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➤微信公众号:山青咏芝(shanqingyongzhi)
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Your friend is typing his name into a keyboard. Sometimes, when typing a character c, the key might get long pressed, and the character will be typed 1 or more times.
You examine the typed characters of the keyboard. Return True if it is possible that it was your friends name, with some characters (possibly none) being long pressed.
Example 1:
Input: name = "alex", typed = "aaleex"
Output: true
Explanation: 'a' and 'e' in 'alex' were long pressed.
Example 2:
Input: name = "saeed", typed = "ssaaedd"
Output: false
Explanation: 'e' must have been pressed twice, but it wasn't in the typed output.
Example 3:
Input: name = "leelee", typed = "lleeelee"
Output: true
Example 4:
Input: name = "laiden", typed = "laiden"
Output: true
Explanation: It's not necessary to long press any character.
Note:
name.length <= 1000typed.length <= 1000- The characters of
nameandtypedare lowercase letters.
你的朋友正在使用键盘输入他的名字 name。偶尔,在键入字符 c 时,按键可能会被长按,而字符可能被输入 1 次或多次。
你将会检查键盘输入的字符 typed。如果它对应的可能是你的朋友的名字(其中一些字符可能被长按),那么就返回 True。
示例 1:
输入:name = "alex", typed = "aaleex" 输出:true 解释:'alex' 中的 'a' 和 'e' 被长按。
示例 2:
输入:name = "saeed", typed = "ssaaedd" 输出:false 解释:'e' 一定需要被键入两次,但在 typed 的输出中不是这样。
示例 3:
输入:name = "leelee", typed = "lleeelee" 输出:true
示例 4:
输入:name = "laiden", typed = "laiden" 输出:true 解释:长按名字中的字符并不是必要的。
提示:
name.length <= 1000typed.length <= 1000name和typed的字符都是小写字母。
8ms
1 class Solution { 2 func isLongPressedName(_ name: String, _ typed: String) -> Bool { 3 guard name.count != 0 else { 4 return true 5 } 6 let chars1 = Array(name) 7 let chars2 = Array(typed) 8 var index = 0 9 for i in 0..<chars2.count { 10 if index == chars1.count { // Best Idea 11 if chars2[i] != chars2[i - 1] { 12 return false 13 } 14 continue 15 } 16 17 if chars1[index] == chars2[i] { 18 index += 1 19 } else if i != 0 && chars2[i] == chars2[i - 1] { 20 continue 21 } else { 22 return false 23 } 24 } 25 return index == chars1.count 26 } 27 }
12ms
1 class Solution { 2 func count(_ str: String) -> [(Character, Int)] { 3 var result = [(Character,Int)]() 4 5 var pos = str.startIndex 6 while pos < str.endIndex { 7 var next = str.index(after:pos) 8 var c = 1 9 while next < str.endIndex && str[pos] == str[next] { 10 next = str.index(after:next) 11 c += 1 12 } 13 result.append((str[pos], c)) 14 pos = next 15 } 16 17 18 return result 19 } 20 21 22 func isLongPressedName(_ name: String, _ typed: String) -> Bool { 23 let nameC = count(name) 24 let typedC = count(typed) 25 26 if nameC.count != typedC.count { 27 return false 28 } 29 30 for var i in 0..<nameC.count { 31 if nameC[i].0 != typedC[i].0 { 32 return false 33 } 34 if nameC[i].1 > typedC[i].1 { 35 return false 36 } 37 } 38 39 return true 40 } 41 }
16ms
1 class Solution { 2 func isLongPressedName(_ name: String, _ typed: String) -> Bool { 3 guard name.count != 0 else { 4 return true 5 } 6 let chars1 = Array(name) 7 let chars2 = Array(typed) 8 var index = 0 9 for i in 0..<chars2.count { 10 if index == chars1.count { // Best Idea 11 if chars2[i] != chars2[i - 1] { 12 return false 13 } 14 continue 15 } 16 17 if chars1[index] == chars2[i] { 18 index += 1 19 } else if i != 0 && chars2[i] == chars2[i - 1] { 20 continue 21 } else { 22 return false 23 } 24 } 25 return index == chars1.count 26 } 27 }
36ms
1 class Solution { 2 func isLongPressedName(_ name: String, _ typed: String) -> Bool { 3 guard name.count != 0 else { 4 return true 5 } 6 var index1 = 0 7 var index2 = 0 8 var char1 = Array(name) 9 var char2 = Array(typed) 10 while index1 < name.count && index2 < typed.count { 11 if char1[index1] == char2[index2] { 12 index1 += 1 13 index2 += 1 14 } else if index2 != 0 && char2[index2] == char2[index2 - 1] { 15 index2 += 1 16 } else { 17 return false 18 } 19 } 20 return index1 == char1.count 21 } 22 }
36ms
1 class Solution { 2 func isLongPressedName(_ name: String, _ typed: String) -> Bool { 3 var p:Int = 0 4 for num in 0..<typed.count 5 { 6 var typeIndex = typed.index(typed.startIndex,offsetBy: num) 7 var nameIndex = name.index(name.startIndex,offsetBy: p) 8 if p < name.count && typed[typeIndex] == name[nameIndex] 9 { 10 p += 1 11 } 12 else 13 { 14 if num > 0 && typed[typeIndex] == typed[typed.index(typed.startIndex,offsetBy:num - 1)] 15 { 16 continue 17 } 18 else 19 { 20 return false 21 } 22 } 23 } 24 return p == name.count 25 } 26 }
44ms
1 class Solution { 2 func isLongPressedName(_ name: String, _ typed: String) -> Bool { 3 guard name.count != 0 else { 4 return true 5 } 6 7 var index1 = 0 8 var index2 = 0 9 var char1 = Array(name) 10 var char2 = Array(typed) 11 while index1 < name.count && index2 < typed.count { 12 if char1[index1] == char2[index2] { 13 index1 += 1 14 index2 += 1 15 } else { 16 if index2 != 0 && char2[index2] == char2[index2 - 1] { 17 index2 += 1 18 } else { 19 return false 20 } 21 } 22 } 23 guard index1 == name.count else { 24 return false 25 } 26 27 while index2 < typed.count { 28 if index2 != 0 && char2[index2] == char2[index2 - 1] { 29 index2 += 1 30 continue 31 } else { 32 break 33 } 34 } 35 return index2 == typed.count 36 } 37 }
52ms
1 class Solution { 2 func isLongPressedName(_ name: String, _ typed: String) -> Bool { 3 guard name.count != 0 else { 4 return true 5 } 6 7 var index1 = 0 8 var index2 = 0 9 var char1 = Array(name) 10 var char2 = Array(typed) 11 while index1 < name.count && index2 < typed.count { 12 if char1[index1] == char2[index2] { 13 index1 += 1 14 index2 += 1 15 } else if index2 != 0 && char2[index2] == char2[index2 - 1] { 16 index2 += 1 17 } else { 18 return false 19 } 20 } 21 guard index1 == name.count else { 22 return false 23 } 24 25 while index2 < typed.count { 26 if index2 != 0 && char2[index2] == char2[index2 - 1] { 27 index2 += 1 28 continue 29 } else { 30 break 31 } 32 } 33 return index2 == typed.count 34 } 35 }