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I am trying to write a piece of code to display something like this:

1

1 51

1 51 101

1 51 101 151

...

z1=1

for i in {1..4}
do 
j="$(($i + 1))"
z$j="$((z$i)) $((1 + $((i*50))))"
echo -e "\nz$j"
done

However, this is what I end up with:

z1=1: command not found
z2=1 51: command not found
z2
z3=0 101: command not found
z3
z4=0 151: command not found
z4

z2 is good but none of the following ones are.

If I write echo -e "\"$((z$j))"", I end up with 0 for each loop instead of z something.

I cannot find what I am doing wrong?

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I think you need to use let first, so bash knows you're talking about a mathematical variable and not trying to execute a command. –  Patashu Mar 5 '13 at 0:09

3 Answers 3

You can use seq to generate a sequence:

for i in {1..10} ; do
    seq -s ' ' 1 50 $((1+i*50))
done
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Holy shit, that is brilliant. So simple! Thank you –  user1983400 Mar 5 '13 at 0:24
    
@user1983400: simplified. –  choroba Mar 5 '13 at 8:21

Your mistake is that you cannot calculate the variable name in place.

The sh command myVar=myVal evaluates the value (right hand side) but does not evaluate the left hand side. Put your temporary variable name into a variable, then use ${!myVarName} to extract it.

varName="z$i"
${!varName}="whatever"

Don't forget to save your oldVarName for use the next time through.

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is awk acceptable?

kent$  awk -vr=10 'BEGIN{for(i=1;i<=r;i++){s=(i==1)?i:s" "(i-1)*50+1; print s}}'                                                                                            
1
1 51
1 51 101
1 51 101 151
1 51 101 151 201
1 51 101 151 201 251
1 51 101 151 201 251 301
1 51 101 151 201 251 301 351
1 51 101 151 201 251 301 351 401
1 51 101 151 201 251 301 351 401 451
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