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I have the following string which will probably contain ~100 entries:

String foo = "{k1=v1,k2=v2,...}"

and am looking to write the following function:

String getValue(String key){
    // return the value associated with this key
}

I would like to do this without using any parsing library. Any ideas for something speedy?

share|improve this question
    
My parsing library you mean regex, or no third party library? – Yishai Oct 29 '09 at 15:58
    
Can v1, v2... contain '=' or ','? – sinuhepop Oct 29 '09 at 15:59
    
Lets suppose values do not contain '=' or ','. Just no 3rd party libs. – yankee2905 Oct 29 '09 at 16:01
    
This is really really close to JSON. Why not use that? – millimoose Oct 25 '12 at 20:18
    
(Also: no 3rd party libs in Java? Madness.) – millimoose Oct 25 '12 at 20:19
up vote 12 down vote accepted

If you know your string will always look like this, try something like:

HashMap map = new HashMap();

public void parse(String foo) {
  String foo2 = foo.substring(1, foo.length() - 1);  // hack off braces
  StringTokenizer st = new StringTokenizer(foo2, ",");
  while (st.hasMoreTokens()) {
    String thisToken = st.nextToken();
    StringTokenizer st2 = new StringTokenizer(thisToken, "=");

    map.put(st2.nextToken(), st2.nextToken());
  }
}

String getValue(String key) {
  return map.get(key).toString();
}

Warning: I didn't actually try this; there might be minor syntax errors but the logic should be sound. Note that I also did exactly zero error checking, so you might want to make what I did more robust.

share|improve this answer
1  
A shortcut would be using ",={}" . No hacking off braces or a second tokenizer needed :) – rsp Oct 29 '09 at 17:03
    
@rsp: Good point! – Tenner Oct 29 '09 at 17:41

The speediest, but ugliest answer I can think of is parsing it character by character using a state machine. It's very fast, but very specific and quite complex. The way I see it, you could have several states:

  • Parsing Key
  • Parsing Value
  • Ready

Example:

int length = foo.length();
int state = READY;
for (int i=0; i<length; ++i) {
   switch (state) {
      case READY:
        //Skip commas and brackets
        //Transition to the KEY state if you find a letter
        break;
      case KEY:
        //Read until you hit a = then transition to the value state
        //append each letter to a StringBuilder and track the name
        //Store the name when you transition to the value state
        break;
      case VALUE:
        //Read until you hit a , then transition to the ready state
        //Remember to save the built-key and built-value somewhere
        break;
   }
}

In addition, you can implement this a lot faster using StringTokenizers (which are fast) or Regexs (which are slower). But overall, individual character parsing is most likely the fastest way.

share|improve this answer
    
For raw speed, use the char array to avoid synchronization. Well, that's an old-timer reflex since modern JVMs coarsen the locks :-) – cadrian Oct 29 '09 at 16:05
    
Oh, good call. I actually completely forgot to drop in how to actually access the characters... – Malaxeur Oct 29 '09 at 16:06

If the string has many entries you might be better off parsing manually without a StringTokenizer to save some memory (in case you have to parse thousands of these strings, it's worth the extra code):


public static Map parse(String s) {
    HashMap map = new HashMap();
    s = s.substring(1, s.length() - 1).trim(); //get rid of the brackets
    int kpos = 0; //the starting position of the key
    int eqpos = s.indexOf('='); //the position of the key/value separator
    boolean more = eqpos > 0;
    while (more) {
    	int cmpos = s.indexOf(',', eqpos + 1); //position of the entry separator
    	String key = s.substring(kpos, eqpos).trim();
    	if (cmpos > 0) {
    		map.put(key, s.substring(eqpos + 1, cmpos).trim());
    		eqpos = s.indexOf('=', cmpos + 1);
    		more = eqpos > 0;
    		if (more) {
    			kpos = cmpos + 1;
    		}
    	} else {
    		map.put(key, s.substring(eqpos + 1).trim());
    		more = false;
    	}
    }
    return map;
}

I tested this code with these strings and it works fine:

{k1=v1}

{k1=v1, k2 = v2, k3= v3,k4 =v4}

{k1= v1,}

share|improve this answer

Written without testing:

String result = null;
int i = foo.indexOf(key+"=");
if (i != -1 && (foo.charAt(i-1) == '{' || foo.charAt(i-1) == ',')) {
    int j = foo.indexOf(',', i);
    if (j == -1) j = foo.length() - 1;
    result = foo.substring(i+key.length()+1, j);
}
return result;

Yes, it's ugly :-)

share|improve this answer

Well, assuming no '=' nor ',' in values, the simplest (and shabby) method is:

int start = foo.indexOf(key+'=') + key.length() + 1;
int end =  foo.indexOf(',',i) - 1;
if (end==-1) end = foo.indexOf('}',i) - 1;
return (start<end)?foo.substring(start,end):null;

Yeah, not recommended :)

share|improve this answer
    
Don't think i'll be using this one, but interesting answer! – yankee2905 Oct 29 '09 at 16:14
    
Oh, I know is not the good way :) I just wanted to indicate that this is a fast method. But some users are faster than me and posted similar solutions before. I don't see good solutions in the other answers too, and the final solution would imply using an AST parser or something similar. – sinuhepop Oct 29 '09 at 16:23

Adding code to check for existance of key in foo is left as exercise to the reader :-)

String foo = "{k1=v1,k2=v2,...}";

String getValue(String key){
    int offset = foo.indexOf(key+'=') + key.length() + 1;
    return foo.substring(foo.indexOf('=', offset)+1,foo.indexOf(',', offset));
}
share|improve this answer

Please find my solution:

public class KeyValueParser {

    private final String line;
    private final String divToken;
    private final String eqToken;
    private Map<String, String> map = new HashMap<String, String>();

    // user_uid=224620; pass=e10adc3949ba59abbe56e057f20f883e;
    public KeyValueParser(String line, String divToken, String eqToken) {
        this.line = line;
        this.divToken = divToken;
        this.eqToken = eqToken;
        proccess();
    }

    public void proccess() {
        if (Strings.isNullOrEmpty(line) || Strings.isNullOrEmpty(divToken) || Strings.isNullOrEmpty(eqToken)) {
            return;
        }
        for (String div : line.split(divToken)) {
            if (Strings.isNullOrEmpty(div)) {
                continue;
            }
            String[] split = div.split(eqToken);
            if (split.length != 2) {
                continue;
            }
            String key = split[0];
            String value = split[1];
            if (Strings.isNullOrEmpty(key)) {
                continue;
            }
            map.put(key.trim(), value.trim());
        }

    }

    public String getValue(String key) {
        return map.get(key);
    }
}

Usage

KeyValueParser line = new KeyValueParser("user_uid=224620; pass=e10adc3949ba59abbe56e057f20f883e;", ";", "=");
String userUID = line.getValue("user_uid")
share|improve this answer

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