C language tricky programs

 1. Write a c program too shutdown window operating system   in TURBO C.

void main(void)
{
system(“shutdown -s”);
}
Save the above .Let file name is close.c and compile and execute the above program. Now close the turbo c compiler and open the directory in window you have saved the close.c (default directory c:tcbin) and double click its exe file (close.exe).After some time your window will shutdown.

2. Write a scanf statement which can store one line of string which includes white space?

Answer:

void main() {
char a[30];
clrscr();
scanf(“%[^n]”,a);
printf(“%s”,a);
getch();
}

3. Given the string “MATCHMAKING”, write a program to read the string from the terminal and display the same in the following formats:

(a) MATCH MAKING
(b) MATCH
MAKING
(c) M.M.

4.  I need it to write a C/C++ program that connects to a MySQL server and displays the global TIMEZONE.

5.  A string (example “I am writing an email”) is entered through the keyboard, write a program in C to get its reverse in a column as output i.e.:
email
an
writing
am

Answer:

void main()
{
char str[20];
char *ptr=str,*temp;
int i=0,j;
clrscr();
scanf(“%[^n]”,str);
while(*ptr){
i++;
ptr++;
}
for(j=0;j
            if(*ptr==’ ‘)
            {
                  temp=ptr;ptr–;temp++;
                  while((*temp!=’ ‘)&&(*temp!=’’)) {
                       printf(“%c”,*temp);
                        temp++;
                  }
                  printf(“n”);
            }
            else
            {
                  ptr–;
            }
}
while(*ptr!=’ ‘) {
printf(“%c”,*ptr);
ptr++;
}
getch();
}

6. I want a C program to check whether a string is a palindrome or not where the string to be checked is passed as command line argument during execution.

Answer:

#include<string.h>
void main(int counter,char**string)
{
char *rev;
char str[15];
int i,j;
clrscr();
strcpy(str,string[1]);
printf(“%s”,str);
for(i=strlen(str)-1,j=0;i>=0;i–,j++)
rev[j]=str[i];
rev[j]=’’;
if(strcmp(rev,str))
printf(“nThe string is not a palindrome”);
else
printf(“nThe string is a palindrome”);
getch();
}

7. How to write a c program to display the source code of the program.

Answer:

If source code is available
#include<stdio.h>
void main()
{
   char str[70];
   FILE *p;
   clrscr();
   if((p=fopen(“mod.c”,”r”))==NULL)
   {
      printf(“nUnable t open file string.txt”);
      exit(1);
   }
   while(fgets(str,70,p)!=NULL)
          puts(str);
   fclose(p);
   getch();
}

8. Swapping of two number without using third variable

Answer:

void main()
{
int a=5,b=10;
clrscr();
//process one
a=b+a;
b=a-b;
a=a-b;
printf(“a= %d  b=  %d”,a,b);
//process two
a=5;b=10;
a=a+b-(b=a);
printf(“na= %d  b=  %d”,a,b);
//process three
a=5;b=10;
a=a^b;
b=a^b;
a=b^a;
printf(“na= %d  b=  %d”,a,b);
//process four
a=5;b=10;
a=b-~a-1;
b=a+~b+1;
a=a+~b+1;
printf(“na= %d  b=  %d”,a,b);
//process five
a=5,b=10;
a=b+a,b=a-b,a=a-b;
printf(“na= %d  b=  %d”,a,b);
getch();
}

9. How to convert decimal to binary in c program?

Answer

void main()
{
  long int m,no=0,a=1;
  int n,rem;
  clrscr();
  printf(“Enter any decimal number->”);
  scanf(“%d”,&n);
  m=n;
  while(n!=0)
  {
          rem=n%2;
          no=no+rem*a;
          n=n/2;
          a=a*10;
  }
  printf(“The value %ld in binary is->”,m);
  printf(“%ld”,no);
  getch();
}
 
10. Write a program to accept character and integer n from user and display next n character

Answer:

void main()
{
char c;
int n,i;
clrscr();
printf(“insert one character and integer : “);
scanf(“%c%d”,&c,&n);
for(i=c+1;i<=c+n;i++)
printf(“%c “,i);
getch();
}

Output:
insert one character and integer : c 4
d e f g

 Find error in following c snippet?
#include <stdio.h>
#include <conio.h>
int x;
int x=0;
int x;
int main(){
   printf(“%d”,x);
   getch();
   return 0;
}
Answer:
No error. Global variables can have several declarations in C. Same is true for function declarations.

