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Why is int"$((++k))"=test considered as a command by bash? Example:

$ int1=test
$ int"$((++k))"=test
bash: int1=test: command not found
$ 

I know that I could use declare int"$((++k))"=test, but why doesn't int"$((++k))"=test work?

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This is solvable using eval. Note that what's sent to eval will be processed once by the shell. –  Jite May 8 '14 at 9:14
2  
You're trying to generate variables. In bash this requires eval when assigning values, or indirection ${!var} on evaluation. In ksh93, nameref (alias for typeset -n) can do both. –  Henk Langeveld May 8 '14 at 9:18
    
bash 4.3 (to be released) will also support name refs with declare -n. –  chepner May 8 '14 at 12:47

3 Answers 3

This behavior is specified in POSIX 2.10.2.7 on the Shell Command Language (emphasis mine):

If all the characters preceding '=' form a valid name (see the Base Definitions volume of IEEE Std 1003.1-2001, Section 3.230, Name), the token ASSIGNMENT_WORD shall be returned. (Quoted characters cannot participate in forming a valid name.)

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You can use eval like below to solve your problem with variable generation:

eval int$((++k))=test

Note that what's sent to eval will be processed once by the shell.

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Because the bash grammar requires so.

<letter> ::= a|b|c|d|e|f|g|h|i|j|k|l|m|n|o|p|q|r|s|t|u|v|w|x|y|z|
             A|B|C|D|E|F|G|H|I|J|K|L|M|N|O|P|Q|R|S|T|U|V|W|X|Y|Z

<digit> ::= 0|1|2|3|4|5|6|7|8|9

<number> ::= <digit>
           | <number> <digit>

<word> ::= <letter>
         | <word> <letter>
         | <word> '_'
         | <word> <digit>

<word_list> ::= <word>
             |  <word_list> <word>

<assignment_word> ::= <word> '=' <word>
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Hmmm. Then letter123=123 is not valid? ;) I assume number should be added somehow to <word>'s definition, shouldn't it? –  TrueY May 8 '14 at 9:19
    
@TrueY, it looks like you've caught a bug in the book I was referencing to. –  ivg May 8 '14 at 9:36
    
-1 for an old, incorrect reference. That grammar mentions bash 2; bash 3, itself rare now, was released over 8 years ago. –  chepner May 8 '14 at 12:44
    
@ivg: Just complete the definition of <word>. A | <word> <digit> seems to be sufficient. –  TrueY May 9 '14 at 8:57
    
@TrueY, I've updated the grammar definition. Just in case. Thanks, for pointing it! –  ivg May 9 '14 at 9:44

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