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I have an array that contains string which may contain whitespaces appended to the end. I need to remove those spaces using perl script. my array will look like this

@array = ("shayam    "," Ram        "," 24.0       ");

I need the output as

@array = ("shayam","Ram","24.0");

I tried with chomp (@array). It is not working with the strings.

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1  
    
In given array, every index containing only single string or multiple strings too like @array = ("shayam nice "," Ram "," 24.0 "); ? –  Nikhil Jain Jul 7 '10 at 8:04
    
@Zaid: those aren't exact duplicates of this. This is about doing it for a list of values. –  user181548 Jul 7 '10 at 8:23
    
@Kinopiko : Not exact duplicates, but the needs revolve around s#^\s+|\s+$##g or s#\s+$## in some form or another. –  Zaid Jul 7 '10 at 9:26

5 Answers 5

up vote -1 down vote accepted
#!/usr/local/bin/perl -w

use strict;
use Data::Dumper;

my @array=('a ', 'b', '  c');

my @newarray = grep(s/\s*$//g, @array);

print Dumper \@newarray;

The key function here is grep(), everything else is just demo gravy.

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5  
Wouldn't map be more appropriate? –  el.pescado Jul 7 '10 at 7:38
2  
(reply to Alan Horn) IMO 'grep' suggests searching for something in a list, 'map' suggests that the whole list will be used, therefore using 'grep' where a 'map' is more appropriate makes the code less immediately readable –  plusplus Jul 7 '10 at 8:11
3  
i know both grep and map very well, but i am talking about what they imply to me at first glance, and consideration of such factors makes code more readable and hence maintainable by others. the definition of grep just confirms this - 'those elements for which the expression evaluated to true' - in this case all the elements are returned, so that is unecessary confusion - if i see a grep i start looking for what exactly will be matched by the grep condition, but if i see a map i know that everything will be used from the input list –  plusplus Jul 7 '10 at 8:52
1  
and it obviously depends on personal experience as to which is most common, but i've both seen and used map more than grep in 10+ years of Perl –  plusplus Jul 7 '10 at 8:53
1  
Your regexp only strips space off the end, not at the beginning. –  Christopher Causer Dec 21 '12 at 12:15

The underlying question revolves around removing leading and trailing whitespace from strings, and has been answered in several threads in some form or another with the following regex substitution (or its equivalent):

s{^\s+|\s+$}{}g foreach @array;

chomping the array will remove only trailing input record separators ("\n" by default). It is not designed to remove trailing whitespaces.

From perldoc -f chomp:

It's often used to remove the newline from the end of an input record when you're worried that the final record may be missing its newline. When in paragraph mode ($/ = ""), it removes all trailing newlines from the string.

...

If you chomp a list, each element is chomped, and the total number of characters removed is returned.

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1  
This is the correct answer. The OP is asking for the elements of the array to be modified inplace, rather than creating a new array. Also, the solutions with capturing, while not incorrect, are bound to be slower. See also perlfaq: perldoc.perl.org/… –  Sinan Ünür Jul 7 '10 at 14:29
    
The use of the {} as delimiter is close to snobbish :-) But to be honest I didn't know it was accepted.. making this answer incomplete.. –  ring0 Feb 25 '13 at 5:04

How about: @array = map {join(' ', split(' '))} @array;

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While not asked for this also compresses multiple internal spaces as well as trimming leading and trailing spaces and is the most efficient way to do so, according to recipe 1.19, Perl Cookbook, 2nd Edition –  lkench Nov 26 '13 at 21:34
my @res = ();
my $el;

foreach $el (@array) {
   $el =~ /^\s*(.*?)\s*$/;
   push @res, $1;
}

After this, @res will contain your desired elements.

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4  
This is unidiomatic Perl. –  daxim Jul 7 '10 at 8:59
2  
@daxim: You mean because you can read it? I thought Perl was all about freedom of choice. –  Borealid Jul 7 '10 at 9:02
2  
Ridiculous. It is just one line with map or foreach (as Zaid shows), and therefore more readable. my $el; foreach $el … is the style of an unversed beginner, everyone else writes foreach my $el …. Also, bicarbonate. Sorry, I don't think your answer is that good and deserves its lack of upvotes. –  daxim Jul 7 '10 at 11:32
1  
It is unidiomatic because you are capturing unnecessarily and creating a new array by individually pushing elements rather than modifying the elements of the original array inplace as the OP's question states. If a new array is going to be created, use map, if elements of the array will be modified inplace, use for. –  Sinan Ünür Jul 7 '10 at 14:31

I think Borealid's example should be:

my @array = ("shayam "," Ram "," 24.0 ");
foreach my $el (@array) {
   $el =~ s/^\s*(.*?)\s*$/\1/;
}
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"it may throw some surprises if there are spaces within each string". What are the surprises then? –  bohica Jul 7 '10 at 7:53
1  
Avoid using \1 on the RHS of the substitution. Plus, there is no need to capture here. See perlfaq: perldoc.perl.org/… and perlre: perldoc.perl.org/perlre.html#Warning-on-%5c1-Instead-of-%241 –  Sinan Ünür Jul 7 '10 at 14:32

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