Domain & Range of f(x)=-√(t(1-t))

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Homework Help Overview

The discussion revolves around determining the domain and range of the function f(x) = -√(t(1-t)). Participants are exploring the implications of the function's structure and the effects of the negative sign in front of the radical.

Discussion Character

  • Conceptual clarification, Assumption checking

Approaches and Questions Raised

  • Participants are questioning the range of the function, particularly the origin of the value -0.5. There is a focus on understanding the maximum value of the expression t(1-t) and its implications for the range of f(x).

Discussion Status

Some participants have offered insights regarding the negative sign affecting the range, while others are exploring the maximum value of t(1-t) and its relevance to the function's behavior. There is an ongoing examination of the assumptions regarding the domain and range, with no clear consensus yet.

Contextual Notes

There is a noted discrepancy in the stated domain, with one participant suggesting it should be 0 ≤ t ≤ 1 instead of 0 ≤ t ≥ 1. The discussion is also constrained by a request to avoid using minimums in the analysis.

Procrastinate
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f(x) = -√(t(1-t))

Domain: 0≤t≥1 (from Null Factor law)
Range: 0≤t

However, the range was wrong. The answers said that it was -0.5≤t≥0. I have no idea where the -0.5 came from. I substituted the domain values in but i didn't work. It just came out with zero.

Can anyone suggest any ideas without the use of minimums?
 
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Procrastinate said:
f(x) = -√(t(1-t))

Domain: 0≤t≥1 (from Null Factor law)
Range: 0≤t

However, the range was wrong. The answers said that it was -0.5≤t≥0. I have no idea where the -0.5 came from. I substituted the domain values in but i didn't work. It just came out with zero.

Can anyone suggest any ideas without the use of minimums?

Well, there is a minus sign on the front of that radical.

Now, what is the biggest value that the function t(1-t) attains?
 
Robert1986 said:
Well, there is a minus sign on the front of that radical.

Now, what is the biggest value that the function t(1-t) attains?

I would say zero.
 
Procrastinate said:
I would say zero.

It isn't zero, but let's assume for the moment that it is zero. Since t(1-t) is under the radical, this would imply that the range of the function is simply 0 since nothing under the radical can be negative. This, in turn, implies that the function t(1-t) must be zero on the interval [0,1]. Clearly, this isn't the case, so 0 is not the highest value the function attains.

What about the midpoint of the interval [0,1]?
 
Procrastinate said:
f(x) = -√(t(1-t))

Domain: 0≤t≥1 (from Null Factor law)
Quibble about what you wrote for the domain: it should be 0 ≤ t 1 .
 

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