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I trying to make a program that outputs a triangle of stars in Bash.

Here is what it would look like:

enter image description here

However, I am getting a line 8: [: 1: unary operator expected error

Here is my code

#! /bin/bash

read -p "Plese input a number for a magical surprise diagram: " input

tri1="1"
tri2="1"

while [ $tri1 -le $input ]; do
   while [ $tri2 -le $tri1 ]; do
   echo -n "*"
   tri2=$( ( $tri2 + 1 ) )
   done
  echo -n ""
    tri1=$( ( $tri1 + 1 ) )
    tri2=1
done

I am a beginner at bash scripting, so please bear with me as I learn.

0

Here is the fix

#! /bin/bash

read -p "Plese input a number for a magical surprise diagram : " input

tri1="1"
tri2="1"

while [ $tri1 -le $input ]; do
   while [ $tri2 -le $tri1 ]; do
   echo -n "*"
   ((tri2=$tri2 + 1 ))    #fixed
   done
  echo -n "" 
    ((tri1= $tri1 + 1 )) #fixed
    tri2=1
  echo ""      # need add a return, otherwise, all output in one line.
done
  • 1
    Thank you, this solved it! I didn't realize about the last echo line. – user3317098 Feb 17 '14 at 0:05
2

Here's a revised version that takes full advantage of arithmetic evaluation - ((...)) - and expansion $((...)):

#!/usr/bin/env bash

read -p "Please input a number for a magical surprise diagram: " input

tri1=1
tri2=1

while (( tri1 <= input )); do
  while (( tri2 <= tri1 )); do
    printf '*'
    (( ++tri2 ))
  done
  printf '\n'
  (( ++tri1 ))
  tri2=1
done

Also uses the more portable printf, which makes it clearer what is output.


Update:

Simplified version with for ((...;...;...)) loops in lieu of while:

#!/usr/bin/env bash

read -p "Please input a number for a magical surprise diagram: " input

for (( tri1 = 1; tri1 <= input; tri1++ )); do
  for (( tri2 = 1; tri2 <= tri1; tri2++ )); do
    printf '*'
  done
  printf '\n'
done

Even further simplification, replacing the inner loop with a printf trick (borrowed from here):

#!/usr/bin/env bash

read -p "Please input a number for a magical surprise diagram: " input

for (( i = 1; i <= input; i++ )); do
  printf '*%.s' $(seq $i)
  printf '\n'
done
  • Thanks a lot, I didnt know you could do this, and ill try to implement it! – user3317098 Feb 17 '14 at 1:27
  • @user3317098: You're welcome; I should also have mentioned for ((...;...;...)) loops, which are better suited to your task - see my updated answer. – mklement0 Feb 17 '14 at 3:17
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Just try using quotes

while [ "$tri1" -le "$input" ]; do
  while [ "$tri2" -le " $tri1" ]; do ...

should fix it. Proably you have spaces on $input.

  • Thanks for the reply, but now it says that there is a line 8: [: : integer expression expected – user3317098 Feb 16 '14 at 23:29
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See the difference. This works

echo $(( 1+1 ))

while this one does not

echo $( ( 1+1 ) )
  • Thanks for the reply, I fixed it and added quotes, but I am still getting line 8: [: : integer expression expected – user3317098 Feb 16 '14 at 23:56
  • Once i've corrected this mistake, I stopped getting this error. – Nik O'Lai Feb 17 '14 at 0:01
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The two starting parentheses (( must be a single token for an arithmatic expression, so that it cannot be confused with two nested subshells ( ...; ( ... )).

Between (( and )) you can have any amount of whitespace around the operands and operators of the expression.

The first expression in your code should read either

tri2=$(( tri2 + 1 ))  # POSIX

or

(( tri2=tri2 + 1 ))   # valid in bash and ksh93
0

I think this is a faster and more readable way to print ranging multiples of a character or string.

#!/bin/bash

read -p "Please input a number for a magical surprise diagram : " input

for i in $(seq $input); do
    c+="*"
    echo "$c"
done

It's important to use quotes here as * will otherwise expand to file names in the current directory.

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