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I have these if conditions, but it has compile errors. How can I fix it?

if [ $DEVICE_ID == "" ]; then

I get error:

line 63: [: ==: unary operator expected


if [ 'ls -l Mytest*.log | wc -l' -eq 1 ]; then

i get error:

line 68: [: ls -l Kernel*.log | wc -l: integer expression expected
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Brackets are from shell and doesn't support empty variables. You should use Bash with double brackets or add double quotes around $DEVICE_ID. –  Zulu Nov 23 '12 at 23:18

2 Answers 2

up vote 3 down vote accepted

Quote the variable:

if [ "$DEVICE_ID" == "" ]; then

But it would be better to do:

if [ -z "$DEVICE_ID" ];

The second error is that you need to use backquotes:

if [ $(ls -l Mytest*.log | wc -l) -eq 1 ]; then
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Thanks. Is there a better way to find if there are files with name 'MyTest*.log'? –  michael Nov 23 '12 at 20:27
    
Terrible bash practise spotted! –  gniourf_gniourf Nov 23 '12 at 20:27
    
@michael Yes, there are much better ways, and checking that ls -l Mytest*.log produces one line of output does not even do that. If you want to see if a file exists that matches the name MyTest*.log, a simple check is if test MyTest*.log != "MyTest*.log" –  William Pursell Nov 23 '12 at 23:02

If you're using bash, use double brackets for conditional expressions: they are smarter about unquoted variables

if [[ $DEVICE_ID = "" ]]; then ...

would work (note: = instead of == for plain string equality instead of pattern matching)

For presence of files use an array

shopt -s nullglob
files=( *.log )
if (( ${#files[@]} > 0 )); the. Echo "there are log files"; fi
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