1639. Number of Ways to Form a Target String Given a Dictionary
Description
You are given a list of strings of the same length words
and a string target
.
Your task is to form target
using the given words
under the following rules:
target
should be formed from left to right.- To form the
ith
character (0-indexed) oftarget
, you can choose thekth
character of thejth
string inwords
iftarget[i] = words[j][k]
. - Once you use the
kth
character of thejth
string ofwords
, you can no longer use thexth
character of any string inwords
wherex <= k
. In other words, all characters to the left of or at indexk
become unusuable for every string. - Repeat the process until you form the string
target
.
Notice that you can use multiple characters from the same string in words
provided the conditions above are met.
Return the number of ways to form target
from words
. Since the answer may be too large, return it modulo 109 + 7
.
Example 1:
Input: words = ["acca","bbbb","caca"], target = "aba" Output: 6 Explanation: There are 6 ways to form target. "aba" -> index 0 ("acca"), index 1 ("bbbb"), index 3 ("caca") "aba" -> index 0 ("acca"), index 2 ("bbbb"), index 3 ("caca") "aba" -> index 0 ("acca"), index 1 ("bbbb"), index 3 ("acca") "aba" -> index 0 ("acca"), index 2 ("bbbb"), index 3 ("acca") "aba" -> index 1 ("caca"), index 2 ("bbbb"), index 3 ("acca") "aba" -> index 1 ("caca"), index 2 ("bbbb"), index 3 ("caca")
Example 2:
Input: words = ["abba","baab"], target = "bab" Output: 4 Explanation: There are 4 ways to form target. "bab" -> index 0 ("baab"), index 1 ("baab"), index 2 ("abba") "bab" -> index 0 ("baab"), index 1 ("baab"), index 3 ("baab") "bab" -> index 0 ("baab"), index 2 ("baab"), index 3 ("baab") "bab" -> index 1 ("abba"), index 2 ("baab"), index 3 ("baab")
Constraints:
1 <= words.length <= 1000
1 <= words[i].length <= 1000
- All strings in
words
have the same length. 1 <= target.length <= 1000
words[i]
andtarget
contain only lowercase English letters.
Solution
number-of-ways-to-form-a-target-string-given-a-dictionary.py
class Solution:
def numWays(self, words: List[str], target: str) -> int:
M = 10 ** 9 + 7
m, n = len(words[0]), len(target)
count = defaultdict(lambda: defaultdict(int))
for word in words:
for i, x in enumerate(word):
count[x][i] += 1
@cache
def go(i, k):
if i == n:
return 1
if k == m:
return 0
res = go(i, k + 1)
if count[target[i]][k] > 0:
res += go(i + 1, k + 1) * count[target[i]][k]
res %= M
return res
return go(0, 0)