GCD Discrete Math: Proving GCD(a,b)=1

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Given that GCD(na,nb) = n * GCD(a,b) for a,b,n ∈ Z+

a) Prove that, if GCD(a,b) = 1 then GCD(a+b, a-b) = 1 or GCD(a+b,a-b) = 2
Hint: Let D = GCD(a+b, a-b), show that D | 2a and D | 2b thus D | GCD(2a,2b) then use the given
b) Prove that, if GCD(a,B) = 1, then GCD(2a+b, a+2b) = 1 or GCD(2a+b, a+2b) = 3

Any assistance would be great.
 
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ssome help said:
Given that GCD(na,nb) = n * GCD(a,b) for a,b,n ∈ Z+

a) Prove that, if GCD(a,b) = 1 then GCD(a+b, a-b) = 1 or GCD(a+b,a-b) = 2
Hint: Let D = GCD(a+b, a-b), show that D | 2a and D | 2b thus D | GCD(2a,2b) then use the given
b) Prove that, if GCD(a,B) = 1, then GCD(2a+b, a+2b) = 1 or GCD(2a+b, a+2b) = 3

Any assistance would be great.

Welcome to MHB, ssome help!

Nice problem. ;)

Did you try anything?
When you show something you tried, or if you explain where you are stuck, we can help you to solve and understand this.
 
The key fact to use here is that if d | x and d | y, then d divides any linear combination of x and y, i.e., d | (mx + ny) for any integer m and n.
 
Setting...

$\displaystyle x = a + b$

$\displaystyle y = a - b$ (1)

... solving (1) we obtain...

$\displaystyle a = \frac{x + y}{2}$

$\displaystyle b = \frac{x - y}{2}$ (2)

Now if x and y have a common factor different than 2, then x + y and x - y have the the same common factor and the same would be for a and b and that is a contradiction...

Kind regards

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