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24 November, 04:59

A-b) 3 + (b-c) 3 + (c-a) 3: (a-b) (b-c) (c-a)

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  1. 24 November, 05:46
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    The answer to the above equation is 3

    Step-by-step explanation:

    (a-b) ³ + (b-c) ³ + (c-a) ³: (a-b) (b-c) (c-a)

    Let us consider (a-b) = x, (b-c) = y and (c-a) = z.

    Hence, It is obvious that:

    x+y+z = 0 ∵all the terms gets cancelled out

    ⇒We must remember the algebraic formula

    x³+y³+z³-3xyz = (x+y+z) (x²+y²+z²-xy-xz-yz)

    Since x+y+z=0 ⇒Whole " (x+y+z) (x²+y²+z²-xy-xz-yz) " term becomes 0

    x³+y³+z³-3xyz = 0

    Alternatively, x³+y³+z³ = 3xyz

    Now putting the value of x, y, z in the original equation

    (a-b) ³ + (b-c) ³ + (c-a) ³ can be written as 3 (a-b) (b-c) (c-a) since (a-b) = x, (b-c) = y and (c-a) = z.

    3 (a-b) (b-c) (c-a) : (a-b) (b-c) (c-a)

    = 3 ∵Common factor (a-b) (b-c) (c-a) gets cancelled out

    Answer to the above question is 3
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