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I need to find two types of instances when there is a "[" character using regular expressions:

  1. When the "[" character is followed by a number.
  2. When the "[" character is followed by letters.

In Java I have tried:

Pattern firstinstance = Pattern.compile("\\[abcdefgABCDEFG");
Pattern secondinstance = Pattern.compile("\\[[0-9]");

These however, don't really seem to work. Do you guys have any possible suggestions?

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Homework is it? if so you should add homework to the tags. meanwhile i'll give you the answer below. –  Ahmed Masud Oct 23 '11 at 21:38
1  
Did you even try to google for a regex tutorial? I just did and found everything you asked for. –  Austin Henley Oct 23 '11 at 21:39
1  
"Do you guys have any possible suggestions?" - Yea. Read a tutorial or textbook on regexes. It will help you answer this question for yourself. –  Stephen C Oct 23 '11 at 23:02

4 Answers 4

up vote 1 down vote accepted

The first instance is when the "[" character is followed by a number.

Any decimal digit in any script:

"\\[\\p{Nd}"

Any digit in 0-9 only:

"\\[\\d"
"\\[[0-9]"

The second instance is when the "[" character is followed by letters.

Any letter in any script:

"\\[\\p{L}"

Only letters in A-Z or a-z:

"\\[[A-Za-z]"
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Pattern firstinstance = Pattern.compile("\\[[a-zA-Z]+");
Pattern secondinstance = Pattern.compile("\\[[0-9]+");
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Pattern first = Pattern.compile("[[][0-9]");
Pattern second = Patter.compile("[[][A-z]+");

Regular expressions are very simple to understand. Have a look at Basic Concepts

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In Java, you need to escape your escape characters (this is a consequence of the pattern being defined a string). So you would use the code

Pattern firstinstance = Pattern.compile("\\[[0-9]");
Pattern secondinstance = Pattern.compile("\\[[a-zA-Z]");

Those strings are read as

\[[0-9]

and

\[[a-zA-Z]

which are the regular expression you want.

Note, to get a literal backslash in the regex you need to use 4 backslashes \\\\.

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