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Lets say I have several short string:

string[] shortStrings = new string[] {"xxx","yyy","zzz"}; (this definition can change length on array and on string too, so not a fixed one)

When a given string, I like to check if it combines with the shortStrings ONLY, how?

let say function is like bool TestStringFromShortStrings(string s)

then

TestStringFromShortStrings("xxxyyyzzz") = true;
TestStringFromShortStrings("xxxyyyxxx") = true;
TestStringFromShortStrings("xxxyyy") = true;
TestStringFromShortStrings("xxxxxx") = true;
TestStringFromShortStrings("xxxxx") = false;
TestStringFromShortStrings("xxxXyyyzzz") = false;
TestStringFromShortStrings("xxx2yyyxxx") = false;

Please suggest a memory not tense and relatively fast method.

[EIDT] What this function for?

I will personally use this function to test if a string is a combination of a PINYIN ok, some Chinese stuff. Following Chinese are same thing if you cannot read it.

检测一个字符串是否为汉语拼音(例如检测是否拼音域名) 所有的汉语拼音字符串有:

(To detect whether a string is Hanyu Pinyin (e.g. detect the phonetic domain) of the Pinyin string:)

Regex PinYin = new Regex(@"^(a|ai|an|ang|ao|ba|bai|ban|bang|bao|bei|ben|beng|bi|bian|biao|bie|bin|bing|bo|bu|ca|cai|can|cang|cao|ce|cen|ceng|cha|chai|chan|chang|chao|che|chen|cheng|chi|chong|chou|chu|chua|chuai|chuan|chuang|chui|chun|chuo|ci|cong|cou|cu|cuan|cui|cun|cuo|da|dai|dan|dang|dao|de|den|dei|deng|di|dia|dian|diao|die|ding|diu|dong|dou|du|duan|dui|dun|duo|e|ei|en|eng|er|fa|fan|fang|fei|fen|feng|fo|fou|fu|ga|gai|gan|gang|gao|ge|gei|gen|geng|gong|gou|gu|gua|guai|guan|guang|gui|gun|guo|ha|hai|han|hang|hao|he|hei|hen|heng|hong|hou|hu|hua|huai|huan|huang|hui|hun|huo|ji|jia|jian|jiang|jiao|jie|jin|jing|jiong|jiu|ju|juan|jue|jun|ka|kai|kan|kang|kao|ke|ken|keng|kong|kou|ku|kua|kuai|kuan|kuang|kui|kun|kuo|la|lai|lan|lang|lao|le|lei|leng|li|lia|lian|liang|liao|lie|lin|ling|liu|long|lou|lu|lv|luan|lue|lve|lun|luo|ma|mai|man|mang|mao|me|mei|men|meng|mi|mian|miao|mie|min|ming|miu|mo|mou|mu|na|nai|nan|nang|nao|ne|nei|nen|neng|ni|nian|niang|niao|nie|nin|ning|niu|nong|nou|nu|nv|nuan|nuo|nun|ou|pa|pai|pan|pang|pao|pei|pen|peng|pi|pian|piao|pie|pin|ping|po|pou|pu|qi|qia|qian|qiang|qiao|qie|qin|qing|qiong|qiu|qu|quan|que|qun|ran|rang|rao|re|ren|reng|ri|rong|rou|ru|ruan|rui|run|ruo|sa|sai|san|sang|sao|se|sen|seng|sha|shai|shan|shang|shao|she|shei|shen|sheng|shi|shou|shu|shua|shuai|shuan|shuang|shui|shun|shuo|si|song|sou|su|suan|sui|sun|suo|ta|tai|tan|tang|tao|te|teng|ti|tian|tiao|tie|ting|tong|tou|tu|tuan|tui|tun|tuo|wa|wai|wan|wang|wei|wen|weng|wo|wu|xi|xia|xian|xiang|xiao|xie|xin|xing|xiong|xiu|xu|xuan|xue|xun|ya|yan|yang|yao|ye|yi|yin|ying|yo|yong|you|yu|yuan|yue|yun|za|zai|zan|zang|zao|ze|zei|zen|zeng|zha|zhai|zhan|zhang|zhao|zhe|zhei|zhen|zheng|zhi|zhong|zhou|zhu|zhua|zhuai|zhuan|zhuang|zhui|zhun|zhuo|zi|zong|zou|zu|zuan|zui|zun|zuo)+$");

用下面的正则表达式方法,试过了,最简单而且效果非常好,就是有点慢:( 递归的方式对长字符串比较麻烦,容易内存溢出

(Tried it with the regular expression: it's the most simple and gives very good results, but it's a bit slow. The recursive way on the long string is too much trouble, it's too easy to overflow the stack.)

share|improve this question
    
What do you mean with »if it combines with the shortStrings ONLY«? –  Joey Aug 2 '12 at 21:36
    
means only have the shortStrings (one or several, can repeat), and contains nothing else. –  Eric Yin Aug 2 '12 at 21:37
    
@Joey, the problem is the long string has no space inside, so I have to know where to cut first. –  Eric Yin Aug 2 '12 at 21:39
    
If I remember my string search algorithms right, I don't think you can do much better with performance than the naive approach. –  millimoose Aug 2 '12 at 21:40
1  
(My reasoning for that being that most of the "fast" string search algorithms are based on skipping more than one character in case of a mismatch to search the whole string quickly. In your case you either match at the current index and skip past the whole needle length, or have to try another needle, and if all fail, your entire search fails. So the main optimisation for this sort of thing simply isn't available in your case.) –  millimoose Aug 2 '12 at 21:42

3 Answers 3

up vote 3 down vote accepted

Edit: Simplified this a lot thanks to L.B and millimoose.

