Show that, [tex]x^x[/tex] is strictly increasing over natural range, using exponent laws. About the author Josephine
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Before we start. When the value of a function is always greater than the previous ones, it is called a strictly increasing function. Point of the Question. Over natural numbers, the next value of [tex]x[/tex] is [tex]x+1[/tex]. Solution. Claim: [tex]f(x)=x^x[/tex] is strictly increasing over natural domain. Let one value in the domain be [tex]k[/tex], so its next value is [tex]k+1[/tex]. First, [tex](k+1)^{k+1}=(k+1)^{k}\times (k+1)[/tex] …[I] Since [tex]k<k+1[/tex], [tex]k^k<(k+1)^{k}[/tex] …[II] According to [I] and [II], [tex]k^k<(k+1)^{k}<(k+1)^{k}\times (k+1)[/tex] [tex]\therefore k^k<(k+1)^{k+1}[/tex] [tex]\therefore \boxed{f(k)<f(k+1)}[/tex] So, it is strictly increasing for any value of k. Reply
Answer:
Step-by-step explanation:
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Before we start.
When the value of a function is always greater than the previous ones, it is called a strictly increasing function.
Point of the Question.
Over natural numbers, the next value of [tex]x[/tex] is [tex]x+1[/tex].
Solution.
Claim: [tex]f(x)=x^x[/tex] is strictly increasing over natural domain.
Let one value in the domain be [tex]k[/tex], so its next value is [tex]k+1[/tex].
First,
[tex](k+1)^{k+1}=(k+1)^{k}\times (k+1)[/tex] …[I]
Since [tex]k<k+1[/tex],
[tex]k^k<(k+1)^{k}[/tex] …[II]
According to [I] and [II],
[tex]k^k<(k+1)^{k}<(k+1)^{k}\times (k+1)[/tex]
[tex]\therefore k^k<(k+1)^{k+1}[/tex]
[tex]\therefore \boxed{f(k)<f(k+1)}[/tex]
So, it is strictly increasing for any value of k.