Homework SourseShow that the function fx 3x 5 is onetoone Use trigonometr
Solution
10)
All linear equations are one-one/injections.
Method I -
f: R-->R
In this case, you can substitue first few elements of R (Real numbers, domain) in the equation & you will observe that the image of f(1), f(2) etc is a real number. Hence, it exists in the range.
Since you haven\'t been given the domain and the range of the function, you can prove it by method II.
Method II -
x1 =/ x2 (x1 & x2 € R)
3.x1 =/ 3.x2
3.x1-5 =/ 3.x2 -5
Therefore, f(x1) =/ f(x2)
where
x1 is x subscript 1.
=/ stands for \'not equal to\'.
It needs to be a bijective function, for its inverse to exist.
For it to be a bijective function, it needs to be both onto & one-one.
Onto function :
For every y€R (co-domain of f), there exists an x €R(domain of f) such that
f(x) =3x-5
Let f(x) = y
Therefore, y= 3x-5
y=3x-5
(y+5)/3 = x
Substitute x value in f(x)
f(x) = 3x-5
= 3[(y+5)/3] - 5
= (y+5) -5
= y
f(x) = y
Therefore, f is one to one
11)sin(120)=cos(90-120)
=cos(-30)
=cos(30)
=sqrt(3)/2
b)cos300=sin(90-300)
=sin(-210)
=-sin(210)
=-sin(180+30)
=-(sin180*cos30+cos180*sin30) (sin(x+y)=sinxcosy+cosxsiny)
=-(0*sqrt(3/2)+(-1*1/2))
=-(-1/2)
cos300=1/2
