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I am attempting to remove leading and trailing white spaces from my string using regex

regexQuote = CreateObject("roRegex", "/^[ ]+|[ ]+$/g+", "i")
regexQuote.ReplaceAll(noSpaceString)
print noSpaceString

[EDIT]

regexQuote = CreateObject("roRegex", "/^[ ]+|[ ]+$/g", "")
print len(noSpaceString) //this value includes leading white spaces, which I dont want

I also tried

regexQuote = CreateObject("roRegex", "/^[ ]+|[ ]+$/", "")

And tried

regexQuote = CreateObject("roRegex", "/(^\s*)|(\s*$)/", "")
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2  
Is there a significance to the g+ or the i? My first thoughts are to remove the i flag since you're matching white space and not alphas and remove the + after the g unless it's some weird brightscript thing which I'm unfamiliar with. – tenub Mar 6 '14 at 22:24
    
@tenub I update question – dan_vitch Mar 6 '14 at 22:36
1  
Have you try with : /(^\s*)|(\s*$)/ – Tom Mar 6 '14 at 22:45
1  
Have you ever used regexes on this platform before? A quick look at the docs tells me you don't have to add delimiters to the regex string like you do in PHP, and you don't need the g modifier because the ReplaceAll() function does just what it says: replace all matches. – Alan Moore Mar 6 '14 at 23:22
1  
can you try that : print len(regexQuote.ReplaceAll(noSpaceString)) I think ReplaceAll return a new string and doesn't change the original one – Tom Mar 6 '14 at 23:26
up vote 6 down vote accepted

Use trim(), Luke!

There is a string method just for the purpose:

BrightScript Debugger> ? len("   four   ".trim())
 4
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Using help from the comment section here is the solution

regexQuote = CreateObject("roRegex", "^\s+|\s+$", "")
newString= regexQuote.ReplaceAll(oldString, "")
print "string length:" ; len(newString)
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