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I'm trying to keep my function inspect_files to the principle of single responsibility, I know I could easily calculate the file count inside of that function and print it there, but is there a more elegant solution to count files than this?

(Note, I don't want a recursive file count.)

# Snippet:

dir_name="$HOME/$1"

inspect_files() {
  local content
  for content in "$dir_name"/*; do
    printf "%s\n" "${content##*/}"
  done
  count_files "$dir_name"
}

count_files() {
  local count
  local dir="$1"
  count=$(ls -1 "$dir_name" | wc -l)
  printf "\nTotal: %d\n" "$count"
}

if is_found "$dir_name"; then
  inspect_files
else
  echo 'Not a directory.'
fi
share|improve this question
    
use the wc utility. wc -l prints the number of lines. ls $dir_name/* | wc -l should get you running. or count=$(ls $dir_name/* | wc -l) to store the output in count. –  hetepeperfan Jul 28 '13 at 21:50
    
Should be ls -1 to ensure each filename is listed one per line for use with wc. Not all existing ls implementations do that, whether the output is to a terminal device or not. There is also the problem of aliases being used for ls with the -C option specified, so the -1 option must be used to override this. –  Chrono Kitsune Jul 28 '13 at 22:14
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2 Answers

up vote 1 down vote accepted

What about:

list_and_count_files()
{
  local content
  local count
  count=0
  for content in "${1:-.}"/*; do
    printf "%s\n" "${content##*/}"
    ((count++))
  done
  printf "\nTotal: %d\n" "$count"
}

This name is a more accurate description of what your original function does. Note that the directory to be analyzed is passed as an argument to the function, but defaults to . (the current directory) if you don't pass anything. This decouples the function from the variable $dir_name, which is much better for isolation.

share|improve this answer
    
That was my original solution, I just wanted to know is there a better way of counting files other than the way I've written it. I wanted to avoid having to print all of the files in the directory and print the number of files in the same function. It makes me "uneasy" because I feel that it should only do one thing. I like what you did with the array argument, I've always had trouble doing that haha. –  TheGrayFox Jul 28 '13 at 21:56
    
Your function as written has unnecessary coupling via the variable $dir_name (as noted in my commentary). As written, it calls another function too. If you want the functions independent, don't have your inspect_files function call count_files; call the functions separately. However, if you're always going to call them in tandem (so you always want the list and the count), then you're better off with a single function that does the complete job. If you'd ever call count_files without first calling inspect_files, then two functions are warranted. It depends on how you'll use them. –  Jonathan Leffler Jul 28 '13 at 21:59
    
I see, I think I might've thought too far in depth with this problem. When I first tackled it I just printed the files and counted them in the same function as you said. I then came back to it trying to see if I could isolate the two. You're right, sometimes it's better to keep things simple. Appreciate the answer. –  TheGrayFox Jul 28 '13 at 22:04
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The next function:

inspect_files() {
    find "$1/" -type f -maxdepth 1 -print0 | grep -zc .
}

return the plain file count in a given direcotry, e,g:

 tmpcount=$(inspect_files /tmp)
 echo "File count in /tmp is: $tmpcount"

if you want count everything (not only plain files) use a simlper:

inspect_files() {
    find "$1/" -maxdepth 1 -print0 | grep -zc .
}

The slash after "$1/" ensure you counting in the directories what are symbolic links, like

$ ls -ld /tmp
lrwxr-xr-x@ 1 root  wheel  11 27 jul  2012 /tmp -> private/tmp
share|improve this answer
1  
Find is a command I've got to use more, it seems like it really reduces the whole idea of having to loop through the directory. I'll read the man pages a little more on this command, thanks for the answer as well! –  TheGrayFox Jul 28 '13 at 22:05
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