Python代码,攒点人品,有想法评论留言哈~
第一题:
采用数组来做,两层循环, 正确率100%
import sys n, m = input().split() anpai = [0 for i in range(24)] for i in range(int(n)): A, L, C = input().split() C = int(C) flag = 0 # 记录该时间端是否满员 for j in range(int(A), int(L)): if(anpai[j] + C > int(m)): flag = 1 break if flag == 0: for j in range(int(A), int(L)): anpai[j] += C for i in range(24): print(anpai[i], end=' ')
第二题:
对于无效模块,采用数组,判断是否出现过来数个数
对于循环模块,采用递归,不断试路线来解决
正确率88%,应该是没有考虑分数为负值的情况,可惜了
import sys
m = int(input())
n = int(input())
num = {}
have = []
for i in range(n):
son, fat = input().split()
#----将出现的加入进去
if son not in have: have.append(son)
if fat not in have: have.append(fat)
# ---------
if son in num:
num[son].append(fat)
else:
num[son] = [fat]
NoUseNum = m - len(have)
CircleNum = 0
for son in num:
# 对每个数字的依赖进行循环,并且不断的跳入循环,直到走到只有一个数组或发现循环
stack = [son] # 走入他的依赖,就将他放入栈
stackTimes = [len(num[son])] # 维护一个依赖列表的数量,确保将所有依赖都走一遍
break2 = False
while sum(stackTimes) != 0:
if stackTimes[-1]-1 >= 0:
path = num[stack[-1]][stackTimes[-1]-1]
if path in stack:
break2 = True
CircleNum = 1
break
stack.append(path)
if path not in num:
stackTimes.append(0)
else:
stackTimes.append(len(num[path]))
else:
stackTimes.pop()
stack.pop()
stackTimes[-1] -= 1
if break2: break
print(int(10 - NoUseNum - 2 * CircleNum)) 
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