6.5 KiB
Q1- First Unique Character in a String
Given a string, find the first non-repeating character in it and return it's index. If it doesn't exist, return -1.
s = "InterviewBit"
return 1.
Approach:
The best possible solution here could be of a linear time because to ensure that the character is unique you have to check the whole string anyway.
The idea is to go through the string and save in a hash map the number of times each character appears in the string. That would take O(N) time, where N is a number of characters in the string.
And then we go through the string the second time, this time we use the hash map as a reference to check if a character is unique or not. If the character is unique, one could just return its index. The complexity of the second iteration is O(N) as well.
public int firstUniqChar(String s) {
HashMap<Character, Integer> count = new HashMap<Character, Integer>();
int n = s.length();
// build hash map : character and how often it appears
for (int i = 0; i < n; i++) {
char c = s.charAt(i);
count.put(c, count.getOrDefault(c, 0) + 1);
}
// find the index
for (int i = 0; i < n; i++) {
if (count.get(s.charAt(i)) == 1)
return i;
}
return -1;
}
Time complexity : O(N) since we go through the string of length N two times.
Space complexity : O(N) since we have to keep a hash map with N elements.
Q2- Isomorphic Strings
Given two strings s and t, determine if they are isomorphic.Two strings are isomorphic if the characters in s can be replaced to get t. All occurrences of a character must be replaced with another character while preserving the order of characters. No two characters may map to the same character but a character may map to itself.
Input: s = "egg", t = "add"
Output: true
Input: s = "foo", t = "bar"
Output: false
Input: s = "paper", t = "title"
Output: true
Solution:
The idea is that we need to map a char to another one, for example, "egg" and "add", we need to constract the mapping 'e' -> 'a' and 'g' -> 'd'. Instead of directly mapping 'e' to 'a', another way is to mark them with same value, for example, 'e' -> 1, 'a'-> 1, and 'g' -> 2, 'd' -> 2, this works same.
So we use two arrays here m1 and m2, initialized space is 256 (Since the whole ASCII size is 256, 128 also works here). Traverse the character of both s and t on the same position, if their mapping values in m1 and m2 are different, means they are not mapping correctly, returen false; else we construct the mapping, since m1 and m2 are both initialized as 0, we want to use a new value when i == 0, so i + 1 works here.
https://leetcode.com/problems/isomorphic-strings/discuss/57796/My-6-lines-solution
https://leetcode.com/problems/isomorphic-strings/discuss/57802/Java-solution-using-HashMap
Q3- Valid Anagram
Given two strings s and t , write a function to determine if t is an anagram of s.
Input: s = "anagram", t = "nagaram"
Output: true
Input: s = "rat", t = "car"
Output: false
https://leetcode.com/problems/valid-anagram/solution/
Q4- Check if a string can be obtained by rotating another string 2 places
Input: string1 = “amazon”, string2 = “azonam”
Output: Yes
// rotated anti-clockwise
Input: string1 = “amazon”, string2 = “onamaz”
Output: Yes
// rotated clockwise
1- There can be only two cases: a) Clockwise rotated b) Anti-clockwise rotated
2- If clockwise rotated that means elements are shifted in right. So, check if a substring[2.... len-1] of string2 when concatenated with substring[0,1] of string2 is equal to string1. Then, return true.
3- Else, check if it is rotated anti-clockwise that means elements are shifted to left. So, check if concatenation of substring[len-2, len-1] with substring[0....len-3] makes it equals to string1. Then return true.
4- Else, return false.
static boolean isRotated(String str1, String str2)
{
if (str1.length() != str2.length())
return false;
String clock_rot = "";
String anticlock_rot = "";
int len = str2.length();
// Initialize string as anti-clockwise rotation
anticlock_rot = anticlock_rot +
str2.substring(len-2, len) +
str2.substring(0, len-2) ;
// Initialize string as clock wise rotation
clock_rot = clock_rot +
str2.substring(2) +
str2.substring(0, 2) ;
// check if any of them is equal to string1
return (str1.equals(clock_rot) ||
str1.equals(anticlock_rot));
}
Time Complexity: O(n)
https://www.geeksforgeeks.org/check-string-can-obtained-rotating-another-string-2-places/
Followup Question:
https://www.geeksforgeeks.org/check-if-a-string-can-be-obtained-by-rotating-another-string-d-places/
https://www.geeksforgeeks.org/a-program-to-check-if-strings-are-rotations-of-each-other/
Q5- Given an input string, reverse the string word by word.
Input: "the sky is blue"
Output: "blue is sky the"
Input: " hello world! "
Output: "world! hello"
Explanation: Your reversed string should not contain leading or trailing spaces.
-
A word is defined as a sequence of non-space characters.
-
Input string may contain leading or trailing spaces. However, your reversed string should not contain leading or trailing spaces.
-
You need to reduce multiple spaces between two words to a single space in the reversed string.
https://leetcode.com/problems/reverse-words-in-a-string/solution/
Q6- String to Integer (atoi)
Question: https://leetcode.com/problems/string-to-integer-atoi/
Q7- Longest Substring Without Repeating Characters
Given a string, find the length of the longest substring without repeating characters.
Input: "abcabcbb"
Output: 3
Explanation: The answer is "abc", with the length of 3.
Input: "pwwkew"
Output: 3
Explanation: The answer is "wke", with the length of 3.
Note that the answer must be a substring, "pwke" is a subsequence and not a substring.
https://leetcode.com/problems/longest-substring-without-repeating-characters/solution/
Q8- Longest Duplicate Substring
https://leetcode.com/problems/longest-duplicate-substring/
Homework Problem