Find error in following c snippet?
#include <stdio.h>
#include <conio.h>
int x;
int x=0;
int x;
int x=1;
int main(){
   printf(“%d”,x);
   getch();
   return 0;
}
Answer:
Error in Line number 6. Global variables can have several declarations in C but only one definition. Same is true for function declarations.

1)
main()
{
clrscr();
}
clrscr();

Answer:
No output/error
Explanation:
The first clrscr() occurs inside a function. So it becomes a function call. In the second clrscr(); is a function declaration (because it is not inside any function).

2)
enum colors {BLACK,BLUE,GREEN}
main()
{

printf(“%d..%d..%d”,BLACK,BLUE,GREEN);

return(1);
}
Answer:
0..1..2
Explanation:
enum assigns numbers starting from 0, if not explicitly defined.

3)
void main()
{
char far *farther,*farthest;

printf(“%d..%d”,sizeof(farther),sizeof(farthest));

}
Answer:
4..2
Explanation:
the second pointer is of char type and not a far pointer

4)
main()
{
int i=400,j=300;
printf(“%d..%d”);
}
Answer:
400..300
Explanation:
printf takes the values of the first two assignments of the program. Any number of printf’s may be given. All of them take only the first two values. If more number of assignments given in the program,then printf will take garbage values.

5)
main()
{
char *p;
p=”Hello”;
printf(“%cn”,*&*p);
}
Answer:
H
Explanation:
* is a dereference operator & is a reference  operator. They can be    applied any number of times provided it is meaningful. Here  p points to  the first character in the string “Hello”. *p dereferences it and so its value is H. Again  & references it to an address and * dereferences it to the value H.

6)
main()
{
int i=1;
while (i<=5)
{
printf(“%d”,i);
if (i>2)
goto here;
i++;
}
}
fun()
{
here:
printf(“PP”);
}
Answer:
Compiler error: Undefined label ‘here’ in function main
Explanation:
Labels have functions scope, in other words The scope of the labels is limited to functions . The label ‘here’ is available in function fun() Hence it is not visible in function main.

7)
main()
{
int i=0;

for(;i++;printf(“%d”,i)) ;
printf(“%d”,i);
}
Answer:
1
Explanation:
before entering into the for loop the checking condition is “evaluated”. Here it evaluates to 0 (false) and comes out of the loop, and i is incremented (note the semicolon after the for loop).

8)
#include<stdio.h>
main()
{
char s[]={‘a’,’b’,’c’,’n’,’c’,’’};
char *p,*str,*str1;
p=&s[3];
str=p;
str1=s;
printf(“%d”,++*p + ++*str1-32);
}
Answer:
M
Explanation:
p is pointing to character ‘n’.str1 is pointing to character ‘a’ ++*p meAnswer:”p is pointing to ‘n’ and that is incremented by one.” the ASCII value of ‘n’ is 10. then it is incremented to 11. the value of ++*p is 11. ++*str1 meAnswer:”str1 is pointing to ‘a’ that is incremented by 1 and it becomes ‘b’. ASCII value of ‘b’ is 98. both 11 and 98 is added and result is subtracted from 32.
i.e. (11+98-32)=77(“M”);

9)
#include<stdio.h>
main()
{
struct xx
{
int x=3;
char name[]=”hello”;
};
struct xx *s=malloc(sizeof(struct xx));
printf(“%d”,s->x);
printf(“%s”,s->name);
}
Answer:
Compiler Error
Explanation:
Initialization should not be done for structure members inside the structure declaration

10)
#include<stdio.h>
main()
{
struct xx
{
int x;
struct yy
{
char s;
struct xx *p;
};
struct yy *q;
};
}
Answer:
Compiler Error
Explanation:
in the end of nested structure yy a member have to be declared.

