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I want to know what exactly will happened if I change the memory return from getenv

I know this is not a good code. I know setenv by the way.

Like:

char *new_path = "/home/user/dev/myTry1";
char *path = getenv("PATH");// assume there is : PATH=/home/user/dev/myTry
//now *path = "/home/user/dev/myTry" 
memcpy(path,new_path,strlen(new_path)+1);

Is this a undefined behavior ? Or just a wrong code?

I tried it and no error or segmentation fault happened.

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1  
getenv will return a string containing the valueof the designated env-variable. Nothing happens when you manipulate the return value. – bash.d Aug 20 '13 at 7:35
    
@bash.d: he's overwriting it with a longer string though which is almost certainly bad news – Paul R Aug 20 '13 at 7:36
    
I thought it was about harming the env... In that particular case it is dangerous – bash.d Aug 20 '13 at 7:36
1  
@LidongGuo It's 1. that the docs forbid it, so you shouldn't do it under any circumstances; 2. you don't know the length of the internal static buffer, so you risk buffer overruns anyway. – user529758 Aug 20 '13 at 7:40
1  
Useful rule of thumb: if you don't own something then don't mess with it. – Paul R Aug 20 '13 at 8:09
up vote 5 down vote accepted

No, you can't. From the documentation:

Conforming applications are required not to modify environ directly, but to use only the functions described here to manipulate the process environment as an abstract object.

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It's wrong code with undefined behavior. I.e. you are not nannied.

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what nannied means? – Lidong Guo Aug 20 '13 at 7:46
    
Sorry for that. Comes from "nanny". Roughly, it means "supervised" or "monitored". But it's very colloquial. – Mario Rossi Aug 20 '13 at 8:06

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