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Assume I have an executable C++ program called lencode, and I want to run it by using UUOC. I can run it successfully with the following command:

cat file.txt | ./lencode

But now, because of some requirements, I want my command line in the format of this instead:

cat file.txt | lencode

I failed to run the program. How can I achieve this?

  • Sorry, there is no quotes, my mistake. – jeren_yaoye_lu Jun 12 at 3:07
  • This is definitely not a C++ question. What is an executable C++ program? – Daniel Langr Jun 12 at 11:29
  • Because that's the way Unix-based operating systems work. This question is more suitable for Super User or Unix & Linux, and has nothing to do with C++ (or programming) - it's a basic "How does my operating system work?* question. – Ken White Jun 12 at 22:29
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The reason for the ./ prefix is because the current directory (as referred to by the shortcut ".") is not in your $PATH environment variable.

One answer is, put "." in your $PATH environment.

For bash:

export PATH=$PATH:.

For tcsh:

setenv PATH ${PATH}:.

To determine your shell:

echo $0

For more information on your shell:

man bash

or

man tcsh

However this is a security risk. A better way to do it (as noted in Justin Rameriz's answer) is to put the directory that contains lencode (/home/user/ if lencode is located at /home/user/lencode) in your $PATH, or move lencode to a directory that is in your $PATH.

For example, if you are using tcsh as your shell:

mkdir $HOME/bin
cp lencode $HOME/bin
setenv PATH ${PATH}:$HOME/bin

To keep this setting the next time you login, you should place this in your $HOME/.tcshrc file:

setenv PATH ${PATH}:$HOME/bin
1

Add the directory of lencode to your path, or move it to a directory that is in your path. You may not always want the current directory in your path. i.e any time you have a file in your cwd that happens to be the name of a command.

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