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So, basically the code below is giving an infinite loop. However, if i change i+2 and f+2 to i++ and f++, they don't give an infinite loop. Can someone explain to me why this is? Thanks

#!/bin/bash
for ((i=0; i<5; i+2))
do
for ((f=0; f<5; f+2))
do
echo "$i $f"
done
done
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3 Answers 3

up vote 2 down vote accepted

You need to do +=, not + (also, i+=2 should be f+=2 in your inner loop):

for ((i=0; i<5; i+=2))
do
    for ((f=0; f<5; f+=2))
    do
        echo "$i $f"
    done
done
share|improve this answer
    
Thanks, this works. –  user1739261 Nov 21 '12 at 4:23

i+2 does not change the value of i. It simply adds 2 to the current value of i and returns the result. i++ changes the value of i by incrementing it. Try this instead:

for ((i=0; i<5; i=i+2))

Note that i=i+2 can also be written shorthand as i+=2. The meaning is the same: add 2 to the current value of i and assign the result to i.

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+= syntax is short form so you could also represent i+=2 as i=i+2

for ((i=0; i<5; i+=2))
do
    for ((f=0; f<5; f+=2))
    do
        echo "$i $f"
    done
done
share|improve this answer
1  
Your answer is not the same as the OP. The OP has two nested loops, you don't. –  gniourf_gniourf Nov 21 '12 at 12:50
    
One loop is the same as two for OPs example given vars are separably defined. –  koola Nov 22 '12 at 2:41
    
no, it is not! Check it. –  gniourf_gniourf Nov 22 '12 at 7:21
    
Edited to show nested loop as OP. –  koola Nov 22 '12 at 9:25

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