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408. Valid Word Abbreviation
Description
A string can be abbreviated by replacing any number of non-adjacent, non-empty substrings with their lengths. The lengths should not have leading zeros.
For example, a string such as "substitution" could be abbreviated as (but not limited to):
"s10n"("s ubstitutio n")"sub4u4"("sub stit u tion")"12"("substitution")"su3i1u2on"("su bst i t u ti on")"substitution"(no substrings replaced)
The following are not valid abbreviations:
"s55n"("s ubsti tutio n", the replaced substrings are adjacent)"s010n"(has leading zeros)"s0ubstitution"(replaces an empty substring)
Given a string word and an abbreviation abbr, return whether the string matches the given abbreviation.
A substring is a contiguous non-empty sequence of characters within a string.
Example 1:
Input: word = "internationalization", abbr = "i12iz4n" Output: true Explanation: The word "internationalization" can be abbreviated as "i12iz4n" ("i nternational iz atio n"). Example 2:
Input: word = "apple", abbr = "a2e" Output: false Explanation: The word "apple" cannot be abbreviated as "a2e".
Constraints:
1 <= word.length <= 20wordconsists of only lowercase English letters.1 <= abbr.length <= 10abbrconsists of lowercase English letters and digits.- All the integers in
abbrwill fit in a 32-bit integer.
Solutions
Solution 1: Simulation
We can directly simulate character matching and replacement.
Assume the lengths of the string $word$ and the string $abbr$ are $m$ and $n$ respectively. We use two pointers $i$ and $j$ to point to the initial positions of the string $word$ and the string $abbr$ respectively, and use an integer variable $x$ to record the current matched number in $abbr$.
Loop to match each character of the string $word$ and the string $abbr$:
If the character $abbr[j]$ pointed by the pointer $j$ is a number, if $abbr[j]$ is '0' and $x$ is $0$, it means that the number in $abbr$ has leading zeros, so it is not a valid abbreviation, return false; otherwise, update $x$ to $x \times 10 + abbr[j] - ‘0’$.
If the character $abbr[j]$ pointed by the pointer $j$ is not a number, then we move the pointer $i$ forward by $x$ positions at this time, and then reset $x$ to $0$. If $i \geq m$ or $word[i] \neq abbr[j]$ at this time, it means that the two strings cannot match, return false; otherwise, move the pointer $i$ forward by $1$ position.
Then we move the pointer $j$ forward by $1$ position, repeat the above process, until $i$ exceeds the length of the string $word$ or $j$ exceeds the length of the string $abbr$.
Finally, if $i + x$ equals $m$ and $j$ equals $n$, it means that the string $word$ can be abbreviated as the string $abbr$, return true; otherwise return false.
The time complexity is $O(m + n)$, where $m$ and $n$ are the lengths of the string $word$ and the string $abbr$ respectively. The space complexity is $O(1)$.
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class Solution { public boolean validWordAbbreviation(String word, String abbr) { int m = word.length(), n = abbr.length(); int i = 0, j = 0, x = 0; for (; i < m && j < n; ++j) { char c = abbr.charAt(j); if (Character.isDigit(c)) { if (c == '0' && x == 0) { return false; } x = x * 10 + (c - '0'); } else { i += x; x = 0; if (i >= m || word.charAt(i) != c) { return false; } ++i; } } return i + x == m && j == n; } } -
class Solution { public: bool validWordAbbreviation(string word, string abbr) { int m = word.size(), n = abbr.size(); int i = 0, j = 0, x = 0; for (; i < m && j < n; ++j) { if (isdigit(abbr[j])) { if (abbr[j] == '0' && x == 0) { return false; } x = x * 10 + (abbr[j] - '0'); } else { i += x; x = 0; if (i >= m || word[i] != abbr[j]) { return false; } ++i; } } return i + x == m && j == n; } }; -
class Solution: def validWordAbbreviation(self, word: str, abbr: str) -> bool: m, n = len(word), len(abbr) i = j = x = 0 while i < m and j < n: if abbr[j].isdigit(): if abbr[j] == "0" and x == 0: return False x = x * 10 + int(abbr[j]) else: i += x x = 0 if i >= m or word[i] != abbr[j]: return False i += 1 j += 1 return i + x == m and j == n -
func validWordAbbreviation(word string, abbr string) bool { m, n := len(word), len(abbr) i, j, x := 0, 0, 0 for ; i < m && j < n; j++ { if abbr[j] >= '0' && abbr[j] <= '9' { if x == 0 && abbr[j] == '0' { return false } x = x*10 + int(abbr[j]-'0') } else { i += x x = 0 if i >= m || word[i] != abbr[j] { return false } i++ } } return i+x == m && j == n } -
function validWordAbbreviation(word: string, abbr: string): boolean { const [m, n] = [word.length, abbr.length]; let [i, j, x] = [0, 0, 0]; for (; i < m && j < n; ++j) { if (abbr[j] >= '0' && abbr[j] <= '9') { if (abbr[j] === '0' && x === 0) { return false; } x = x * 10 + Number(abbr[j]); } else { i += x; x = 0; if (i >= m || word[i++] !== abbr[j]) { return false; } } } return i + x === m && j === n; }