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I've got a program (function) like

countf()
{
    for f in "$1"/* "$1"/.[!.]*; do
        if [ -d "$f" ]; 
        then
            folders=$(($folders + 1))
            countf "$f"
        else
            files=$(($files + 1))
        fi
    done
}

It gives the correct value when the folder contains atleast 1 hidden file. However, it assumes "$1/.[!.]*" as a file and counts it when there's no hidden files.

This is my work around for the problem

countf()
{
    for f in "$1"/* "$1"/.[!.]*; do
        if [ -d "$f" ]; 
        then
            folders=$(($folders + 1))
            countf "$f"
        else
            # added if else
            if [ "$f" != "$1/.[!.]*" ]; then files=$(($files + 1)); fi
        fi
    done
}

I cannot use find.

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3 Answers 3

up vote 0 down vote accepted

If there is no hidden file, the pattern will be treated literally, and since it is not a directory, you assume it is a file. Simply verify that $f is a file, like you checked if it was a directory, before incrementing the file count.

countf()
{
    for f in "$1"/* "$1"/.[!.]*; do
        if [ -d "$f" ]; 
        then
            folders=$(($folders + 1))
            countf "$f"
        elif [ -f "$f" ]
        then
            files=$(($files + 1))
        fi
    done
}
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To count files:

find . -type f | wc -l

To count directories

find . -type d | wc -l

. stands for the current directory. Replace with appropriate path if looking at a different directory.

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This will fail in the (admittedly rare) occasion when a file or directory name contains a newline. –  chepner Jan 22 at 20:39
    
Sorry, I can't use find –  lightning Jan 22 at 20:41

I believe you just need to set nullglob to avoid counting this glob pattern:

shopt -s nullglob

TEST: Doing this in an empty directory:

> echo ./.[!.]*
./.[!.]*

> shopt -s nullglob
> echo ./.[!.]*

>  
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