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When using Groovy's eachWithIndex method the index value starts at 0, I need it to start at 1. How can I do that?

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Why do you need it to start at one? –  cdeszaq Jan 11 '12 at 15:16
    
@cdeszaq because I'm using it to build URLs to files, and the file names end with numbers starting at 1, not 0. –  ubiquibacon Jan 11 '12 at 15:21
    
@typoknig why can't you just calculate index + 1 –  Dónal Jan 11 '12 at 15:27
    
@Don Guess I could, just trying to be more concise. I thought I was just missing something because changing the default value of an index seems like something Groovy (or any language) should allow me to do. –  ubiquibacon Jan 11 '12 at 16:06
    
@typoknig you could always use an old skool for-loop if you really want to control the loop variable, but if it's conciseness you're after, that won't help you much –  Dónal Jan 11 '12 at 16:37

2 Answers 2

up vote 4 down vote accepted

The index will always start from 0

Your options are:

1) Add an offset to the index:

int offs = 1
list.eachWithIndex { it, idx ->
  println "$it @ pos ${idx + offs}"
}

2) Use something other than eachWithIndex (ie: transpose a list of integers starting at 1 with your original list, and then loop through this)

3) You can also use default parameters to hack this sort of thing in... If we pass eachWithIndex a closure with 3 parameters (the two that eachWithIndex is expecting and a third with a default value of index + 1):

[ 'a', 'b', 'c' ].eachWithIndex { item, index, indexPlusOne = index + 1 ->
  println "Element $item has position $indexPlusOne"
}

We will give the output:

Element a has position 1
Element b has position 2
Element c has position 3
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I like the hack, but not the fact that it is necessary. Seems like we should be able to say index = 1. Do you think it would be better to do the hack you suggested or a standard for loop? –  ubiquibacon Jan 11 '12 at 16:04
    
I would probably do option 1, and just add 1 to the index passed from eachWithIndex. A standard for loop would be faster though if your list is immense... If not, I'd go for the readability of option 1 –  tim_yates Jan 11 '12 at 16:12

You could use some metaprogramming hackery as well:

def eachWithMyIndex = { init, clos ->
    delegate.eachWithIndex { it, idx -> clos(it, idx + init) }
}
List.metaClass.eachWithMyIndex = eachWithMyIndex    

[1,2,3].eachWithMyIndex(10) {n, idx ->  println("element $idx = $n") }

gives output:

element 10 = 1
element 11 = 2
element 12 = 3
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