At the start of year n, the number of animals in a population is $P_n$. At the start of the following year, the number of animals in the population is $P_{n+1}$, where $P_{n+1} = kP_n$. At the start of 2017 the number of animals in the population was 4000. At the start of 2019 the number of animals in the population was 3610. Find the value of the constant k.

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At the start of year n, the number of animals in a population is $P_n$ - Edexcel - GCSE Maths - Question 20 - 2021 - Paper 3

Question 20

At the start of year n, the number of animals in a population is $P_n$. At the start of the following year, the number of animals in the population is $P_{n+1}$, wh... show full transcript

Worked Solution & Example Answer:At the start of year n, the number of animals in a population is $P_n$ - Edexcel - GCSE Maths - Question 20 - 2021 - Paper 3

Step 1

Use the given population data for 2017

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Answer

At the start of 2017, $P_{2017} = 4000$ . Let this represent $P_n$ for n = 2017. Therefore, at the start of 2018, using the formula: $P_{2018} = kP_{2017} = k \times 4000.$

Step 2

Calculate the population for 2019

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Answer

At the start of 2019, the population is given as $P_{2019} = 3610$ . Hence: $P_{2019} = kP_{2018} = k(k \times 4000) = k^2 \times 4000.$ Setting these equal gives us: $3610 = k^2 \times 4000.$

Step 3

Solve for k

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Answer

Now, rearranging gives: $k^2 = \frac{3610}{4000} = 0.9025.$ Taking the square root of both sides: $k = \sqrt{0.9025} = 0.95.$ Thus, the value of the constant $k$ is: k = 0.95.

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