试图制作一个程序,它只是检查strings2中是否存在strings1的排列。
在下面的程序创建,它适用于下面的测试用例。
输入:
s1 = "ab"
s2 = "eidballl"
输出:
True
说明:s2包含一个s1排列(即ba(。
但是当输入s2="sdfdadddbd"时,s1="ab",预期为,false,但得到true时,这会失败。
我试图弄清楚这里缺少什么。使用滑动窗口方法。在我的代码下面c#:
public bool CheckInclusion(string s1, string s2) {
var intCharArray = new int[256];
foreach(char c in s1)
{
intCharArray[c]++;
}
int start=0,end=0;
int count=s1.Length;
bool found=false;
while(end<s2.Length)
{
if (intCharArray[s2[end]]>0) { count--;}
intCharArray[s2[end]]--;
Console.WriteLine("end:" + end + " start:"+ start);
if(end-start==s1.Length) {
if (count==0) {return true;}
if (intCharArray[s2[start]]>=0)
{
count++;
}
intCharArray[s2[start]]++;
start++;
}
end++;
}
return false;
}
您需要检查所有排列字符是否存在于字符串的 [i, i + p.Length( 的任何范围内
static class StringExtensions
{
public static bool ContainsAnyPermutationOf(this string str, string p)
{
Dictionary<char, int> chars_count = p.CreateChar_CountDictionary();
for (int i = 0; i <= str.Length - p.Length; i++)
{
string subString = str.Substring(i, p.Length);
if (DictionaryMatch(chars_count, subString.CreateChar_CountDictionary()))
{
return true;
}
}
return false;
}
private static bool DictionaryMatch(Dictionary<char, int> dictionary1, Dictionary<char, int> dictionary2)
{
if (dictionary1.Count != dictionary2.Count)
{
return false;
}
foreach (var kvp in dictionary1)
{
if (!dictionary2.ContainsKey(kvp.Key))
{
return false;
}
dictionary2[kvp.Key] = dictionary2[kvp.Key] - 1;
if (dictionary2[kvp.Key] == 0)
{
dictionary2.Remove(kvp.Key);
}
}
return true;
}
private static Dictionary<char, int> CreateChar_CountDictionary(this string str)
{
Dictionary<char, int> dic = new Dictionary<char, int>();
for (int i = 0; i < str.Length; i++)
{
if (!dic.ContainsKey(str[i]))
{
dic.Add(str[i], default);
}
dic[str[i]] = dic[str[i]] + 1;
}
return dic;
}
}
用法:
static void Main(string[] args)
{
Console.WriteLine("sdfdadddbd".ContainsAnyPermutationOf("ab"));
}
我想这个问题类似于LeetCode 567。这些是简单、高效、低复杂度的公认解决方案:
C#
class Solution {
public bool CheckInclusion(string s1, string s2) {
int lengthS1 = s1.Length;
int lengthS2 = s2.Length;
if (lengthS1 > lengthS2)
return false;
int[] countmap = new int[26];
for (int i = 0; i < lengthS1; i++)
countmap[s1[i] - 97]++;
int[] bCount = new int[26];
for (int i = 0; i < lengthS2; i++) {
bCount[s2[i] - 97]++;
if (i >= (lengthS1 - 1)) {
if (allZero(countmap, bCount))
return true;
bCount[s2[i - (lengthS1 - 1)] - 97]--;
}
}
return false;
}
private bool allZero(int[] s1, int[] s2) {
for (int i = 0; i < 26; i++) {
if (s1[i] != s2[i])
return false;
}
return true;
}
}
爪哇岛
class Solution {
public boolean checkInclusion(String s1, String s2) {
int lengthS1 = s1.length();
int lengthS2 = s2.length();
if (lengthS1 > lengthS2)
return false;
int[] countmap = new int[26];
for (int i = 0; i < lengthS1; i++) {
countmap[s1.charAt(i) - 97]++;
countmap[s2.charAt(i) - 97]--;
}
if (allZero(countmap))
return true;
for (int i = lengthS1; i < lengthS2; i++) {
countmap[s2.charAt(i) - 97]--;
countmap[s2.charAt(i - lengthS1) - 97]++;
if (allZero(countmap))
return true;
}
return false;
}
private boolean allZero(int[] count) {
for (int i = 0; i < 26; i++)
if (count[i] != 0)
return false;
return true;
}
}
蟒
class Solution:
def checkInclusion(self, s1, s2):
count_map_s1 = collections.Counter(s1)
count_map_s2 = collections.Counter(s2[:len(s1)])
for i in range(len(s1), len(s2)):
if count_map_s1 == count_map_s2:
return True
count_map_s2[s2[i]] += 1
count_map_s2[s2[i - len(s1)]] -= 1
if count_map_s2[s2[i - len(s1)]] == 0:
del(count_map_s2[s2[i - len(s1)]])
return count_map_s2 == count_map_a
参考
以下链接对这些代码进行了说明:
LeetCode 567 解决方案
LeetCode 567 讨论区
这两个答案也很有用:
- 链接 1
- 链接 2
private static bool CheckPermutationInclusion(string s1, string s2)
{
return Enumerable.Range(0, s2.Length - s1.Length)
.Select(i => s2.Substring(i, s1.Length))
.Any(x => x.All(y => s1.Contains(y)));
}
描述:
Enumerable.Range(Int32, Int32)方法:生成指定范围内的整数序列。Enumerable.Select方法:将序列的每个元素投影到新形式中。Enumerable.All方法:确定序列的所有元素是否都满足条件。Enumerable.Any方法:确定序列的任何元素是否存在或满足条件。
不要忘记using System.Linq;.