如果我以列表列表的形式给出完整的数字集,并且我想知道它们可以在给定范围[A,B]内形成多少(有效)整数,我可以使用什么算法来有效地执行它?
例如,给定一个数字列表(包含重复和零)list = {5,3,3,2,0,0},我想知道在[A,B] = [范围内可以形成多少个整数20,400]包容性.例如,在这种情况下,20,23,25,30,32,33,35,50,52,53,200,203,205,230,233,235,250,253,300,302,303,305 ,320,323,325,330,332,335,350,352,353都是有效的.
最佳答案
Step 1: Find the number of digits your answers are likely to fall in. In your
example it is 2 or 3.
Step 2: For a given number size (number of digits)
Step 2a: Pick the possibilities for the first (most significant digit).
Find the min and max number starting with that digit (ascend or descending
order of rest of the digits). If both of them fall into the range:
step 2ai: Count the number of digits starting with that first digit and
update that count
Step 2b: Else if both max and min are out of range, ignore.
Step 2c: Otherwise, add each possible digit as second most significant digit
and repeat the same step
以您的案例为例解决:
数量大小为2,即__:
0_ : Ignore since it starts with 0
2_ : Minimum=20, Max=25. Both are in range. So update count by 3 (second digit might be 0,3,5)
3_ : Minimum=30, Max=35. Both are in range. So update count by 4 (second digit might be 0,2,3,5)
5_ : Minimum=50, Max=53. Both are in range. So update count by 3 (second digit might be 0,2,3)
尺码3:
0__ : Ignore since it starts with 0
2__ : Minimum=200, max=253. Both are in range. Find the number of ways you can choose 2 numbers from a set of {0,0,3,3,5}, and update the count.
3__ : Minimum=300, max=353. Both are in range. Find the number of ways you can choose 2 numbers from a set of {0,0,2,3,5}, and update the count.
5__ : Minimum=500, max=532. Both are out of range. Ignore.
更有趣的情况是最大限制为522(而不是400):
5__ : Minimum=500, max=532. Max out of range.
50_: Minimum=500, Max=503. Both in range. Add number of ways you can choose one digit from {0,2,3,5}
52_: Minimum=520, Max=523. Max out of range.
520: In range. Add 1 to count.
522: In range. Add 1 to count.
523: Out of range. Ignore.
53_: Minimum=530, Max=532. Both are out of range. Ignore.
def countComb(currentVal, digSize, maxVal, minVal, remSet):
minPosVal, maxPosVal = calculateMinMax( currentVal, digSize, remSet)
if maxVal>= minPosVal >= minVal and maxVal>= maxPosVal >= minVal
return numberPermutations(remSet,digSize, currentVal)
elif minPosVal< minVal and maxPosVal < minVal or minPosVal> maxVal and maxPosVal > maxVal:
return 0
else:
count=0
for k in unique(remSet):
tmpRemSet = [i for i in remSet]
tmpRemSet.remove(k)
count+= countComb(currentVal+k, digSize, maxVal, minVal, tmpRemSet)
return count
在你的情况下:countComb(”,2,400,20,[‘0′,’0′,’2′,’3′,’3′,’5’])
countComb(”,3,400,20,[‘0′,’0′,’2′,’3′,’3′,’5’])将给出答案.
def calculateMinMax( currentVal, digSize, remSet):
numRemain = digSize - len(currentVal)
minPosVal = int( sorted(remSet)[:numRemain] )
maxPosVal = int( sorted(remSet,reverse=True)[:numRemain] )
return minPosVal,maxPosVal
numberPermutations(remSet,digSize, currentVal): Basically number of ways
you can choose (digSize-len(currentVal)) values from remSet. See permutations
with repeats.