Thursday, September 3, 2020

LeetCode [1153] String Transforms Into Another String

 1153. String Transforms Into Another String

Hard

Given two strings str1 and str2 of the same length, determine whether you can transform str1 into str2 by doing zero or more conversions.

In one conversion you can convert all occurrences of one character in str1 to any other lowercase English character.

Return true if and only if you can transform str1 into str2.

 

Example 1:

Input: str1 = "aabcc", str2 = "ccdee"
Output: true
Explanation: Convert 'c' to 'e' then 'b' to 'd' then 'a' to 'c'. Note that the order of conversions matter.

Example 2:

Input: str1 = "leetcode", str2 = "codeleet"
Output: false
Explanation: There is no way to transform str1 to str2.

 

Note:

  1. 1 <= str1.length == str2.length <= 10^4
  2. Both str1 and str2 contain only lowercase English letters.
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class Solution {
    public boolean canConvert(String str1, String str2) {
        if(str1.equals(str2)) return true;
        Map<Character, Character> map = new HashMap<>();
        for(int i=0; i<str1.length(); ++i){
            char c1 = str1.charAt(i), c2 = str2.charAt(i);
            if(map.containsKey(c1) && map.get(c1)!=c2) return false;
            map.put(c1, c2);
        }
        return new HashSet<Character>(map.values()).size() < 26;
    }
}


@thyang93

I would recommend putting two words in two columns vertically, something like this,

s1="ace", s2="cea", draw arrows between each transformation
key  -> value
a    ->    c
c    ->    e
e    ->    a

If a value shows up later as a key, then it makes a linkedlist structure,
and if a value has already been a key, then there is a cycle (in this case, the last "a" is the key in the first row).

For linkedlist without cycle we can just backward substitute the key with the value, there exists a way of converting s1 to s2 for sure.

    eg., ace -> ceb: a-(1)->c-(2)->e-(3)->b. 

            We do 3, 2, 1 conversions. ace->acb->aeb->ceb 

However, with a cycle, any conversion would conflict with an existing char.
For linkedlist with a cycle, such as "a -> c -> e -> a", we need to break the loop and use a temporary variable to cache the point of break,
in this case, it becomes the transformation with two steps: "a -> tmp" and "tmp -> c -> e -> a".

Then we can do ace->tce->tca->tea->cea
Now the bottleneck is if we can find a temporary variable to carry the conversion, if there is one, then the conversion is viable.

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