问题
I am working on the following Python list exercise from codingbat.com:
Given an array of ints, return the sum of the first 2 elements in the array. If the array length is less than 2, just sum up the elements that exist, returning 0 if the array is length 0. Examples:
sum2([1, 2, 3]) → 3 sum2([1, 1]) → 2 sum2([1, 1, 1, 1]) → 2
My solution below works:
def sum2(nums):
if len(nums)>=2:
return nums[0] + nums[1]
elif len(nums)==1:
return nums[0]
return 0
But I wonder if there's any way to solve the problem with fewer conditional statements.
回答1:
There is. Two elements of the solution - builtin function sum and lists's slices:
>>> sum([1,2,3][:2])
3
>>> sum([1,1,1,1][:2])
2
>>> sum([1,1][:2])
2
>>> sum([1][:2])
1
>>> sum([][:2])
0
回答2:
If you can't use sum, one possible solution uses exceptions:
totalsum = 0
try:
totalsum += nums[0]
totalsum += nums[1]
except IndexError:
pass
return totalsum
Catch the error and short-circuit the summation if an element doesn't exist. Easier to ask forgiveness than permission, as they say.
回答3:
try this:
def sum2(nums):
if len(nums) == 1:
return nums[0]
else:
return sum(nums [:2])
来源:https://stackoverflow.com/questions/24826842/summing-first-2-elements-in-a-python-list-when-the-length-of-the-list-is-unknown