2

I have a list of string (more than 5000 in count) example listed below, these string are separated by an equal "=" delimiter, and left side of delimiter is the string that i need to check with end of another String and if there is an match then i need to replace it with right side of the string.

,.LLC=LLC
D.E.F.=DEF
&,Aida.=AID
&ECho,MA=ECHO

Example:

  1. If string is HelloD.E.F. than it should be replace by HELLO DEF
  2. If string is Hello&ECho,MA than it should be replace by HELLO ECHO

Need to find the most efficient way to get it done. Rather than iterating all the string recursively. (Efficient in time consumption, memory consumption is not a issue.)

4
  • I have tried by storing this in Arraylist and then comparing it with the String to get it done. – Arpan Dec 4 '15 at 19:17
  • show the code you've tried in your question – depperm Dec 4 '15 at 19:18
  • 1
    If you want to match many patterns exactly, the Aho-Corasick algorithm could be the solution. Or Rabin-Karp. Both have been designed for matching multiple, pre-processed patterns simultaneously. – biziclop Dec 4 '15 at 19:41
  • i will check on this ..might be a best solution for my problem..Thank you!! – Arpan Dec 4 '15 at 19:51
1

There are a number of reasonable ways to do it, depending on your exact requirements. Personally I wouldn't do this in Java at all; I would convert your = delimited patterns into sed replacements, e.g.:

s/,.LLC/LLC/
s/D.E.F./DEF/
s/&,Aida./AID/
s/&ECho,MA/ECHO/

You might have to do some additional escaping depending on the exact strings; e.g. \ and ( are special. Once you have your sed-style expressions simply pass in your input strings and you'll get out your desired strings:

$ sed -f list_of_patterns.txt list_of_strings.txt

If you really need to do this in Java you'll probably want to parse the replacements into a Map<String, String>, then loop over your strings, checking their suffixes one-by-one for matches in your map. Start with the last character, then the last two, last three, and so on. If you find a match you can concatenate the rest of the string (before the matched suffix) with the corresponding value in the map.

This is O(1) on the number of replacements, but O(n) on the number of characters in the strings you need to replace.

6
  • This again will work only with O(n) .. HashMap<String,String> al = new HashMap<String,String>(); al.put(",.LLC","LLC"); al.put("D.E.F.","DEF"); al.put("&,Aida.","AID"); al.put("&ECho,MA","ECHO"); String inputString = "HelloD.E.F."; if(al.keySet().contains(inputString)){ System.out.println(" Working "); } else System.out.println(" not working "); – Arpan Dec 4 '15 at 20:16
  • Below is working:-- Iterator iterator = al.keySet().iterator(); while(iterator.hasNext()){ Object key = iterator.next(); Object value = al.get(key); if(inputString.contains(key.toString())) { System.out.println(" Working "); } } – Arpan Dec 4 '15 at 20:23
  • I'm not sure what you're asking; if you have code snippets edit them into your question, comments are impossible to read. – dimo414 Dec 4 '15 at 21:11
  • I notice you're doing al.keySet().contains(inputString) which isn't going to work. First, Map has a .containsKey() method, you don't need to use the keySet(); second, you need to call .containsKey() on the string's suffixes; e.g. al.containsKey(string.substring(string.length()-6, string.length()) will return true. You need to loop over each suffix substring to find the matching suffix. – dimo414 Dec 4 '15 at 21:11
  • But there is no way i can get the value of 6 for (string.length()-6 .. as value of 6 will vary for each input key ..so it will not work. – Arpan Dec 4 '15 at 23:26

Not the answer you're looking for? Browse other questions tagged or ask your own question.