11)
main()
{
extern int i;
i=20;
printf(“%d”,sizeof(i));
}
Answer:
Linker error: undefined symbol ‘_i’.
Explanation:
extern declaration specifies that the variable i is defined somewhere else. The compiler passes the external variable to be resolved by the linker. So compiler doesn’t find an error. During linking the linker searches for the definition of i. Since it is not found the linker flags an error.

12)
main()
{
printf(“%d”, out);
}
int out=100;
Answer:
Compiler error: undefined symbol out in function main.
Explanation:
The rule is that a variable is available for use from the point of declaration. Even though a is a global variable, it is not available for main. Hence an error.

13)
main()
{
extern out;
printf(“%d”, out);
}
int out=100;
Answer:
100
Explanation:
This is the correct way of writing the previous program.

14)
main()
{
show();
}
void show()
{
printf(“I’m the greatest”);
}
Answer:
Compier error: Type mismatch in redeclaration of show.
Explanation:
When the compiler sees the function show it doesn’t know anything about it. So the default return type (ie, int) is assumed. But when compiler sees the actual definition of show mismatch occurs since it is declared as void. Hence the error.
The solutions are as follows:
1. declare void show() in main() .
2. define show() before main().
3. declare extern void show() before the use of show().

15)
main()
{
static char names[5][20]={“pascal”,”ada”,”cobol”,”fortran”,”perl”};
int i;
char *t;
t=names[3];
names[3]=names[4];
names[4]=t;
for (i=0;i<=4;i++)
printf(“%s”,names[i]);
}
Answer:
Compiler error: Lvalue required in function main
Explanation:
Array names are pointer constants. So it cannot be modified.

16)
void main()
{
int i=5;
printf(“%d”,i++ + ++i);
}
Answer:
Output Cannot be predicted  exactly.
Explanation:
Side effects are involved in the evaluation of   i

17)
main()
{
char string[]=”Hello World”;
display(string);
}
void display(char *string)
{
printf(“%s”,string);
}
Answer:
Compiler Error : Type mismatch in redeclaration of function display
Explanation :
In third line, when the function display is encountered, the compiler doesn’t know anything about the function display. It assumes the arguments and return types to be integers, (which is the default type). When it sees the actual function display, the arguments and type contradicts with what it has assumed previously. Hence a compile time error occurs.

18)
main()
{
int c=- -2;
printf(“c=%d”,c);
}
Answer:
c=2;
Explanation:
Here unary minus (or negation) operator is used twice. Same maths  rules applies, ie. minus * minus= plus.
Note:
However you cannot give like –2. Because — operator can  only be applied to variables as a decrement operator (eg., i–). 2 is a constant and not a variable.

19)
#define int char
main()
{
int i=65;
printf(“sizeof(i)=%d”,sizeof(i));
}
Answer:
sizeof(i)=1
Explanation:
Since the #define replaces the string  int by the macro char

20)
main()
{
int i=10;
i=!i>14;
Printf (“i=%d”,i);
}
Answer:
i=0

Explanation:
In the expression !i>14 , NOT (!) operator has more precedence than ‘ >’ symbol.  ! is a unary logical operator. !i (!10) is 0 (not of true is false).  0>14 is false (zero).

21)
#include<stdio.h>
main()
{
char s[]={‘a’,’b’,’c’,’n’,’c’,’’};
char *p,*str,*str1;
p=&s[3];
str=p;
str1=s;
printf(“%d”,++*p + ++*str1-32);
}
Answer:
77
Explanation:
p is pointing to character ‘n’. str1 is pointing to character ‘a’ ++*p. “p is pointing to ‘n’ and that is incremented by one.” the ASCII value of ‘n’ is 10, which is then incremented to 11. The value of ++*p is 11. ++*str1, str1 is pointing to ‘a’ that is incremented by 1 and it becomes ‘b’. ASCII value of ‘b’ is 98.
Now performing (11 + 98 – 32), we get 77(“M”);
So we get the output 77 :: “M” (Ascii is 77).

