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I was getting weird results when doing multiple splits on a string, so I decided to make a simple test to figure out what was going on

testString "1234567891011121314151617181920"

If I wanted to get whats between 10 to 20 in Javascript I would do this:

var results = testString.split("10")[1].split("20")[0]

Which would return 111213141516171819

However when I do this in VB I get 111

Split(testString,"10")(1).Split("20")(0)

It seems the 2nd split is only recognizing the first character no matter what I put.

So it's stopping when it finds the next "2" in the string, even "2abc" would have the same outcome even though that string doesn't even exist.

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What happens when you wrap the second split so it's fashioned like the first one? i.e. Split( Split(testString,"10")(1), "20")(0)" –  Marc May 5 '12 at 1:40
    
That worked perfectly Marc! That's the easiest syntax I have seen from other solutions posted... Thanks! –  bfritz May 5 '12 at 2:39
    
glad you got it worked out. I added my solution as an answer below. –  Marc May 5 '12 at 14:12

3 Answers 3

up vote 1 down vote accepted

Try wrapping the second split so it's fashioned like the first one, i.e.:

Split( Split(testString,"10")(1), "20" )(0)"
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String.Split does not have an overload that takes only a String. The argument is a Char array or String array. Your string is probably being converted to a char array. Explicitly pass a string array like so:

testString.Split(New String() { "10" }, StringSplitOptions.None)

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Vb treats the delimiter argument only as a single character.

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