Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm new to Lua.

Say i have a string "1234567890".

I want to iterate over all possible 3 digit numbers. (ie 123,234,345,456....)

for m in string.gmatch("1234567890","%d%d%d") do
      print (m)
end

But this gives me the output 123,456,789.

What kind of Pattern should i be using?

And secondly, a related question, how do i specify a 3-digit number? "%3d" doesn't seem to work. Is "%d%d%d" the only way?

Note: This isn't tagged Regular expressionbecause Lua doesn't have RegExp. (atleast natively)

Thanks in advance :)

Update: As Amber Points out, there is no "overlapping" matches in Lua. And, about the second query, i'm now stuck using string.rep("%d",n) since Lua doesn't support fixed number of repeats.

share|improve this question
1  
("%d"):rep(n) is a slightly more idiomatic way to write the call to string.rep. It works because string is the metatable for all string values by default. –  RBerteig Oct 17 '10 at 22:03

2 Answers 2

up vote 2 down vote accepted

gmatch never returns overlapping matches (and gsub never replaces overlapping matches, fwiw).

Your best bet would probably be to iterate through all possible length-3 substrings, check each to see if they match the pattern for a 3-digit number, and if so, operate on them.

(And yes, %d%d%d is the only way to write it. Lua's abbreviated patterns support doesn't have a fixed-number-of-repetitions syntax.)

share|improve this answer
    
Thank you, That's unfortunate! Do you have any idea about a simpler n-digit pattern? :) –  st0le Oct 17 '10 at 7:23
    
Hey, as I edited my answer to mention, Lua's simplistic pattern matching doesn't have a simpler syntax. –  Amber Oct 17 '10 at 7:24
    
I've already done that...:) but i thought maybe i should go for a more "Lua-ish" Solution. :) –  st0le Oct 17 '10 at 7:24

You are correct that core Lua does not include full regular expressions. The patterns understood by the string module are simpler, but sufficient for a lot of cases. Matching overlapping n-digit numbers, unfortunately, isn't one of them.

That said, you can manually iterate over the string's length and attempt the match at each position since the string.match function takes a starting index. For example:

s = "1234567890"
for i=1,#s do
    m = s:match("%d%d%d", i)
    if m then print(m) end
end

This produces the following output:

C:>Lua
Lua 5.1.4  Copyright (C) 1994-2008 Lua.org, PUC-Rio
> s = "1234567890"
> for i=1,#s do
>>     m = s:match("%d%d%d", i)
>>     if m then print(m) end
>> end
123
234
345
456
567
678
789
890
>
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.