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In shell scripting (bash) why does the conditional get satisfied

if [ 1 ]
then
 echo should not enter
fi

#Output
should not enter
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Because 1 is equivilent to true – chown Nov 12 '11 at 23:52
2  
Good question. It's nice to see people not being afraid to ask the basics. – Preet Sangha Nov 12 '11 at 23:53
    
@PreetSangha thanks – puk Nov 13 '11 at 0:02
up vote 7 down vote accepted

The square brackets in bash are equivalent to calling test with the arguments within the brackets. man test says that

STRING equivalent to -n STRING

and

-n STRING the length of STRING is nonzero

, and 1 is not an empty string. if [ 0 ], if [ false ] and if [ no ] have the same result, but if [ "" ] has not.

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What may not be obvious is that these two are very different:

if [ false ]

and

if false

The first, as thiton and Ignacio Vazquez-Abrams say, implicitly checks if the string false is empty. The second version tests the exit status of the command false. (The testing of an exit status isn't literally a true/false test. It checks for success or failure as represented by numeric codes. As you can imagine, the exit status of false is always failure. That's its job.)

For more on all of this, the BashGuide on Greg's Wiki is very clear.

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Because 1 is not an empty string; it has one character in it, which is the numeral "1".

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