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1

Zanderg said that he found the problem, but he never bothered to mention what it was. I'll go ahead and post it regardless for anybody who might still be interested. Let's try the following piece of code: #include <stdio.h> #include <string.h> #include <ctype.h> #include <stdlib.h> int main(int argc, const char * argv[]) { ...


1

You used address operator twice, with one in input-order string. The correct operator to be used in the string is %d as it resembles int. %d - int. %c - char. %s - string. and so on... Anyway - the scanf should be written scanf("%d", &numOfRands); rather than scanf("&d", &numOfRands);


3

scanf("&d", &numOfRands); Do you mean scanf("%d", &numOfRands); ?


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The pointer value points to (the static array associated with) a string literal. Attempting to modify a string literal has undefined behavior. In this case, your compiler stores the string "gogo" in memory marked as read-only by the operating system, and attempting to modify it causes your program to crash. If you declare a pointer to a string literal, you ...


2

Because char *value="gogo"; is more likely than not allocated to READ ONLY MEMORY! Better: #include <stdio.h> #include <string.h> #define MAX_LINE 80 int main() { char value[MAX_LINE] ="gogo"; puts(value); strcpy (value, "11"); puts(value); fgets(value, MAX_LINE, stdin); puts(value); return 0; } Here is a good ...


1

Here, your pointer points to a string literal ("gogo"). String literals are not guaranteed to be writable. You need to allocate your own memory: char value[50] = "gogo"; ... gets(value); However, this is not safe, as gets does not take the size of the buffer, and thus might overflow your buffer. (Which could also lead to a runtime error). NEVER use gets, ...


0

as told by @chux , scanf leaves '\n' in the stdin ( memory buffer ) , and fgets() takes value until there is a '\n' in the buffer , in order to clear the buffer the statement fflush(stdin); is used before the fgets() statement



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