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418.py
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418.py
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'''
Given a rows x cols screen and a sentence represented by a list of non-empty words, find how many times the given sentence can be fitted on the screen.
Note:
A word cannot be split into two lines.
The order of words in the sentence must remain unchanged.
Two consecutive words in a line must be separated by a single space.
Total words in the sentence won't exceed 100.
Length of each word is greater than 0 and won't exceed 10.
1 ≤ rows, cols ≤ 20,000.
Example 1:
Input:
rows = 2, cols = 8, sentence = ["hello", "world"]
Output:
1
Explanation:
hello---
world---
The character '-' signifies an empty space on the screen.
Example 2:
Input:
rows = 3, cols = 6, sentence = ["a", "bcd", "e"]
Output:
2
Explanation:
a-bcd-
e-a---
bcd-e-
The character '-' signifies an empty space on the screen.
Example 3:
Input:
rows = 4, cols = 5, sentence = ["I", "had", "apple", "pie"]
Output:
1
Explanation:
I-had
apple
pie-I
had--
The character '-' signifies an empty space on the screen.
'''
class Solution(object):
def wordsTyping(self, sentences, rows, cols):
""""
:sentences List<String>
:rows int
:cols int
"""
sentence = '-'.join(sentences)
sentence += '-'
index_in_sentence = 0
for row in range(rows):
index_in_sentence += cols
if sentence[(index_in_sentence%len(sentence))] == '-':
index_in_sentence += 1
else:
while index_in_sentence > 0 and sentence[((index_in_sentence - 1)%len(sentence))] != '-':
index_in_sentence -= 1
return index_in_sentence/len(sentence)
solution = Solution()
row, col = 3, 6
sentences = ["a", "bcd", "e"]
print solution.wordsTyping(sentences=sentences, rows=row, cols=col)