Regular Expressions to the rescue! Using System.Text.RegularExpressions.Regex, we get:

public static bool TestStringFromShortStrings(string checkText, string[] pieces) {
    // Build the expression.  Ultimate result will be
    // of the form "^(xxx|yyy|zzz)+$".
    var expr = "^(" + 
               String.Join("|", pieces.Select(Regex.Escape)) + 
               ")+$";

    // Check whether the supplied string matches the expression.
    return Regex.IsMatch(checkText, expr);
}

This should be able to properly handle cases that have multiple repeated patterns of different lenghts. E.g. if you the list of possible pieces includes strings "xxx" and "xxxx".

share|improve this answer
2  
Regex is probably the best way to do this correctly for any case anyway. (Not necessarily fast though because of the backtracking.) –  millimoose Aug 2 '12 at 21:43
2  
You probably want to use Regex.Escape() when appending a piece. –  millimoose Aug 2 '12 at 21:44
1  
@millimoose good catch! –  ikh Aug 2 '12 at 21:52
2  
It seems overly complex to me, but I think it could work. What's the Replace doing there? And your method returns false for an empty string. An empty string is always a good match, in my opinion. –  Virtlink Aug 2 '12 at 21:54
2  
All codes forming expr can be replaced with a single line "^(" + String.Join("|", pieces.Select(s=>Regex.Escape(s))) + ")+$" –  L.B Aug 2 '12 at 22:05

Copy the target string to string builder. For each string in shortstring array, remove all occurences from target. If u end up in zero length string, true else false.

Edit: This approach is not correct. Please refer to comments. Keeping this answer still here as it may look reasonably correct initially.

share|improve this answer
    
Wouldn't this copy data in the source string around needlessly? –  millimoose Aug 2 '12 at 21:39
1  
As an alternative: Do a regex replace of string.Join("|", shortStrings) with an empty string. –  Joey Aug 2 '12 at 21:40
3  
@EricYin This will break if the short strings aren't the same length. E.g. if you match {"xxx", "xxxx"} against "xxxxxxx". –  millimoose Aug 2 '12 at 21:43
1  
@Ankush just have a thought, remove may not work. e.g. abc removes b becomes ac, may just match ac that original string not contains –  Eric Yin Aug 2 '12 at 21:43
1  
good catch folks! –  Ankush Aug 2 '12 at 21:44

You could compare the start of the input string with each of the short strings. As soon as you have a match, you take the rest of the string and repeat. As soon as you have no more string left, you're done. For example:

string[] shortStrings = new string[] { "xxx", "yyy", "zzz" };

bool Test(string input)
{
    if (input.Length == 0)
        return true;

    foreach (string shortStr in shortStrings)
    {
        if (input.StartsWith(shortStr))
        {
            if (Test(input.Substring(shortStr.Length)))
                return true;
        }
    }
    return false;
}

You might optimize this by removing the recursion, or by sorting the short strings and do a binary instead of a linear search.


Here is a non-recursive version, that uses a Stack object instead. No chance of getting a StackOverflowException:

string[] shortStrings = new string[] { "xxx", "yyy", "zzz" };

bool Test(string input)
{
    Stack<string> stack = new Stack<string>();
    stack.Push(input);

    while (stack.Count > 0)
    {
        string str = stack.Pop();
        if (str.Length == 0)
            return true;
        foreach (string shortStr in shortStrings)
        {
            if (str.StartsWith(shortStr))
                stack.Push(str.Substring(shortStr.Length));
        }
    }
    return false;
}
share|improve this answer
    
This gonna work, just might stock overflow for long string, will try. But for the code, I believe it is what I am looking for –  Eric Yin Aug 2 '12 at 21:45
1  
This has the same problem as Ankush's answer; it won't work if you match {"xxx", "xxxx"} against "xxxxxxx" - you'd have to backtrack for that. –  millimoose Aug 2 '12 at 21:45
    
@millimoose holly moose, you really have a good eye and fast thinking on chaos –  Eric Yin Aug 2 '12 at 21:47
    
@millimoose You are not correct. I just tested it and it works for your example. It backtracks naturally by recursion. –  Virtlink Aug 2 '12 at 21:48
1  
@Virtlink Ah. My bad, I didn't notice your approach is recursive. –  millimoose Aug 2 '12 at 21:50

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