22)
#include<stdio.h>
main()
{
int a[2][2][2] = { {10,2,3,4}, {5,6,7,8}  };
int *p,*q;
p=&a[2][2][2];
*q=***a;
printf(“%d—-%d”,*p,*q);
}
Answer:
SomeGarbageValue—1
Explanation:
p=&a[2][2][2]  you declare only two 2D arrays, but you are trying to access the third 2D(which you are not declared) it will print garbage values. *q=***a starting address of a is assigned integer pointer. Now q is pointing to starting address of a. If you print *q, it will print first element of 3D array.

23)
#include<stdio.h>
main()
{
struct xx
{
int x=3;
char name[]=”hello”;
};
struct xx *s;
printf(“%d”,s->x);
printf(“%s”,s->name);
}
Answer:
Compiler Error
Explanation:
You should not initialize variables in declaration

24)
#include<stdio.h>
main()
{
struct xx
{
int x;
struct yy
{
char s;
struct xx *p;
};
struct yy *q;
};
}
Answer:
Compiler Error
Explanation:
The structure yy is nested within structure xx. Hence, the elements are of yy are to be accessed through the instance of structure xx, which needs an instance of yy to be known. If the instance is created after defining the structure the compiler will not know about the instance relative to xx. Hence for nested structure yy you have to declare member.

25)
main()
{
printf(“nab”);
printf(“bsi”);
printf(“rha”);
}
Answer:
hai
Explanation:
n  – newline
b  – backspace
r  – linefeed

26)
main()
{
int i=5;
printf(“%d%d%d%d%d%d”,i++,i–,++i,–i,i);
}
Answer:
45545
Explanation:
The arguments in a function call are pushed into the stack from left to right. The evaluation is by popping out from the stack. and the  evaluation is from right to left, hence the result.

27)
#define square(x) x*x
main()
{
int i;
i = 64/square(4);
printf(“%d”,i);
}
Answer:
64
Explanation:
the macro call square(4) will substituted by 4*4 so the expression becomes i = 64/4*4 . Since / and * has equal priority the expression will be evaluated as (64/4)*4 i.e. 16*4 = 64

28)
main()
{
char *p=”hai friends”,*p1;
p1=p;
while(*p!=’’) ++*p++;
printf(“%s   %s”,p,p1);
}
Answer:
ibj!gsjfoet
Explanation:
++*p++ will be parse in the given order
?    *p that is value at the location currently pointed by p will be taken
?    ++*p the retrieved value will be incremented
?    when ; is encountered the location will be incremented that is p++ will be executed
Hence, in the while loop initial value pointed by p is ‘h’, which is changed to ‘i’ by executing ++*p and pointer moves to point, ‘a’ which is similarly changed to ‘b’ and so on. Similarly blank space is converted to ‘!’. Thus, we obtain value in p becomes “ibj!gsjfoet” and since p reaches ‘’ and p1 points to p thus p1doesnot print anything.

29)
#include <stdio.h>
#define a 10
main()
{
#define a 50
printf(“%d”,a);
}
Answer:
50
Explanation:
The preprocessor directives can be redefined anywhere in the program. So the most recently assigned value will be taken.

30
#define clrscr() 100
main()
{
clrscr();
printf(“%dn”,clrscr());
}
Answer:
100
Explanation:
Preprocessor executes as a seperate pass before the execution of the compiler. So textual replacement of clrscr() to 100 occurs.The input  program to compiler looks like this :
main()
{
100;
printf(“%dn”,100);
}
Note:
100; is an executable statement but with no action. So it doesn’t give any problem

31)
main()
{
printf(“%p”,main);
}
Answer:
Some address will be printed.
Explanation:
Function names are just addresses (just like array names are addresses).
main() is also a function. So the address of function main will be printed. %p in printf specifies that the argument is an address. They are printed as hexadecimal numbers.

32)
void main()
{
int i=5;
printf(“%d”,i+++++i);
}
Answer:
Compiler Error
Explanation:
The expression i+++++i is parsed as i ++ ++ + i which is an illegal combination of operators.

