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I have a script which connects to database and gets all records which statisfy the query. These record results are files present on a server, so now I have a text file which has all file names in it.

I want a script which would know:

  1. What is the size of each file in the output.txt file?
  2. What is the total size of all the files present in that text file?

Update: I would like to know how can I achieve my task using Perl programming language, any inputs would be highly appreciated.

Note: I do not have any specific language constraint, it could be either Perl or Python scripting language which I can run from the Unix prompt. Currently I am using the bash shell and have sh and py script. How can this be done?

My scripts:

#!/usr/bin/ksh
export ORACLE_HOME=database specific details
export PATH=$ORACLE_HOME/bin:path information
sqlplus database server information<<EOF
SET HEADING OFF
SET ECHO OFF
SET PAGESIZE 0
SET LINESIZE 1000
SPOOL output.txt
select * from my table_name;
SPOOL OFF
EOF

I know du -h would be the command which I should be using but I am not sure how should my script be, I have tried something in python. I am totally new to Python and it's my first time effort.

Here it is:

import os

folderpath='folder_path'
file=open('output file which has all listing of query result','r')

for line in file:
 filename=line.strip()
 filename=filename.replace(' ', '\ ')
 fullpath=folderpath+filename
# print (fullpath)
 os.system('du -h '+fullpath)

File names in the output text file for example are like: 007_009_Bond Is Here_009_Yippie.doc

Any guidance would be highly appreciated.

Update:

  1. How can I move all the files which are present in output.txt file to some other folder location using Perl ?
  2. After doing step1, how can I delete all the files which are present in output.txt file ?

Any suggestions would be highly appreciated.

share|improve this question
    
If you have spaces in filename you must quote filename os.system('du -h "%s"' % fullpath) –  jcubic Sep 19 '10 at 17:34
3  
Down vote normally has an explanation, please provide one so that I can improve question. –  Rachel Sep 19 '10 at 18:06
    
@RickF: I am have tried using du command which you suggested but it gives me some number, how can I interpret it, is it kb, mb, gb or by ? Also my os version is very old and so I do not have du -h option, is there a way I can get storage value in MB from du using the command my ($size) = split(' ', du "$folderpath/$_"); ? –  Rachel Sep 22 '10 at 21:00

4 Answers 4

up vote 1 down vote accepted

In perl, the -s filetest operator is probaby what you want.

use strict;
use warnings;
use File::Copy;

my $folderpath = 'the_path';
my $destination = 'path/to/destination/directory';
open my $IN, '<', 'path/to/infile';
my $total;
while (<$IN>) {
    chomp;
    my $size = -s "$folderpath/$_";
    print "$_ => $size\n";
    $total += $size;
    move("$folderpath/$_", "$destination/$_") or die "Error when moving: $!";
}
print "Total => $total\n";

Note that -s gives size in bytes not blocks like du.

On further investigation, perl's -s is equivalent to du -b. You should probably read the man pages on your specific du to make sure that you are actually measuring what you intend to measure.

If you really want the du values, change the assignment to $size above to:

my ($size) = split(' ', `du "$folderpath/$_"`);
share|improve this answer
    
@RickF: Is this giving size of each and every file in the folder plus total size of the file in the folder ? –  Rachel Sep 20 '10 at 19:18
    
@RickF: Is there a way I can get blocks size instead of byte size which I get using du ? –  Rachel Sep 20 '10 at 19:36
    
On my Linux box, the block size is 1024 bytes (1kb), so you would just divide $size by that. –  RickF Sep 20 '10 at 20:21
    
Actually, on further testing, du -h returns a minimum of '4.0k' for any file on my system, even where ls or perl -s shows a size smaller than that. –  RickF Sep 20 '10 at 20:23
1  
Actually, du always uses an assumption of 512 bytes for a block even if your block size is different. Part of the Single UNIX Specification en.wikipedia.org/wiki/Du_(Unix) –  dawg Sep 20 '10 at 21:24

Eyeballing, you can make YOUR script work this way:

1) Delete the line filename=filename.replace(' ', '\ ') Escaping is more complicated than that, and you should just quote the full path or use a Python library to escape it based on the specific OS;

2) You are probably missing a delimiter between the path and the file name;

3) You need single quotes around the full path in the call to os.system.

This works for me:

#!/usr/bin/python
import os

folderpath='/Users/andrew/bin'
file=open('ft.txt','r')

for line in file:
    filename=line.strip()
    fullpath=folderpath+"/"+filename
    os.system('du -h '+"'"+fullpath+"'")

The file "ft.txt" has file names with no path and the path part is '/Users/andrew/bin'. Some of the files have names that would need to be escaped, but that is taken care of with the single quotes around the file name.

That will run du -h on each file in the .txt file, but does not give you the total. This is fairly easy in Perl or Python.

