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8:08 PM (3 hours ago)
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Hello Mr.Tan
I was wandering if you could give me the solution to this question 16 from past year paper on logarithmic functions and indices, that i found on your blog, as I am having troubles with part (c) .
I would really appreciate it.
Thanks.
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Hello Mashal,
My proposed solution to part (c) is as follows:
Use the given f(x) = 2xlogx3 – 5logx9 – x +
5 to factorise into:
f(x) = (x – 5)(alogx3 – b),
then the values of a and of b should be obvious as follows:
f(x) = 2xlogx3 – 5logx9 – x + 5
= 2xlogx3
– 5logx32 – x + 5
= 2xlogx3
– 10logx3 – x + 5
= (2xlogx3
– x) – (10logx3 + 5) ~
rearrange to factorise
= x(2logx3
– 1) – 5(2logx3 - 1)
= (x – 5)(2logx3
– 1)
[≡(x –
5)(alogx3 – b)]
Hence, a = 2 and b = 1.
Hope the above helps. Have a good day!
J
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Sep 19 (2 days ago)
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Yes, thank you so much, sir.
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