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Re: x, y, and z are integers such that (x + 2)(y— 3)(z + 4) = 0. [#permalink]
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(x + 2)(y— 3)(z + 4) = 0
to make it zero; there are three possibilities: x = -2 or y = 3 or z = -4

if x = -2, only products 6, 0 and 12 can provide y and z as integers
if y = 3, only products -9, 0 and 27 can provide x and z as inegers
if z = -4, only product 12 and 0 can provide x and y as integers

Ans: 6, 0, 12, -9, 27
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Re: x, y, and z are integers such that (x + 2)(y— 3)(z + 4) = 0. [#permalink]
vndnjn wrote:
(x + 2)(y— 3)(z + 4) = 0
to make it zero; there are three possibilities: x = -2 or y = 3 or z = -4

if x = -2, only products 6, 0 and 12 can provide y and z as integers
if y = 3, only products -9, 0 and 27 can provide x and z as inegers
if z = -4, only product 12 and 0 can provide x and y as integers

Ans: 6, 0, 12, -9, 27

please provide a detailed solution
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Re: x, y, and z are integers such that (x + 2)(y— 3)(z + 4) = 0. [#permalink]
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The explanation above is already very efficient and simple.

We can use another alternative approach

Xyz we need the value which is multiplication

Now

x=-2
Y=3
Z=-4

So Xyz must be a multiple of 2,3, and 4. However, 4 it itself a multiple of 2 4=2^2

So the question boils down that the values possible for Xyz are a multiple of 2,3 or both which is 6

Among the answer choices A, C,D,F, and G are multiple of these factors

Hope now is more clear
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Re: x, y, and z are integers such that (x + 2)(y 3)(z + 4) = 0. [#permalink]
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Re: x, y, and z are integers such that (x + 2)(y 3)(z + 4) = 0. [#permalink]
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