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I'm trying to base64 encode image in shell script and put it into variable

test="$(printf DSC_0251.JPG | base64)"
echo $test
RFNDXzAyNTEuSlBH

I've also tried something like this test=`echo -ne DSC_0251.JPG | base64`

but still with no success, I want to do something like this

curl -v -X POST -d '{"image":$IMAGE_BASE64,"location":$LOCATION,"time_created":$TIMECREATED}' -H 'Content-type: text/plain; charset=UTF8' http://192.168.1.1/upload

I've found, this http://www.zzzxo.com/q/answers-bash-base64-encode-script-not-encoding-right-12290484.html

but still no success. Thanks for answer.

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2 Answers 2

up vote 12 down vote accepted

You need to use cat to get the contents of the file named 'DSC_0251.JPG', rather than the filename itself.

test="$(cat DSC_0251.JPG | base64)"

However, base64 can read from the file itself:

test=$( base64 DSC_0251.JPG )
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with cat it works, great thanks a lot man. I know that it can read from file, but it still has problems to store it in variable so test="$(cat DSC_0251.JPG | base64)" works for me. –  dash00 Jun 4 '13 at 13:21
1  
What problems? The two commands above should produce identical results, except the first is a useless use of cat. –  chepner Jun 4 '13 at 13:27
    
you are right. This is what should I do $RESPONSE="$(curl -v -X POST -d '{"image":`base64|$DIR$IMAGE`,"location":$LOCATION,"time_created":$TIMECREATED‌​}' -H 'Content-type: text/plain; charset=UTF8' --max-time 180 -s $URL)"; –  dash00 Jun 4 '13 at 13:51
    
I'm not a big Linux specialist, but isn't it a ` symbol that you should enclose command into to put results in variable? –  David Jashi Jun 4 '13 at 13:53
2  
cat vlc.jpg | base64 -w 0 - in case someone want output as string to copy and paste. –  YumYumYum Mar 13 '14 at 10:45

There is a Linux command for that: base64

base64 DSC_0251.JPG >DSC_0251.b64

To assign result to variable use

test=`base64 DSC_0251.JPG`
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1  
base64 -d DSC_0251.b64 > DSC_0251.JPG can get you readable data back. –  Stallman Aug 15 '14 at 3:24

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