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I have declared a variable as

const char* mode;

I want to get the value of mode from user. When I used

scanf("%s",mode)

I get a segmentation fault. Any suggestions?

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up vote 2 down vote accepted

You need to allocate memory to the pointer to be able to do something meaningful with it. Declare it as:

#define MAX_LENGTH 256
char *mode = malloc(MAX_LENGTH);

Also, it is better to have stack allocation, if the memory needed is not too big: simply,

char mode[MAX_LENGTH];
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Hi Als, but I need to use const char* as I am passing this variable to a function. I cannot use just char* here. – Blackforest May 17 '12 at 5:57
2  
You should be able to pass a char* to anything that wants a const char*, but not vice-versa. – Rob I May 17 '12 at 6:03
    
Thanks Als. That works! – Blackforest May 17 '12 at 6:07

You should have gotten a warning on the scanf call.

By declaring

const char* mode;

you make mode a pointer to const char, which means you can't modify the data that mode points to.

Then you call:

scanf("%s",mode);

which attempts to modify the data that mode points to.

gcc warns about this:

warning: writing into constant object (argument 2) [-Wformat]

So mode needs to be a pointer to non-const char. And, as others have mentioned, it needs to point to some actual data so that scanf can modify that data. That's probably what's causing your segmentation fault, but since you haven't shown us how mode is initialized, it's difficult to tell.

mode will normally point to the first character of an array. So how big does that array have to be? Since you're using scanf with a "%s" format, it can't possibly be big enough. scanf("%s", mode) reads a whitespace-delimited string from stdin into the buffer pointed to by mode. You can't avoid input that will overflow the buffer.

(If this is a beginner's exercise, you can probably ignore the buffer overflow issue for now; just make mode point to a buffer that's reasonably big, and avoid providing very long input.)

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+1: For taking out time to answer and explain in detail instead of just giving an answer like I did. – Alok Save May 17 '12 at 6:58

A segmentation fault is generally an attempt to access memory that the CPU cannot physically address.

That is because u have not allocated memory for your variable.
Note:
But some c compiler like Turbo C++ allows you to do so without even allocating memory.

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even Turbo C code will encounter trouble with uninitialized pointers, though in x86 real mode, it does not cause a segfault: some random memory is corrupted. – wallyk May 17 '12 at 6:15

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