Evaluate the following integrals:
To Find :
Now, let x - 5 be written as 
(2x + 1) - 
and split
Therefore ,
= 
=
Now solving, 
Let
= u 
dx = 
Thus,
becomes 
Now , 
= 
=
) = 
=
Now solving, 
Now, 
can be written as 
i.e, 
Here , let x + 
= y 
dx = dy
Therefore, 
can be written as 
Formula Used: 
= 
log |x +
|+ C
Since 
is of the form 
with change in variable.
= 
log |y +
|+ C
= 
log |y +
|+ C
Since , x + 
= y and dx = dy
=
log |(x + 
) +
|+C
Therefore,
= 
log |x + 
+
|+C
Now ,
= 
- 
log |x + 
+
|+C
Therefore ,
= 
- 
log |x + 
+
|+C
1