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3 years ago

Match each table with its corresponding function type.

Mathematics

1 answer:

mario62 [17]3 years ago

5 0

The first table that starts with -1,2 is exponential

The second table that starts with -2,-7 is linear

The last table is quadratic

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All the prime numbers between 1 and 30

vredina [299]

Answer:

2,3,5,7,11,13,17,19,23,29

Step-by-step explanation:

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3 years ago

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The population of mosquitoes in a certain area increases at a rate proportional to the current population, and in the absence of

Alexandra [31]

Answer:

Population of mosquitoes in the area at any time t is:

$P(t) =504,943.26 -104,943.26e^{0.693t}$

Step-by-step explanation:

assume population at any time t = P(t)

population increases at a rate proportional to the current population:

⇒dP/dt ∝ P

$\implies \frac{dP}{dt} =kP$ ----(1)

where k is constant rate at which population is doubled

solving (1)

$ln|P(t)|=kt +C\\P(t)= e^{kt+C}\\P(t)=Ce^{kt}$

$t=0\\P(0) = P_{o}\\\implies C= P_{o}\\P(t) =P_{o}e^{kt}\\$ ---- (2)

initial population = 400,000

population is doubled every week

⇒P(1)=2P(0)

Using (2)

$P_{o}e^{k(1)} = 2P_{o} e^{k(0)}\\$

$e^{k} =2\\k=ln|2|\\$

In presence of predators amount is decreased by 50,000 per day

Then amount decreased per week = 350,000

In this case (1) becomes

$\frac{dP}{dt}=kP-350,000\\\frac{dP}{dt} - kP=-350,000\\$ ---(3)

solving (3) by calculating integrating factor

$I.F=e^{\int-k dt}$

Multiplying I.F with all terms of (3)

$e^{-kt}\frac{dP}{dt} - ke^{-kt}P =-350,000 e^{-kt}\\\frac{d}{dt}(e^{-kt}P) = -350,000 e^{-kt}$

Integrating w.r.to t

$e^{-kt}P(t)= \frac{350,000e^{-kt}}{k} +C$

$P(t) =\frac{350,000}{k} +Ce^{kt}\\$

$k=ln|2| =0.693$

$P(t) =504,943.26 + Ce^{0.693t}\\$

at t=0

$P(0) =504,943.26 + Ce^{0.693(0)}$

$400,000 =504,943.26 + C$

$C = -104,943.26$

So, population of mosquitoes in the area at any time t is

$P(t) =504,943.26 -104,943.26e^{0.693t}$

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3 years ago

Compute the simple interest earned on a $5000 deposit earning *.%% for 120 days

tatyana61 [14]

416.6% earning.
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3 years ago

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The graph shows the best-fit regression model for a set of data comparing the number of hours spent hiking and the number of mil

tatuchka [14]

Answer:

Step-by-step explanation:

it does not begin at 0,0

it is beginning at the 1

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3 years ago

Jenny has a 57 3/4 kg bag of dog food. Her dog eats 5 1/4 kg of food each week. How Many Weeks will the bag of dog food last? A.

aksik [14]

57 3/4 divided by 5 1/4 =

231/4 divided by 21/4 =

231/4x4/21=231/21=11

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￼ Match each table with its corresponding function type.

Match each table with its corresponding function type.