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My task was to write a regular expression in java and shell script which will validate all strings contaning only a single digit and any number of characters preceded or followed by that digit.

I wrote [a-z]*[0-9]{1}[a-z]* and it worked fine for Java but it is not at all working for Shell Script Can anyone please help me to create a regular esxpression meeting my requirement in Shell Script

Edit (from comments): I tried with grep but it did not gave me useful results. [...] If the string validates I want to perform certain operations. So I used it like

if [$password eq [a-z]*[0-9]{1}[a-z]]; then 
    # "do this" 
else 
    # "do that" 
fi 

Could you put some light on syntax differences in Java and shell script related to regular expressions?

share|improve this question
    
Which scripting language? Which operating system? – duffymo Dec 21 '11 at 10:50
    
Can you show the code you are using in the shell? – Mark Byers Dec 21 '11 at 10:51
    
what did you mean regex in shell script? by which tool? grep? how does your shell cmd containing the regex look like? btw the {1} could be omitted – Kent Dec 21 '11 at 10:52
    
is this a homework? – Oleg Mikheev Dec 21 '11 at 10:53
    
@duffymo - scripting language - shell script OS - RHL – omkar sohani Dec 21 '11 at 11:10
up vote 1 down vote accepted

You did not specify which tool shall evaluate the regexp in the shell environment. But most tools will not recognize the {1} part. This part is not necessary anyway, because a [0-9] alone stand also for exactly one occurrence.

The shell script part would look like this:

if [[ "$var" =~ ^[a-zA-Z]*[0-9][a-zA-Z]*$ ]]; then
    echo matching
else
    echo not matching
fi

The key parts are:

  • use the [[ expression, not the [ one, because the former supports pattern matching (via ==) and regexp matching (via =~)
  • The =~, like most regexp libraries, will return true if the pattern matches any part of the string, not necessarily the complete string. For example [a-z]*[0-9][a-z]* would match foo123bar456bla because the pattern matches the 3bar part with "zero occurrences of the first [a-z], one occorrence of [0-9] and three occurrences of the second [a-z]". Therefore is is necessary to pin the regexp to the start and the end of the string using ^ and $.

In Java:

String var = ...;
if( var.matches("[a-zA-Z]*[0-9][a-zA-Z]*") )
    System.out.println("matches");

Here the String.matches implicitly matches the complete string. That's all a bit fuddled by history.

share|improve this answer
    
Thanks for your response – omkar sohani Dec 21 '11 at 11:18
    
Thanks for your response... i tried with grep but it didnot gave me useful result. basically i want to use it in if statement and if the string validates i want to perform certain operations. so i used it like if [$password eq [a-z]*[0-9]{1}[a-z]]; then "do this" else "do that" fi could you put some light on syntax diff in java and shell script related to regular expression – omkar sohani Dec 21 '11 at 11:25
    
@omkarsohani: please move your comment into the question itself, because it is important for the answer. People searching for similar information in the future might not find the information otherwise. – A.H. Dec 21 '11 at 11:33
    
for java my code rather my regular expression is working as i already said.But the same regular expression is not working for shell script. – omkar sohani Dec 22 '11 at 4:38

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