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I'm having this problem.

char buffer[100];
buffer[0] = "\n";

For some reason, the following statement is true

buffer[0] == 'T'

When it should be the "\n" ascii. Why?

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5  
You are comparing char* to a char. –  user195488 Aug 20 '11 at 15:32
3  
buffer[0] = "\n" is not a compilable code. You code will not compile and, obviously, will not run. Yet, you claim that you have buffer[0] == 'T' (implying that you ran the code). This means that the code above is fake and has no relation to the question. Please, post real code. At this time the question makes no sense whatsoever. –  AndreyT Aug 20 '11 at 15:56
3  
@AndreyT: A good compiler will warn you about that line of code, but it's not actually illegal. You almost never want to assign a char* to a char but C will happily let you shoot yourself in the foot. –  Clueless Aug 20 '11 at 15:58
2  
@WTP: This is not how C's typing works. This is how the OPs compiler works. C language does not allow one to convert pointers to integers without a cast. In C the above is constraint violation, i.e. what we typically call an error. If the OPs compiler issues warnings for full-blown constraint violations, then OP has to carefully watch these warnings, I guess. (Or find a better compiler?) –  AndreyT Aug 20 '11 at 16:00
2  
@AndreyT: From the C99 specification: "Any pointer type may be converted to an integer type. Except as previously specified, the result is implementation-defined. If the result cannot be represented in the integer type, the behavior is undefined. The result need not be in the range of values of any integer type." –  Clueless Aug 20 '11 at 16:10

3 Answers 3

up vote 0 down vote accepted

Try *buffer[0] = '\n'. I think that would give you the desired result, as it is char you are assigning not string. For string use double quotes and for char single quote.

As rightly pointed in the comment buffer[0] is char pointer, so first it needs to be allocated memory too. calloc would be a better choice here as it is going to assign default 0 values whereas malloc will just allocate space having garbage values.

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buffer[0] would contain A POINTER and certainly not a char. –  Prof. Falken Aug 20 '11 at 15:36
    
sorry overlooked that i will edit the ans. –  Nik Aug 20 '11 at 15:38
2  
You were right the first time. buffer is a stack allocated array with 100 chars in it, and buffer[0] is the first element. The correct statement is buffer[0] = '\n';. –  Clueless Aug 20 '11 at 15:45
    
@Nik: "As rightly pointed in the comment buffer[0] is char pointer, so first it needs to be allocated memory too." What exactly is meant by this statament? buffer[0] is not a char pointer, it is just a char. How can anyone "allocate" anything for buffer[0] here with calloc is totally unclear to me. –  AndreyT Aug 20 '11 at 19:50
    
@Nik: The comment by @Amigable Clark Kant is very poorly worded. buffer[0] is a char. There's no way around it. Regardless of what you attempt to squezze into buffer[0], it will always remain a char. In this case the OP is trying to force a pointer value into a char object. This is illegal as written, but even if he succeeds to compile it, the end result in buffer[0] will be a char and certainly not a pointer. It is going to be some unpredictable char (T in his case), but a char neveretheless. Claiming that buffer[0] is a pointer in this case is nonsense. –  AndreyT Aug 20 '11 at 19:57

"\n" is a C string, that is a char * pointing at a null terminated series of char elements. Your program takes the address of that string, and stores the lowest 8 bits into buffer[0]. In your case they happen to be the ASCII code for T.

Try the following:

char buffer[100];
buffer[0] = '\n';

'\n' is a char literal, so this will behave as expected.

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@Erandros: This is the best answer you received so far. The only side note I'd make is that the behavior described in this answer is allowed to slip through by overly loose error checking in your compiler (happens pretty often in C compiler world), although you should have been paying attention to warnings. A pedantic ANSI C compiler would reject your program outright with an error message. –  AndreyT Aug 20 '11 at 20:01
    
I have no idea why this response wasn't chosen as the best answer, or @sees response, as both of you have provided the buffer[0]= '\n'; suggestion, which was the key. Anyway, I saw some of your other questions on SO. They are very interesting in general. Edge cases, or like physical mechanics "thought experiments". So you aren't so clueless, I don't think. –  Ellie Kesselman Oct 6 '11 at 4:12

Edited: I got it wrong. Your code should be rewritten to the following code:

char buffer[100]={0};
buffer[0]= '\n';

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