我应该写一个代码来合并排序列表,我在第二个函数中遇到错误:
TypeError: object of type 'NoneType' has no len()
我的代码是:
def merge(lst1, lst2):
""" merging two ordered lists using
the three pointer algorithm """
n1 = len(lst1)
n2 = len(lst2)
lst3 = [0 for i in range(n1 + n2)] # alocates a new list
i = j = k = 0 # simultaneous assignment
while (i < n1 and j < n2):
if (lst1[i] <= lst2[j]):
lst3[k] = lst1[i]
i = i +1
else:
lst3[k] = lst2[j]
j = j + 1
k = k + 1 # incremented at each iteration
lst3[k:] = lst1[i:] + lst2[j:] # append remaining elements
def multi_merge_v3(lst_of_lsts):
m = len(lst_of_lsts)
merged = []
for i in range(m):
merged= merge((merged),(lst_of_lsts)[i])
return(merged)
这个错误是什么意思?
我应该在代码中修复什么?
答案 0 :(得分:2)
您没有从函数merge()返回任何内容,因此默认情况下它会返回您分配给merged的无。因此,在第二次致电merge()期间,您将会len(None)。
for i in range(m):
#Assigning None here
merged = merge(merged, lst_of_lsts[i])
return(merged)
所以,在该函数结束时:
return lst3
答案 1 :(得分:0)
这里简单介绍了排序列表合并问题。
l1 = [1,12,15,26,38]
l2 = [2,13,17,30,45,50]
# merged list
ml= [0]*(len(l1)+len(l2))
i1 = i2 = 0
for i in range(len(l1)+len(l2)):
if i1 == len(l1):
ml = ml[:i] + l2[i2:]
break
if i2 == len(l2):
ml = ml[:i] + l1[i1:]
break
if l1[i1] < l2[i2]:
ml[i] = l1[i1]
i1 = i1 + 1
else:
ml[i] = l2[i2]
i2 = i2 + 1
print ml
答案 2 :(得分:0)
这是一个选项:依赖Python的内置sorted函数:
merged = sorted(lst1 + lst2)
答案 3 :(得分:0)
以下是另一个答案:使用&#34;合并&#34; heapq的功能:
import heapq
merged = heapq.merge(lst1, lst2)
这非常有效,因为合并期望lst1和lst2已经排序,因此它只会查看第一个元素。
请注意,merge还允许多个(已排序的)参数:
merged = heapq.merge(lst1, lst2, lst3, lst4)
此时,merged实际上本身就是一个迭代器。要获得实际列表,请使用:
merged = list(heapq.merge(lst1, lst2))
请记住:使用Python,包括&#34;电池&#34;。