @@
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from typing import final
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import numpy as np
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from scipy.optimize import LinearConstraint, milp
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with open(r'day10/input.txt', 'r') as input:
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lines = input.read().split('\n')[:-1]
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joltage = []
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buttons = []
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for line in lines:
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split_line = line.split(' ')
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buttons.append(list(map(lambda x: set(map(int,(x[1:-1]).split(','))),split_line[1:-1])))
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joltage.append(tuple(map(lambda x:int(x),split_line[-1][1:-1].split(','))))
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finalsum = 0
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for i,buttonlist in enumerate(buttons):
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c = np.array([1]*len(buttonlist))
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A_array = []
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BL_array = []
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for j in range(len(joltage[i])):
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array = []
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for button in buttonlist:
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array.append(1 if j in button else 0)
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A_array.append(array)
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BL_array.append(joltage[i][j])
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A = np.array(A_array)
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b_l = np.array(BL_array)
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b_u = np.array(BL_array)
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constraints = LinearConstraint(A,b_l,b_u)
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integrality = np.ones_like(c)
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res = milp(c=c, constraints=constraints, integrality=integrality)
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print(res.x)
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finalsum += sum(res.x)
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print(finalsum)
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