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Easy_006_ZigZag_Conversion.swift
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/*
https://oj.leetcode.com/problems/zigzag-conversion/
#6 ZigZag Conversion
Level: easy
The string "PAYPALISHIRING" is written in a zigzag pattern on a given number of rows like this: (you may want to display this pattern in a fixed font for better legibility)
P A H N
A P L S I I G
Y I R
And then read line by line: "PAHNAPLSIIGYIR"
Write the code that will take a string and make this conversion given a number of rows:
string convert(string text, int nRows);
convert("PAYPALISHIRING", 3) should return "PAHNAPLSIIGYIR".
Inspired by @dylan_yu at https://leetcode.com/discuss/10493/easy-to-understand-java-solution
*/
private extension String {
/*
Ref: http://oleb.net/blog/2014/07/swift-strings/
"Because of the way Swift strings are stored, the String type does not support random access to its Characters via an integer index — there is no direct equivalent to NSStringʼs characterAtIndex: method. Conceptually, a String can be seen as a doubly linked list of characters rather than an array."
By creating and storing a seperate array of the same sequence of characters,
we could hopefully achieve amortized O(1) time for random access.
*/
func randomAccessCharactersArray() -> [Character] {
return Array(self)
}
}
struct Easy_006_ZigZag_Conversion {
// t = O(N), s = O(N)
static func convert(s: String, nRows: Int) -> String {
var arr = Array<String>(repeating: String(), count: nRows)
var i = 0
let charArr = s.randomAccessCharactersArray()
let len = charArr.count
while i < len {
var index = 0
while index < nRows && i < len {
arr[index].append(charArr[i])
i += 1
index += 1
}
index = nRows - 2
while index > 0 && i < len {
arr[index].append(charArr[i])
i += 1
index -= 1
}
}
var res = String()
for i in 0 ..< nRows {
res += arr[i]
}
return res
}
}