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THis is part of my bash code;

        b=`cat 101127_2_aa_1.fastq|head -$a|tail -1|sed 's/\(.\)B*$/\1/g'|wc -c`
        d=`cat 101127_2_aa_1.fastq|head -$a|tail -1|wc -c`
        if (($b%$d>=0.7))
        then

HOwever I got problems like:

line 13: ((: 26%100>=0.7: syntax error: invalid arithmetic operator (error token is ".7")

WHat's the problem? thx

edit: Two if loops in my script:

if (($a%4==0))
if (( 10*$b/$d>= 7 ))

Seems for first one, only "%" works

And for the second one, only "/" works

I'm confused

share|improve this question
1  
Bash does not have floats. –  Amadan Nov 28 '11 at 19:44
    
thx....but then what should I do? –  wang Nov 28 '11 at 19:50
1  
Are you trying to get the modulo, or did you want to divide and messed up the operator? If modulo, then you better describe what you're doing, using modulo on floats... :) Your variable names do not help legibility. If it's division you wanted, then ($b*10)/$d>=7 should work. –  Amadan Nov 28 '11 at 19:56
    
yeah, division is my want. However, when using if (($a%4)),it works well. I mean "%" vs "/", which one should I use? –  wang Nov 28 '11 at 20:43
    
Well, division is /: echo $((200/3)) gives 66. % is modulo (remainder of division), so echo $((200%3)) gives 2 (since 200 = 66 * 3 + 2). Both are grammatical in bash, but they do drastically different things. –  Amadan Nov 28 '11 at 20:49

3 Answers 3

up vote 4 down vote accepted

The division operator is /, not %.

Also bash does not have floats. The workaround is to do something like

if (( 10 * $b / $d >= 7 ))

or

if (( 10 * $b >= 7 * $d ))
share|improve this answer
    
I guess he wants the modulo operator... But judging from the code perhaps division is what he really wants. :) –  DejanLekic Nov 28 '11 at 20:10
    
yeah, division is what i want –  wang Nov 28 '11 at 20:37
    
However,about operator, when I do if (( $a%4==2 )), it works pretty much well. So "%" vs "/", ...I'm confused.... –  wang Nov 28 '11 at 20:39
    
The modulo (%) gives the remainder of the division and will always be an integer. Hence Bash will never complain. The '/' operator is a division and can result in real (non-integer) values. –  JRFerguson Nov 28 '11 at 21:03
1  
@JRFerguson - there are no real valued operations in bash. if (( 4 / 3 == 5 /4 )) ; then echo there are no real valued operations in bash ; fi –  mob Nov 28 '11 at 21:11

BASH is a typeless programming language without floating-point arithmetic. However, you can do flotaing-point operations by using the bc tool. Following article nicely explains how: http://www.linuxjournal.com/content/floating-point-math-bash . What you need from there is the float_cond() function.

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I would use awk.

Here are some examples.

[jaypal:~] awk 'BEGIN{ print 44/3 }'
14.6667

[jaypal:~] a=55
[jaypal:~] b=4
[jaypal:~] awk 'BEGIN { print '$a'/'$b' }'
13.75

As suggested by @Amadan, we can do something like this completely in awk -

a=44
b=5
c=$(awk 'BEGIN { print '$a'/'$b' }')
awk 'BEGIN{if ('$c'>.7) print "yeah"; else print "nope" }'
share|improve this answer
    
no it still doesn't work. Seems bash cannot directly compare anything with float (in this case, $c)...but still thanks a lot –  wang Nov 28 '11 at 20:41
1  
If you're going to use awk, or bc, or perl or Ruby or anything external to bash, do the comparison there too, since bash can't handle the decimal point at all. The problem is not in the division (which is just imprecise) - the problem is in the 0.7 literal (and in your solution, 13.75 as well), which bash can't parse at all. –  Amadan Nov 28 '11 at 20:52
    
Thanks @Amadan, I have changed my answer. –  jaypal singh Nov 28 '11 at 20:57

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