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I have searched through-fully all the sides of Stackoverflow and Google, and found nothing to help my problem.

Why is it that this code:

if((w.startsWith("\\$", 0) || (w.startsWith("\\$", 1))){
}

and this:

if((w.charAt(0) == '$') || (w.charAt(1) == '$' && w.charAt(0) == ' ')){
}

and this:

 if((w.startsWith("\\$") || (w.startsWith(" \\$"))){
 }

Does not work?

I'm trying to test if a string starts with a dollar sign, or a space and a dollar sign, but for some ODD reason, I can't seem to find the problem related to the "starts with space" part.

Because the charAt(0) == '$' works just fine... but if I want to test if it starts with a space, then followed by a dollar sign, it doesn't work.

There are no errors... just nothing happens. Any guidelines/fixes would be extremely appreciated!

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3 Answers 3

up vote 1 down vote accepted

There is no need to escape the $ as String.startsWith takes just a normal string as argument, not a regex.

if (w.startsWith("$") || w.startsWith(" $"))

will suffice.

If you use String.startsWith(String prefix, int offset) (not required in this case I think) give 0 as offset, not 1 as you have to check from the beginning for a $. It is required if you have to test whether a substring starts with the prefix. In that case, give the beginIndex of substring.

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OMG thank you lol. And btw, it wasn't even this that didnt work lol my regex was wrongly escaped... but thanks for cleaning up my code :P –  Zacky1 Feb 1 '13 at 5:17
    
@Zacky1 the argument required for startsWith function is not regex. Only in the case of regex, you need to escape a $ –  Naveed S Feb 1 '13 at 5:19
    
I have done so, stackoverflow didn't let me accept it for some reason D: –  Zacky1 Feb 1 '13 at 5:25

Just do the two startsWith expressions without escaping:

if (w.startsWith("$") || w.startsWith(" $")) {...}
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Should just do if(w.trim().startsWith("$")) {...} That way it will work with any amount of spaces. –  Raufio Feb 1 '13 at 5:16

Just trim it. It removes whitespace before and after.

if(w.trim().charAt(0) == '$') {
  ...
}
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trim() removes all spaces in the string and the requirement is to check whether it begins with a space followed by $ –  Naveed S Feb 1 '13 at 5:21
    
trim only takes spaces off of the beginning and the end, none in the middle. making "\t hello world! \t\t" into "hello world!" He never said he needed to only test the case with one space. –  Raufio Feb 1 '13 at 5:26
    
He tried w.charAt(1) == '$' && w.charAt(0) == ' ' which means he has to match ` $` and not ` $`. –  Naveed S Feb 1 '13 at 5:28
    
no he wanted to match both. That's an or. –  Raufio Feb 1 '13 at 5:32
    
I meant he required to match a space followed by $ and not two spaces followed by $ –  Naveed S Feb 1 '13 at 5:35

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