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I would like to put a set of variables in a list and do a substitute for each of them.
Example:

let mylist = ['var1','var2','var3']

for i in range(0,2)
 let mylist[i] = substitute(mylist[i], '\.', ',', 'g')
endfor

this must do this:

let var1 = substitute(var1, '\.', ',', 'g')  
let var2 = substitute(var2, '\.', ',', 'g')  
let var3 = substitute(var3, '\.', ',', 'g')  

but it doesn't work.

What did I wrong?

Edit
The same variables ['var1','var2','var3'] have do to do more substitutes so I decided to add all substitutes in a list:

let mylist = ['var1','var2','var3']
let mySubst = [['\.', ','], ['\s*$', ''], ['[,.]0$', ''], ['^[.,]', '0&']]

for i in range(0,len(mylist)-1)
    for m in range(0,len(mySubst)-1)
      let mylist[i] = substitute(mylist[i] , mySubst [m][0],  mySubst [m][1], 'g')
    endfor
endfor

This doesn't work.

share|improve this question
up vote 2 down vote accepted

Give this a try:

let [var1, var2, var3] = map([var1, var2, var3], 'substitute(v:val, "\\.", ",", "g")')

after re-reading the question, maybe this is what you're looking for:

let list = ['var1', 'var2', 'var3']
let [var1, var2, var3] = map(list, 'substitute({v:val}, "\\.", ",", "g")')
share|improve this answer
    
Hi El Isra, the first line did work The 2nd solution didn't. What will be the substitute command as there are 2 other variables in the command? p.e. let [var1, var2, var3] = map([var1, var2, var3], 'substitute(v:val, searchvariable, replacevariable, "g")') doesn't work – remio May 6 '12 at 19:57
    
That substitution looks ok, so it's a bit hard to know why it's failing without more details. Can you share a bit more of your code? – Raimondi May 6 '12 at 22:15
    
El Isra, I added more info in my question. Please see after Edit. – remio May 7 '12 at 10:12
    
found it. Removed the {} around v:val and now it works fine! thank you – remio May 7 '12 at 13:20

You shouldn't have quotes around your variables on this line: let mylist = ['var1','var2','var3']. That makes them into string literals var1, var2, and var3, instead of the values of those variables.

share|improve this answer
    
This would be a great solution but removing the quotes didn't work :( – remio May 6 '12 at 20:02

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