33)
#include<stdio.h>
main()
{
int i=1,j=2;
switch(i)
{
case 1:  printf(“GOOD”);
break;
case j:  printf(“BAD”);
break;
}
}
Answer:
Compiler Error: Constant expression required in function main.
Explanation:
The case statement can have only constant expressions (this implies that we cannot use variable names directly so an error).
Note:
Enumerated types can be used in case statements.

34)
main()
{
int i;
printf(“%d”,scanf(“%d”,&i));  // value 10 is given as input here
}
Answer:
1
Explanation:
Scanf returns number of items successfully read and not 1/0.  Here 10 is given as input which should have been scanned successfully. So number of items read is 1.

35)
#define f(g,g2) g##g2
main()
{
int var12=100;
printf(“%d”,f(var,12));
}
Answer:
100

36)    main( )
{
int a[ ] = {10,20,30,40,50},j,*p;
for(j=0; j<5; j++)
{
printf(“%d” ,*a);
a++;
}
p = a;
for(j=0; j<5; j++)
{
printf(“%d ” ,*p);
p++;
}
}
Answer:
Compiler error: lvalue required.

Explanation:
Error is in line with statement a++. The operand must be an lvalue and may be of any of scalar type for the any operator, array name only when subscripted is an lvalue. Simply array name is a non-modifiable lvalue.

37)    main( )
{
void *vp;
char ch = ‘g’, *cp = “goofy”;
int j = 20;
vp = &ch;
printf(“%c”, *(char *)vp);
vp = &j;
printf(“%d”,*(int *)vp);
vp = cp;
printf(“%s”,(char *)vp + 3);
}
Answer:
g20fy
Explanation:
Since a void pointer is used it can be type casted to any  other type pointer. vp = &ch  stores address of char ch and the next statement prints the value stored in vp after type casting it to the proper data type pointer. the output is ‘g’. Similarly  the output from second printf is ‘20’. The third printf statement type casts it to print the string from the 4th value hence the output is ‘fy’.

38)    main ( )
{
static char *s[ ]  = {“black”, “white”, “yellow”, “violet”};
char **ptr[ ] = {s+3, s+2, s+1, s}, ***p;
p = ptr;
**++p;
printf(“%s”,*–*++p + 3);
}
Answer:
ck
Explanation:
In this problem we have an array of char pointers pointing to start of 4 strings. Then we have ptr which is a pointer to a pointer of type char and a variable p which is a pointer to a pointer to a pointer of type char. p hold the initial value of ptr, i.e. p = s+3. The next statement increment value in p by 1 , thus now value of p =  s+2. In the printf statement the expression is evaluated *++p causes gets value s+1 then the pre decrement is executed and we get s+1 – 1 = s . the indirection operator now gets the value from the array of s and adds 3 to the starting address. The string is printed starting from this position. Thus, the output is ‘ck’.

39)    main()
{
int  i, n;
char *x = “girl”;
n = strlen(x);
*x = x[n];
for(i=0; i<n; ++i)
{
printf(“%sn”,x);
x++;
}
}
Answer:
(blank space)
irl
rl
l

Explanation:
Here a string (a pointer to char) is initialized with a value “girl”.  The strlen function returns the length of the string, thus n has a value 4. The next statement assigns value at the nth location (‘’) to the first location. Now the string becomes “irl” . Now the printf statement prints the string after each iteration it increments it starting position.  Loop starts from 0 to 4. The first time x[0] = ‘’ hence it prints nothing and pointer value is incremented. The second time it prints from x[1] i.e “irl” and the third time it prints “rl” and the last time it prints “l” and the loop terminates.

40)
void main()
{
int  const * p=5;
printf(“%d”,++(*p));
}
Answer:
Compiler error: Cannot modify a constant value.
Explanation:
p is a pointer to a “constant integer”. But we tried to change the value of the “constant integer”.

41)
main()
{
char s[ ]=”man”;
int i;
for(i=0;s[ i ];i++)
printf(“n%c%c%c%c”,s[ i ],*(s+i),*(i+s),i[s]);
}
Answer:
mmmm
aaaa
nnnn
Explanation:
s[i], *(i+s), *(s+i), i[s] are all different ways of expressing the same idea. Generally  array name is the base address for that array. Here s is the base address. i is the index number/displacement from the base address. So, indirecting it with * is same as s[i]. i[s] may be surprising. But in the  case of  C  it is same as s[i].

