mirror of
https://github.com/TheAlgorithms/Ruby
synced 2024-12-25 21:58:57 +01:00
161 lines
2.7 KiB
Ruby
161 lines
2.7 KiB
Ruby
# Challenge name: Is anagram
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#
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# Given two strings s and t , write a function to determine
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# if t is an anagram of s.
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#
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# Note:
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# You may assume the string contains only lowercase alphabets.
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#
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# Follow up:
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# What if the inputs contain unicode characters?
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# How would you adapt your solution to such case?
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#
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# @param {String} s
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# @param {String} t
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# @return {Boolean}
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#
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# Approach: Hash table
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#
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# Complexity analysis:
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#
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# Time complexity: O(n). Time complexity is O(n) since accessing the counter
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# table is a constant time operation.
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# Space complexity: O(1). Although we do use extra space,
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# the space complexity is O(1) because the table's size stays constant no
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# matter how large n is.
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#
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def is_anagram(s, t)
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s_length = s.length
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t_length = t.length
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counter = Hash.new(0)
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return false unless s_length == t_length
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(0...s_length).each do |i|
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counter[s[i]] += 1
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counter[t[i]] -= 1
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end
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counter.each do |_k, v|
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return false unless v == 0
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end
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true
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end
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s = 'anagram'
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t = 'nagaram'
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puts(is_anagram(s, t))
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# => true
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s = 'rat'
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t = 'car'
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puts(is_anagram(s, t))
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# => false
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s = 'a'
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t = 'ab'
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puts(is_anagram(s, t))
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# => false
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#
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# Approach 2: Hash table
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#
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# Algorithm: we could also first increment the counter for s,
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# then decrement the counter for t. If at any point the counter
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# drops below zero, we know that t contains an extra letter,
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# not in s, and return false immediately.
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# Complexity analysis:
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#
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# Time complexity: O(n).
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# Space complexity: O(1).
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#
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def is_anagram(s, t)
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s_length = s.length
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t_length = t.length
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counter = Hash.new(0)
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return false unless s_length == t_length
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(0...s_length).each do |i|
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counter[s[i]] += 1
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end
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(0...s_length).each do |i|
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counter[t[i]] -= 1
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return false if counter[t[i]] < 0
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end
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true
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end
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s = 'anagram'
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t = 'nagaram'
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puts(is_anagram(s, t))
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# => true
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s = 'rat'
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t = 'car'
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puts(is_anagram(s, t))
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# => false
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s = 'a'
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t = 'ab'
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puts(is_anagram(s, t))
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# => false
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#
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# Approach 3: populate 2 hashes and compare them
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#
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def is_anagram(s, t)
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s = s.chars
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t = t.chars
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return false if s.count != t.count
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hash1 = {}
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s.each do |value|
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hash1[value] = if hash1[value]
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hash1[value] + 1
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else
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1
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end
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end
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hash2 = {}
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t.each do |value|
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hash2[value] = if hash2[value]
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hash2[value] + 1
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else
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1
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end
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end
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hash1.keys.each do |key|
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return false if hash2[key] != hash1[key]
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end
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true
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end
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s = 'anagram'
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t = 'nagaram'
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puts(is_anagram(s, t))
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# => true
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s = 'rat'
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t = 'car'
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puts(is_anagram(s, t))
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# => false
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s = 'a'
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t = 'ab'
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puts(is_anagram(s, t))
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# => false
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