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Can I do

write(&'\n', 1); 

and is it equivalent to

char a = '\n';
write(&a, 1);

How would you solve this in a fashion way?

I'm tring to write the new-line caracter with a function that only take char array as first argument, and its dimension in second argument (dimension has to be specified because \0 is a valid writable character)

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What are you trying to do with this? – Alok Save Sep 13 '12 at 12:34
Solve what? No, you can't take an address of a character literal. – eq- Sep 13 '12 at 12:34
Wear a tight dress and saunter down the fashion runway? It's difficult to have any idea what you're asking. – mah Sep 13 '12 at 12:36
edited to add a more usefull explanation – lesto Sep 13 '12 at 12:38
A character literal (For example 'a' or '\t') is evaluated to the ascii value of that caracter, so you can't use &'a' because it would be like writing &95 – Eregrith Sep 13 '12 at 13:20

4 Answers 4

up vote 1 down vote accepted

As others already pointed out, you cannot take the address of a character literal.

And even if you could, it would be the wrong type, because a character array usually must be zero-terminated.

What you are looking for is:

write("\n", 1);

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it doesn't have to be zero terminated because i specify the lenght of the array, because \0 is a valid character to be write (i know, probabily the author of the write() should had use byte[] instead char[]) – lesto Sep 13 '12 at 12:44
byte does not exist in C – Eregrith Sep 13 '12 at 13:23
you are right, it should be uint8_t[] in pure c, but library code is Wiring – lesto Sep 13 '12 at 13:44
@lesto: That's why I wrote "usually": You didn't give details, and as a rule, I don't assume when using APIs. ;-) – DevSolar Sep 13 '12 at 15:09

What you're asking is for two different things:

'\n' is a character literal, and will be treated as an integer literal.

char a is a character variable.

you can get the address of a variable, not a literal.

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You can do this:

write("\n", 1); 
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this seems a nice solution, but maybe compiler do some weird thing here? like change "\n" in '\n'... – lesto Sep 13 '12 at 12:47

The reason that you can't take the address of a character literal, is because the compiler actually replaces it by the characters actual ASCII value, in this case 10. So your code actually is:

write(&10, 1);

And you can't take the address of a number literal, because it's most likely not stored in memory but part of the actual generated code.

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ok, i understand your explanation and it seems the right answer. I was just tryng to "condensate" the code char a = '\n'; write(&a, 1); in only one line – lesto Sep 13 '12 at 12:39

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