Home | Contact us | My Profile| Sign In| Member Login| Counseller Login
  Ranking | Exams | Online Test | Results | Blogs | Career Counselling | News Room | Study Abroad | Add Your Institute
 
Universities in India
Open Universities
Central Universities
Deemed Universities
Institution in India
Pvt./Govt./Atonomus
IIT/IIM/ITS etc.
Colleges in India
Medical
Engineering
Management
State/Alpha/Search
Courses in India
Regular
Part Time
Correspondence
High School
Statewise
ICSE
CBSE
Study Abroad
TOFFEL
ACT
GRE
GMAT
Question Bank
Solved Papers
Company Papers
Placement
Placement
Dharma placement papers
Dharma placement papers


Dharma c questions

Give the output of the programs in each case unless
mentioned otherwise :

1.
void main()
{
int d=5;
printf("%f",d);
}

Ans: Undefined


2.
void main()
{
int i;
for(i=1;i<4,i++)
switch(i)
case 1: printf("%d",i);break;
{
case 2:printf("%d",i);break;
case 3:printf("%d",i);break;
}
switch(i) case 4:printf("%d",i);
}

Ans: 1,2,3,4


3.
void main()
{
char *s="\12345s\n";
printf("%d",sizeof(s));
}

Ans: 6


4.
void main()
{
unsigned i=1; /* unsigned char k= -1 => k=255; */
signed j=-1; /* char k= -1 => k=65535 */
/* unsigned or signed int k= -1 =>k=65535 */
if(i<j)
printf("less");
else
if(i>j)
printf("greater");
else
if(i==j)
printf("equal");
}

Ans: less


5.
void main()
{
float j;
j=1000*1000;
printf("%f",j);
}

1. 1000000
2. Overflow
3. Error
4. None

Ans: 4


6.  How do you declare an array of N pointers to functions
returning
     pointers to functions returning pointers to characters?

Ans: The first part of this question can be answered in at
least
        three ways:

    1. char *(*(*a[N])())();

    2. Build the declaration up incrementally, using
typedefs:

        typedef char *pc;    /* pointer to char */
        typedef pc fpc();    /* function returning pointer
to char */
        typedef fpc *pfpc;    /* pointer to above */
        typedef pfpc fpfpc();    /* function returning... */
        typedef fpfpc *pfpfpc;    /* pointer to... */
        pfpfpc a[N];         /* array of... */

    3. Use the cdecl program, which turns English into C
and vice
    versa:

        cdecl> declare a as array of pointer to function
returning
            pointer to function returning pointer to char
        char *(*(*a[])())()

    cdecl can also explain complicated declarations, help
with
    casts, and indicate which set of parentheses the
arguments
    go in (for complicated function definitions, like the
one
    above).
    Any good book on C should explain how to read these
complicated
    C declarations "inside out" to understand them
("declaration
    mimics use").
    The pointer-to-function declarations in the examples
above have
    not included parameter type information. When the
parameters
    have complicated types, declarations can *really* get
messy.
    (Modern versions of cdecl can help here, too.)


7. A structure pointer is defined of the type time . With 3
fields min,sec hours having pointers to intergers.
    Write the way to initialize the 2nd element to 10.


8. In the above question an array of pointers is declared.
    Write the statement to initialize the 3rd element of
the 2 element to 10;


9.
int f()
void main()
{
f(1);
f(1,2);
f(1,2,3);
}
f(int i,int j,int k)
{
printf("%d %d %d",i,j,k);
}

What are the number of syntax errors in the above?

Ans: None.


10.
void main()
{
int i=7;
printf("%d",i++*i++);
}

Ans: 56


11.
#define one 0
#ifdef one
printf("one is defined ");
#ifndef one
printf("one is not defined ");

Ans: "one is defined"


12.
void main()
{
int count=10,*temp,sum=0;
temp=&count;
*temp=20;
temp=&sum;
*temp=count;
printf("%d %d %d ",count,*temp,sum);
}

Ans: 20 20 20


13. There was question in c working only on unix machine
with pattern matching.


14. what is alloca()

Ans : It allocates and frees memory after use/after getting
out of scope


15.
main()
{
static i=3;
printf("%d",i--);
return i>0 ? main():0;
}

Ans: 321


16.
char *foo()
{
char result[100]);
strcpy(result,"anything is good");
return(result);
}
void main()
{
char *j;
j=foo()
printf("%s",j);
}

Ans: anything is good.


17.
void main()
{
char *s[]={ "dharma","hewlett-packard","siemens","ibm"};
char **p;
p=s;
printf("%s",++*p);
printf("%s",*p++);
printf("%s",++*p);
}

Ans: "harma" (p->add(dharma) && (*p)->harma)
"harma" (after printing, p->add(hewlett-packard) &&(*p)-
>harma)
"ewlett-packard"