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2 years ago

What is the solution to the following system of equations?

Mathematics

2 answers:

fenix001 [56]2 years ago

8 0

Answer: (5,0)

Step-by-step explanation:

x - 3y =5 -----------(1)

2x + y = 10 ----------(2)

By elimination method, multiply eqn(1) by 2

2x - 6y = 10 ------------(3)

eqn(3) - eqn(2)

-7y = 0

Divide bothside by -7

y= 0

Now, we substitute the value of y in eqn(1)

x - 3(0) = 5

x - 0 = 5

x=5

Therefore,x=5 and y=0

AlekseyPX2 years ago

6 0

X=5+3y
10+6y+y=10
7y=0
y=0
x=5

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Proofs are in the explantion.

Step-by-step explanation:

We are given the following:

1) $a \equi b (mod n) \rightarrow a-b=kn$ for integer $k$ .

1) $c \equi d (mod n) \rightarrow c-d=mn$ for integer $m$ .

Proof:

We want to show $a+c \equiv b+d (mod n)$ .

So we have the two equations:

a-b=kn and c-d=mn and we want to show for some integer r that we have

(a+c)-(b+d)=rn. If we do that we would have shown that $a+c \equiv b+d (mod n)$ .

kn+mn = (a-b)+(c-d)

(k+m)n = a-b+ c-d

(k+m)n = (a+c)+(-b-d)

(k+m)n = (a+c)-(b+d)

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Therefore, $a+c \equiv b+d (mod n)$ .

b) Proof:

We want to show $ac \equiv bd (mod n)$ .

So we have the two equations:

a-b=kn and c-d=mn and we want to show for some integer r that we have

(ac)-(bd)=tn. If we do that we would have shown that $ac \equiv bd (mod n)$ .

If a-b=kn, then a=b+kn.

If c-d=mn, then c=d+mn.

ac-bd = (b+kn)(d+mn)-bd

= bd+bmn+dkn+kmn^2-bd

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= n(bm+dk+kmn)

So the integer t such that (ac)-(bd)=tn is bm+dk+kmn.

Therefore, $ac \equiv bd (mod n)$ .

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