42)
main()
{
float me = 1.1;
double you = 1.1;
if(me==you)
printf(“I love U”);
else
printf(“I hate U”);
}
Answer:
I hate U
Explanation:
For floating point numbers (float, double, long double) the values cannot be predicted exactly. Depending on the number of bytes, the precession with of the value  represented varies. Float takes 4 bytes and long double takes 10 bytes. So float stores 0.9 with less precision than long double.
Rule of Thumb:
Never compare or at-least be cautious when using floating point numbers with relational operators (== , >, <, <=, >=,!= ) .

43)
main()
{
static int var = 5;
printf(“%d “,var–);
if(var)
main();
}
Answer:
5 4 3 2 1
Explanation:
When static storage class is given, it is initialized once. The change in the value of a static variable is retained even between the function calls. Main is also treated like any other ordinary function, which can be called recursively.

44)
main()
{
int c[ ]={2.8,3.4,4,6.7,5};
int j,*p=c,*q=c;
for(j=0;j<5;j++) {
printf(” %d “,*c);
++q;      }
for(j=0;j<5;j++){
printf(” %d “,*p);
++p;      }
}

Answer:
2 2 2 2 2 2 3 4 6 5
Explanation:
Initially pointer c is assigned to both p and q. In the first loop, since only q is incremented and not c , the value 2 will be printed 5 times. In second loop p itself is incremented. So the values 2 3 4 6 5 will be printed.

45)
main()
{
extern int i;
i=20;
printf(“%d”,i);
}

Answer:
Linker Error : Undefined symbol ‘_i’
Explanation:
extern storage class in the following declaration,
extern int i;
specifies to the compiler that the memory for i is allocated in some other program and that address will be given to the current program at the time of linking. But linker finds that no other variable of name i is available in any other program with memory space allocated for it. Hence a linker error has occurred .

46)
main()
{
int i=-1,j=-1,k=0,l=2,m;
m=i++&&j++&&k++||l++;
printf(“%d %d %d %d %d”,i,j,k,l,m);
}
Answer:
0 0 1 3 1
Explanation :
Logical operations always give a result of 1 or 0 . And also the logical AND (&&) operator has higher priority over the logical OR (||) operator. So the expression  ‘i++ && j++ && k++’ is executed first. The result of this expression is 0    (-1 && -1 && 0 = 0). Now the expression is 0 || 2 which evaluates to 1 (because OR operator always gives 1 except for ‘0 || 0’ combination- for which it gives 0). So the value of m is 1. The values of other variables are also incremented by 1.

47)
main()
{
char *p;
printf(“%d %d “,sizeof(*p),sizeof(p));
}

Answer:
1 2
Explanation:
The sizeof() operator gives the number of bytes taken by its operand. P is a character pointer, which needs one byte for storing its value (a character). Hence sizeof(*p) gives a value of 1. Since it needs two bytes to store the address of the character pointer sizeof(p) gives 2.

48)
main()
{
int i=3;
switch(i)
{
default:printf(“zero”);
case 1: printf(“one”);
break;
case 2:printf(“two”);
break;
case 3: printf(“three”);
break;
}
}
Answer :
three
Explanation :
The default case can be placed anywhere inside the loop. It is executed only when all other cases doesn’t match.

49)
main()
{
printf(“%x”,-1<<4);
}
Answer:
fff0
Explanation :
-1 is internally represented as all 1’s. When left shifted four times the least significant 4 bits are filled with 0’s.The %x format specifier specifies that the integer value be printed as a hexadecimal value.

50)
int i,j;
for(i=0;i<=10;i++)
{
j+=5;
assert(i<5);
}
Answer:
Runtime error: Abnormal program termination.
assert failed (i<5), <file name>,<line number>
Explanation:
asserts are used during debugging to make sure that certain conditions are satisfied. If assertion fails, the program will terminate reporting the same. After debugging use,
#undef NDEBUG
and this will disable all the assertions from the source code. Assertion
is a good debugging tool to make use o