Here is a Python script (based on yours) to do that:

#!/usr/bin/python
import os

folderpath='/Users/andrew/bin/testdir'
file=open('/Users/andrew/bin/testdir/ft.txt','r')

blocks=0
i=0
template='%d total files in %d blocks using %d KB\n'

for line in file:
    i+=1
    filename=line.strip()
    fullpath=folderpath+"/"+filename
    if(os.path.exists(fullpath)):
        info=os.stat(fullpath)
        blocks+=info.st_blocks
        print `info.st_blocks`+"\t"+fullpath
    else:
        print '"'+fullpath+"'"+" not found"

print `blocks`+"\tTotal"
print " "+template % (i,blocks,blocks*512/1024)

Notice that you do not have to quote or escape the file name this time; Python does it for you. This calculates file sizes using allocation blocks; the same way that du does it. If I run du -ahc against the same files that I have listed in ft.txt I get the same number (well kinda; du reports it as 25M and I get the report as 24324 KB) but it reports the same number of blocks. (Side note: "blocks" are always assumed to be 512 bytes under Unix even though the actual block size on larger disc is always larger.)

Finally, you may want to consider making your script so that it can read a command line group of files rather than hard coding the file and the path in the script. Consider:

#!/usr/bin/python
import os, sys

total_blocks=0
total_files=0
template='%d total files in %d blocks using %d KB\n'

print
for arg in sys.argv[1:]: 
    print "processing: "+arg
    blocks=0
    i=0
    file=open(arg,'r')
    for line in file:
        abspath=os.path.abspath(arg)
        folderpath=os.path.dirname(abspath)
        i+=1
        filename=line.strip()
        fullpath=folderpath+"/"+filename
        if(os.path.exists(fullpath)):
           info=os.stat(fullpath)
           blocks+=info.st_blocks
           print `info.st_blocks`+"\t"+fullpath
        else:
           print '"'+fullpath+"'"+" not found"

    print "\t"+template % (i,blocks,blocks*512/1024)
    total_blocks+=blocks
    total_files+=i

print template % (total_files,total_blocks,total_blocks*512/1024)

You can then execute the script (after chmod +x [script_name].py) by ./script.py ft.txt and it will then use the path to the command line file as the assumed path to the files "ft.txt". You can process multiple files as well.

share|improve this answer
    
I tried your approach, when I try to add files then I get values like 315904L, not sure what L stands for ? Also, if I run first script then it gives me size as 86K and 259K, total of which if I do on Calc gives me 345K and so not sure but we are getting different numbers on summation of two numbers in different ways, any thoughts on this ? –  Rachel Sep 20 '10 at 14:55
    
Because your files are really big, huh? Let me change the script to use blocks instead of byte the way du does.... –  dawg Sep 20 '10 at 15:46
    
I do not see any changes in the script, what do we mean by blocks here ? –  Rachel Sep 20 '10 at 15:58
1  
It has been changed now... –  dawg Sep 20 '10 at 21:25
    
Suggestion: I am confused whose answer should I accept, RickF's or drewk's as both have solved my problem, any suggestions ? –  Rachel Sep 20 '10 at 21:33

You can do it in your shell script itself.

You have all the files names in your spooled file output.txt, all you have to add at the end of existing script is:

< output.txt  du -h

It will give size of each file and also a total at the end.

share|improve this answer
    
@ codaddict: I did not understood the working on < ahead of the output.txt du -h command, can you explain more on this ? –  Rachel Sep 19 '10 at 16:55
    
Its same as du -h < output.txt –  codaddict Sep 19 '10 at 16:56
    
or cat output.txt | du -h –  codaddict Sep 19 '10 at 16:56
    
where should I add this, beside spool command in first script ? –  Rachel Sep 19 '10 at 16:56
    
After the line EOF –  codaddict Sep 19 '10 at 16:58

You can use the Python skeleton that you've sketched out and add os.path.getsize(fullpath) to get the size of individual file.

For example, if you wanted a dictionary with the file name and size you could:

dict((f, os.path.getsize(f)) for f in file)

Keep in mind that the result from os.path.getsize(...) is in bytes so you'll have to convert it to get other units if you want.

In general os.path is a key module for manipulating files and paths.

share|improve this answer
    
I have added the script in update above question but still am getting standard errors. –  Rachel Sep 19 '10 at 17:15
    
I have updated questions with the latest script according to your suggestions and the issues what am facing with it. –  Rachel Sep 19 '10 at 17:18
    
I have updated answer for your response and the error which am getting using that approach. –  Rachel Sep 19 '10 at 17:23
    
The list comprehension is superfluous in this case, a simple generator expression does fine and is more efficient. Just leave the square brackets. –  lunaryorn Sep 19 '10 at 17:37
    
Can you elaborate on this, also I have update my questions with specific response to this answer, can you share your comments on it. –  Rachel Sep 19 '10 at 17:39

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