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So I keep messing this up and I think where I was going wrong was that the code i'm writing needs to return only the file name and number of lines from an argument.

So using wc I need to get something to accept either 0 or 1 arguments and print out something like "The file findlines.sh has 4 lines" or if they give a ./findlines.sh Desktop/testfile they'll get the "the file testfile has 5 lines"

I have a few attempts and all of them have failed. I can't seem to figure out how to approach it at all.

Should I echo "The file" and then toss the argument name in and then add another echo for "has the number of lines [lines]"?

Sample input would be from terminal something like

>findlines.sh
Output:the file findlines.sh has 18 lines

Or maybe

>findlines.sh /home/directory/user/grocerylist
Output of 'the file grocerylist has 16 lines

Thanks a ton for the suggested edit sir! You rock!

If you think you can just get me started in the right direction i'd give you my heart. <3

share|improve this question
1  
consider editing your question to include sample inputs, required output, current output and exact error messages, and the code you have worked on. It's much easier to help with a solution when we know what the expected results are. Verbal descriptions (even the best) leave a lot of room for interpretation, and hence, back and forth questions between you and the readers. Good luck. – shellter Jun 12 '13 at 17:11
    
How do I like, approve your edit or give you credit for the suggestion. I know that's major rep on this site and you gave me super solid advice. – Looking2learned Jun 12 '13 at 17:17
    
Don't worry about it, I'm just happy to took my advice. In the future, the better detail you can provide, the better the answer will be. Good luck! – shellter Jun 12 '13 at 17:47
up vote 1 down vote accepted

This should work:

#!/bin/bash

file="findfiles.sh"
if [ $# -ge 1 ]
then
    file=$1
fi

if [ -f $file ]
then
    lines=`wc -l "$file" | awk '{print $1}'`
    echo "The file $file has $lines lines"
else
    echo "File not found"
fi

See sch's answer for a shorter example that doesn't use awk.

share|improve this answer
    
This works amazingly. So I can just make a variable and then throw code after an = sign with single quotes and it works like that every time? I keep finding that bash is kinda quirky. – Looking2learned Jun 12 '13 at 17:22
    
Is there anyway to add validation to this? Like for only zero or one argument and for things that are not a file? – Looking2learned Jun 12 '13 at 17:23
    
if [ $# -eq 0 ]; then echo zero; elif [ $# -eq 1 ]; then echo one; elif [ $# -eq 2 ] || [ $# -eq 3 ]; then echo "two or three"; fi – ctn Jun 12 '13 at 17:25
    
type help test for more expressions – ctn Jun 12 '13 at 17:28
1  
A few shell scripting bad practice in there: unquoted variables, no -- before alien argument, usage of echo. Note that you don't need to pull awk if you use the lines=$(wc -l < "$file") syntax. There's nothing bash specific in there, so you could use sh. – Stephane Chazelas Jun 12 '13 at 19:58
#! /bin/sh -
file=${1-findfiles.sh}
lines=$(wc -l < "$file") &&
  printf 'The file "%s" has %d lines\n' "$file" "$lines"
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