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I just wrote a program in c language which uses command line arguments and i tried to print the first argument. when i execute program with following command

./a.out $23

and try to print the first argument using the below code

printf("%s", argv[1]);

the output is just

3

Am i missing something here, that command line arguments are treated differently if some special characters are present. can some one explain this behavior.

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4 Answers

up vote 4 down vote accepted

You need to escape the $ character.

Try this:

./a.out \$23
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Presumably the $2 is being treated as a shell variable. Try escaping the dollar sign:

./a.out \$23
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You have to "inhibit" you argument like this:

./a.out \$23

Some characters are interpreted by the shell. These characters include the following:

  • \ Which inhibits (escapes) the character just behind it (usefull for space, tabs or in your case)
  • * Which represents any single character or character strings
  • $ Which represents a variable (in your case, the shell understands the variable $23, not the string "$23")
  • || or | Which allows a resolution in your command or to pipe your command
  • && or & Which allows combination of commands or which allows the use of job control
  • " Which allows the shell to delimit a character string
  • ' Which allows the shell to not interpret a character string with special characters
  • ; Which delimits commands
  • ` Which interprets the command enclosed by two of these and returns the command's output
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The shell treats $23 as the positional parameter $2 followed by the literal character 3. To pass the string "$23", do either

./a.out \$23

or

./a.out '$23'

To pass the shell's 23rd positional parameter (unlikely, but possible), you would write

./a.out ${23}
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