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This is my first post, and I'm only new to Java, so sorry if it is not up to scratch.

I have been writing a text-based adventure game in Java, and my code has failed me in one place - the parser. There is no error, it just doesnt work. It takes in the input but does nothing about it. It is very simple, and looks something like this:

public static void getInput(){
    System.out.print(">>"); //print cue for input
    String i = scan.nextLine(); //get (i)nput
    String[] w = i.split(" "); //split input into (w)ords
    List words = Arrays.asList(w); //change to list format
    test(words);
}

The test method just searches the list for certain words using if(words.contains("<word>")).

What is wrong with the code and how can I improve it?

share|improve this question
2  
What's the error message? –  OscarRyz Feb 20 '13 at 14:00
1  
whats the compiler is saying? or is it a runtime error?please tell us whats exactly happening –  Sleiman Jneidi Feb 20 '13 at 14:01
    
"has failed me in one place" how does it fail? –  Raedwald Feb 20 '13 at 14:01
1  
there is no error, it just doesnt work. it takes in the input but does nothing about it. –  SamBrev Feb 20 '13 at 14:03
    
try debugging the code by using break points –  Sleiman Jneidi Feb 20 '13 at 14:04

2 Answers 2

How about keeping the array and using something like this:

    String[] word_list = {"This","is","an","Array"}; //An Array in your fault its 'w'
for (int i = 0;i < word_list.length;i++) { //Running trough all Elements 
    System.out.println(word_list[i]);
            if (word_list[i].equalsIgnoreCase("This")) {
        System.out.println("This found!");
    }
    if (word_list[i].equalsIgnoreCase("is")) {
        System.out.println("is found!");
    }
    if (word_list[i].equalsIgnoreCase("an")) {
        System.out.println("an found!");
    }
    if (word_list[i].equalsIgnoreCase("Array")) {
        System.out.println("Array found!");
    }
    if (word_list[i].equalsIgnoreCase("NotExistant")) { //Wont be found
        System.out.println("NotExistant found!"); 
    }
}

You will get the following output:

This found!
is found!
an found!
Array found!

As you see you need'nt convert it to a List

share|improve this answer
    
I like this. I only really want a basic two-word parser, so if I do word_list[0] instead of the for loop and [i] would that work? –  SamBrev Feb 20 '13 at 14:17
    
um, i tried it but it didnt work. i think the problem might be in splitting it. –  SamBrev Feb 20 '13 at 14:31
    
i put a System.out.println to print out the array of words and it came up with [Ljava.lang.String;@3f84246a help me! –  SamBrev Feb 20 '13 at 14:42
    
Try using that to get the word_list: String[] word_list = System.console().readLine().split(" "); –  Spyrab0 Feb 20 '13 at 14:58
    
it comes up with a NullPointerException –  SamBrev Feb 20 '13 at 15:42

Here is how I would do this:

public class ReadInput {
    private static void processInput (List <String> words)
    {
        if (words.contains ("foo"))
            System.out.println ("Foo!");
        else if (words.contains ("bar"))
            System.out.println ("Bar!");
    }

    public static void readInput () throws Exception
    {
        BufferedReader reader = 
            new BufferedReader (
                new InputStreamReader (System.in));

        String line;
        while ((line = reader.readLine ()) != null)
        {
            String [] words = line.split (" ");
            processInput (Arrays.asList (words));
        }
    }

    public static void main (String [] args) throws Exception 
    {
        readInput ();
    }
}

Sample session:

[in]  hello world
[in]  foo bar
[out] Foo!
[in]  foobar bar foobar
[out] Bar!
share|improve this answer
    
talk me through your code, i dont understand some of it –  SamBrev Feb 20 '13 at 14:14
    
@SamBrev System.in is just STDIN in Java. InputStreamReader is a Reader that reads characters from given InputStream. Reader in Java is similar to InputStream but reads unicode characters instead of bytes. BufferedReader wraps InputStreamReader and adds an ability to read input line by line. All the rest should be obvious. –  Mikhail Vladimirov Feb 20 '13 at 14:22
    
it throws an exception; where do i catch it and how? –  SamBrev Feb 20 '13 at 14:37
    
@SamBrev It depends on what exception it throws and where. –  Mikhail Vladimirov Feb 20 '13 at 14:39
    
the one the main and readInput methods throw! –  SamBrev Feb 20 '13 at 14:41

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