In-place Run-Length String Compressions using C++
- 时间:2020-09-25 11:32:47
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Given an array of characters, compress it in-place. The length after compression must always be smaller than or equal to the original array. Every element of the array should be a character (not int) of length 1. After you are done modifying the input array in-place, return the new length of the array.
Could you solve it using only O(1) extra space?
Example 1:
Input:
[“a”,”a”,”b”,”b”,”c”,”c”,”c”]Output:
Return 6, and the first 6 characters of the input array should be: [“a”,”2″,”b”,”2″,”c”,”3″]Explanation:
“aa” is replaced by “a2”. “bb” is replaced by “b2”. “ccc” is replaced by “c3”.Example 2:
Input:
[“a”]Output:
Return 1, and the first 1 characters of the input array should be: [“a”]Explanation:
Nothing is replaced.Example 3:
Input:
[“a”,”b”,”b”,”b”,”b”,”b”,”b”,”b”,”b”,”b”,”b”,”b”,”b”]Output:
Return 4, and the first 4 characters of the input array should be: [“a”,”b”,”1″,”2″].Explanation:
Since the character “a” does not repeat, it is not compressed. “bbbbbbbbbbbb” is replaced by “b12”.
Notice each digit has it’s own entry in the array.Note:
All characters have an ASCII value in [35, 126].
1 <= len(chars) <= 1000.
How to Compress strings in-place using Run-length Encoding?
Edges cases have to be considered carefully when the input strings are length zero or length one. In both cases, no modifications take place and we should immediately return the length of the strings.
We have two index pointers, one for scanning the original string e.g. i, and the other for modifying in-place e.g. j, and we know that the j is not any faster than i as the compressed string should not be longer than the original string.
1 2 3 4 5 6 7 8 9 10 11 12 13 14 15 16 17 18 19 20 21 22 23 24 25 26 27 28 29 30 31 32 33 34 35 | class Solution { public: int compress(vector<char>& chars) { int n = chars.size(); if (n <= 1) return n; int j = 0, i = 0; while (i < n) { int k = i; // skip duplicates while ((k + 1 < n) && chars[k] == chars[k + 1]) { k ++; } // compute the repeat count int count = k - i + 1; // fill the character first chars[j ++] = chars[i]; // skip writting 1 as counter if (count == 1) { i ++; continue; } // write out the reversed 'counter' int start = j; while (count > 0) { chars[j ++] = (char)(48 + (count % 10)); count /= 10; } // reverse the counter e.g. if (count >= 10) std::reverse(begin(chars) + start, begin(chars) + j); // navigate to next character i = k + 1; } return j; } }; |
class Solution {
public:
int compress(vector<char>& chars) {
int n = chars.size();
if (n <= 1) return n;
int j = 0, i = 0;
while (i < n) {
int k = i;
// skip duplicates
while ((k + 1 < n) && chars[k] == chars[k + 1]) {
k ++;
}
// compute the repeat count
int count = k - i + 1;
// fill the character first
chars[j ++] = chars[i];
// skip writting 1 as counter
if (count == 1) {
i ++;
continue;
}
// write out the reversed 'counter'
int start = j;
while (count > 0) {
chars[j ++] = (char)(48 + (count % 10));
count /= 10;
}
// reverse the counter e.g. if (count >= 10)
std::reverse(begin(chars) + start, begin(chars) + j);
// navigate to next character
i = k + 1;
}
return j;
}
};We write out the counter in the reverse order, and then use the std::reverse to reverse the counter part. The above C++ run-length encoding compression takes in-place and runs at O(1) space and O(N) time complexity.
–EOF (The Ultimate Computing & Technology Blog) —
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