Prove that the function

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Ngatirauks · Answer 1 · 2023-09-30T01:22:51+0000

Answer:

See proof below

Explanation:

Important points

understanding what it means to be "onto"
the nature of a quadratic function
finding a value that isn't in the range

Onto

For a function with a given co-domain to be "onto," every element of the co-domain must be an element of the range.

However, the co-domain here is suggested to be
$\mathbb R$ , whereas the range of f is not
$\mathbb R$ (proof below).

Proof (contradiction)

Suppose that f is onto
$\mathbb R$ .

Consider the output 7 (a specific element of
$\mathbb R$ ).

Since f is onto
$\mathbb R$ , there must exist some input from the domain
$\mathbb R$ , "p", such that f(p) = 7.

Substitute and solve to find values for "p".

$f(x)=-3x^2+4\\f(p)=-3(p)^2+4\\7=-3p^2+4\\3=-3p^2\\-1=p^2$

Next, apply the square root property:

$\pm √(-1) =√(p^2)$

By definition,
√(-1) =i , so

$i=p \text{ or } -i =p$

By the Fundamental Theorem of Algebra, any polynomial of degree n with complex coefficients, has exactly n complex roots. Since the degree of f is 2, there are exactly 2 roots, and we've found them both, so we've found all of them.

However, neither
nor
are in
$\mathbb R$ , so there are zero values of p in
$\mathbb R$ for which f(p)= 7, which is a contradiction.

Therefore, the contradiction supposition must be false, proving that f is not onto
$\mathbb R$

Prove that the function

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