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Question -

Verify that:

x3+y3+z3–3xyz= (1/2) (x+y+z)[(x–y)2+(y–z)2+(z–x)2]



Answer -

We know that,

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

x3+y3+z3–3xyz= (1/2)(x+y+z)[2(x2+y2+z2–xy–yz–xz)]

= (1/2)(x+y+z)(2x2+2y2+2z2–2xy–2yz–2xz)

= (1/2)(x+y+z)[(x2+y2−2xy)+(y2+z2–2yz)+(x2+z2–2xz)]

=(1/2)(x+y+z)[(x–y)2+(y–z)2+(z–x)2]

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