VCE Maths questions help (1 Viewer)

boredsatan · Nov 3, 2018

Is the square root of 4 just 2 or both 2 and -2?

boredsatan · Nov 3, 2018

boredsatan · Nov 3, 2018

boredsatan said:
Bump

Bump

HeroWise · Nov 3, 2018

Square rooting is usually principal root, so omly +ve case

boredsatan · Nov 3, 2018

Is this always the case that you only take the +ve?

boredsatan · Nov 3, 2018

boredsatan · Nov 3, 2018

boredsatan said:
bump

can someone please answer my questions?

boredsatan · Nov 3, 2018

boredsatan · Nov 3, 2018

boredsatan said:
bump

bump please

boredsatan · Nov 3, 2018

boredsatan said:
bump please

bump

boredsatan · Nov 3, 2018

2sin(2x-pi/6) = 1 for a domain of -pi<x<pi
we multiply the domain values of 2, so it becomes -2pi<2x<2pi
but then do we subtract the domain values by -pi/6
or since 2sin(2x-pi/6) = 2sin(2(x-pi/12)), do we subtract the domain values by -pi/12?
Thanks

boredsatan · Nov 3, 2018

boredsatan said:
2sin(2x-pi/6) = 1 for a domain of -pi<x<pi
we multiply the domain values of 2, so it becomes -2pi<2x<2pi
but then do we subtract the domain values by -pi/6
or since 2sin(2x-pi/6) = 2sin(2(x-pi/12)), do we subtract the domain values by -pi/12?
Thanks

bump

fan96 · Nov 3, 2018

boredsatan said:
Is this always the case that you only take the +ve?

It depends on the notation.

$f(x) = \sqrt x$ is a function that denotes taking the principal square root, which is always the positive one, for real $x$ .

However, $x^2 = k$ for $k > 0$ always has two solutions.

boredsatan · Nov 3, 2018

if we had to find the derivative of sqrt(x^2+3), and evaluate it when x = 1, we get 1/(sqrt(4)), which so in this case, would it be 1/2 and 1/-2?
or just 1/2?

InteGrand · Nov 3, 2018

boredsatan said:
if we had to find the derivative of sqrt(x^2+3), and evaluate it when x = 1, we get 1/(sqrt(4)), which so in this case, would it be 1/2 and 1/-2?
or just 1/2?

Just 1/2.

boredsatan · Nov 3, 2018

InteGrand said:
Just 1/2.

So in what cass is the square root both the +ve and -ve and in what cases is it only the +ve?

Also can someone please help me with the below questions?
2sin(2x-pi/6) = 1 for a domain of -pi<x<pi
we multiply the domain values of 2, so it becomes -2pi<2x<2pi
but then do we subtract the domain values by -pi/6
or since 2sin(2x-pi/6) = 2sin(2(x-pi/12)), do we subtract the domain values by -pi/12?
Thanks

f(x) = sqrt(x+1), and has a restricted domain of [0, infinity)
g(x) = x^2+4x+3, and has a restricted domain of (-infinity, -3]
How would i find the range of f(g(x)) without a calculator?
f(g(x)) = sqrt(x^2+4x+4), so would I use the domain of g(x) as the domain of f(g(x))?

InteGrand · Nov 3, 2018

boredsatan said:
So in what cass is the square root both the +ve and -ve and in what cases is it only the +ve?

Also can someone please help me with the below questions?
2sin(2x-pi/6) = 1 for a domain of -pi<x<pi
we multiply the domain values of 2, so it becomes -2pi<2x<2pi
but then do we subtract the domain values by -pi/6
or since 2sin(2x-pi/6) = 2sin(2(x-pi/12)), do we subtract the domain values by -pi/12?
Thanks

f(x) = sqrt(x+1), and has a restricted domain of [0, infinity)
g(x) = x^2+4x+3, and has a restricted domain of (-infinity, -3]
How would i find the range of f(g(x)) without a calculator?
f(g(x)) = sqrt(x^2+4x+4), so would I use the domain of g(x) as the domain of f(g(x))?

$\noindent For any positive real number $x$, the symbol $\sqrt{x}$ refers to the \emph{positive} square root of $x$.$

InteGrand · Nov 3, 2018

boredsatan said:
Also can someone please help me with the below questions?
2sin(2x-pi/6) = 1 for a domain of -pi<x<pi
we multiply the domain values of 2, so it becomes -2pi<2x<2pi
but then do we subtract the domain values by -pi/6
or since 2sin(2x-pi/6) = 2sin(2(x-pi/12)), do we subtract the domain values by -pi/12?
Thanks

You don't need to do anything, because the domain is already given to us.

InteGrand · Nov 3, 2018

boredsatan said:
So in what cass is the square root both the +ve and -ve and in what cases is it only the +ve?

Also can someone please help me with the below questions?
2sin(2x-pi/6) = 1 for a domain of -pi<x<pi
we multiply the domain values of 2, so it becomes -2pi<2x<2pi
but then do we subtract the domain values by -pi/6
or since 2sin(2x-pi/6) = 2sin(2(x-pi/12)), do we subtract the domain values by -pi/12?
Thanks

f(x) = sqrt(x+1), and has a restricted domain of [0, infinity)
g(x) = x^2+4x+3, and has a restricted domain of (-infinity, -3]
How would i find the range of f(g(x)) without a calculator?
f(g(x)) = sqrt(x^2+4x+4), so would I use the domain of g(x) as the domain of f(g(x))?

$\noindent In general, the domain of $f\circ g$ would be the set of all $x$ values such that $g(x)$ is in the domain of $f$. In this case, what is the domain of $f$ and which values $x$ in the domain of $g$ make $g(x)$ land in the domain of $f$?$

boredsatan · Nov 3, 2018

InteGrand said:
$\noindent In general, the domain of $f\circ g$ would be the set of all $x$ values such that $g(x)$ is in the domain of $f$. In this case, what is the domain of $f$ and which values $x$ in the domain of $g$ make $g(x)$ land in the domain of $f$?$

What do you mean? Would the domain of f(g(x)) just be the domain of g(x), which in this case is restricted to (-infinity,-3]?

VCE Maths questions help (1 Viewer)

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