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I am comparing strings from a text file, but for some reason they never match. If I do it in ruby it is very easy, but in processing I can not get it to work. this is the ruby code that works:

f=File.open("priceMap_current_new.txt")

f.each do |str| 
    arrstr=str.split(";")
    if arrstr.length==1
        puts arrstr[0].inspect if arrstr[0]=="next\n"
    end
end

Now here's the processing version that doesn't work, actually it doesnt even work without reading from file:

String[] mystr={"number;zero","number;one","number;two","number;three","number;four"};

for(int i=0;i<mystr.length;i++){
  String[] numbers=split(mystr[i],";");
  if(numbers[0]=="number"){
    println("shoooooooooooooooooout");
  }
}

Additionally I would like to ask if there's a way to inspect elements like in ruby, its very handy, because if I print pts[0] in processing I get "next" when its actually "next\n" or also how to check datatypes in processing. Thanks!

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So what happens if you println(numbers[0])? ie does it even look like your split is working ok? In ruby you're testing if your split gave you a result, but not in the second code (although I agree... it looks like it should!). –  Sepster Sep 11 '12 at 14:08
    
if i println(numbers[0]) it prints "number" five times. String[] mystr={"number;zero","number;one","number;two","number;three","number;four"}; for(int i=0;i<mystr.length;i++){ String[] numbers=split(mystr[i],";"); println(numbers[0]); if(numbers[0]=="number"){ println("shoooooooooooooooooout"); } } –  fartagaintuxedo Sep 11 '12 at 14:10
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1 Answer

up vote 1 down vote accepted

Use if (numbers[0].equals("number"))

From: Processing doco

To compare the contents of two Strings, use the equals() method, as in "if (a.equals(b))", instead of "if (a == b)".

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ahhhhhhh thanks! i was going crazy, i somehow thought it should work cuz i tested the following code beforehand and strangely it worked: String mystr = "compare me"; if(mystr=="compare me"){ println("good comparison"); } –  fartagaintuxedo Sep 11 '12 at 14:18
    
I don't actually know anything about "processing" ;-) But my guess is that your test worked, because they're both literals, hence actually the same object. But in your question, you're using two different objects that happen to contain the same data. That's how it works in Java, for example. Thanks for accepting ;-) –  Sepster Sep 11 '12 at 14:20
    
makes sense, i guess thats the reason :) –  fartagaintuxedo Sep 11 '12 at 14:23
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