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I'm trying to check if a string alphabetically fits between two other strings. At the moment i'm doing it like this:

if(_subSize.compareTo("440/65") > 0 && "600/65".compareTo(_subSize) < 0){
    //fits in
} else { // fits not in between }

But when I have as _subSize = "440/65"; the if statement gets in the else. I've fixed that like this:

if(_subSize.compareTo("440/65") >= 0 && "600/65".compareTo(_subSize) <= 0){
    //fits in
} else { // fits not in between }

now the first statement is true. Yet the 2nd statement is false. How to get the 2nd statement to be true aswell? as "440/65" alphabetically comes before "600/65" so technically it should be lower or equals to 0. But somehow it's not working.

And i need the strings to be as string. They are no digits or something.

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5  
which is correct alphabetically or alfabetically –  JqueryLearner Oct 28 '13 at 12:05
3  
Try using "600/65".compareTo(_subSize) >= 0 instead. Though I must admit that this is the worst kind of range comparison I've ever seen. –  Ɍ.Ɉ Oct 28 '13 at 12:07
    
@R.J I think you gave the correct answer. –  Tarik Oct 28 '13 at 12:09
1  
@Tarik - Yeah I knew that, but I didn't feel like posting it as an answer. This is one really bad way of comparison of ranges and I'm not fond of that. –  Ɍ.Ɉ Oct 28 '13 at 12:11
    
@javaBeginner i've changed that :) –  Baklap4 Oct 28 '13 at 12:11
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1 Answer

up vote 3 down vote accepted

The 2nd .compareTo() is inverted related to the first one. You just need to have both to compare from the same perspective as follows:

if(_subSize.compareTo("440/65") >= 0 && _subSize.compareTo("600/65") <= 0){
    //fits in
} else { // fits not in between }
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This did the Job, Thanks man :)! –  Baklap4 Oct 28 '13 at 12:11
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