Domain & Range of f(x)=-√(t(1-t))

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SUMMARY

The function f(x) = -√(t(1-t)) has a domain of 0 ≤ t ≤ 1, derived from the Null Factor Law. The range was incorrectly stated as -0.5 ≤ t ≥ 0; the correct interpretation reveals that the maximum value of t(1-t) occurs at t = 0.5, yielding a range of -√(0.25) = -0.5. This indicates that the function's range is actually -0.5 ≤ f(x) ≤ 0, correcting the earlier misunderstanding regarding the range.

PREREQUISITES
  • Understanding of the Null Factor Law
  • Familiarity with radical functions
  • Knowledge of quadratic functions and their properties
  • Basic algebraic manipulation skills
NEXT STEPS
  • Study the properties of quadratic functions, particularly t(1-t)
  • Learn about the behavior of radical functions and their ranges
  • Explore optimization techniques for functions without using calculus
  • Investigate graphical representations of functions to visualize domain and range
USEFUL FOR

Students studying algebra, educators teaching quadratic functions, and anyone interested in understanding the behavior of radical functions and their domains and ranges.

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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