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I want to call a php file I have from a batch file on windows 7, and it takes a parameter.

Currently, I am doing this:

php myfile.php %1

Where %1 is a value passed to the batch file.

When the php file executes though it does not replace %1 with the value of that variable.

How can I get it so that I can do this?

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How do you try to access the variable in php? –  hek2mgl Apr 8 '13 at 11:49
    
I use $argv. The thing is though if I command out @echo off in the batch file, it seems to be passing %1 literally rather than substituting in it's actual value. –  starbeamrainbowlabs Apr 8 '13 at 13:03

2 Answers 2

up vote 2 down vote accepted

Try:

php myfile.php %~1

or:

php myfile.php "%~1"
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You should add explanations about what you do different and why –  Hugo Dozois Apr 8 '13 at 14:33
    
@HugoDozois The difference is the ~ symbol. –  starbeamrainbowlabs Apr 8 '13 at 15:04
    
@starbeamrainbowlabs I get that, though the answer would be improved if the poster explained WHY he put that. It's just an advice to provide better and clearer answers. Because the post ended up in LQ review queue. –  Hugo Dozois Apr 8 '13 at 15:05
    
@HugoDozois Ah, I see –  starbeamrainbowlabs Apr 8 '13 at 15:11

In PHP you can check the arguments passed to a script using $argv, the value of your variable must be in $argv[1], because $argv[0] is the name of the script. Also, you can check the number of params using $argc

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