Math, asked by ARJUN7V7NAIR, 10 months ago

Use E.D.L to show that square of any positive integers of the form 3m or 3m+1

Answers

Answered by bharath0719

Answer:

E.D lemma has

a=bq+r

=(3m)²

=(9m)²

=3(3m)²

(3m+1)²=a²-2ab+b²

=(3m²)-2(3m)(1)+(1²)

=9m²-6m+1

=3(3m²-2m)+1

Answered by oOBADGIRLOo

Step-by-step explanation:

let ' a' be any positive integer and b = 3.

we know, a = bq + r , 0 < r< b.

now, a = 3q + r , 0<r < 3.

the possibilities of remainder = 0,1 or 2

Case I - a = 3q

a² = 9q² .

= 3 x ( 3q²)

= 3m (where m = 3q²)

Case II - a = 3q +1

a² = ( 3q +1 )²

= 9q² + 6q +1

= 3 (3q² +2q ) + 1

= 3m +1 (where m = 3q² + 2q )

Case III - a = 3q + 2

a² = (3q +2 )²

= 9q² + 12q + 4

= 9q² +12q + 3 + 1

= 3 (3q² + 4q + 1 ) + 1

= 3m + 1 ( where m = 3q² + 4q + 1)

From all the above cases it is clear that square of any positive integer ( as in this case a² ) is either of the form 3m or 3m +1.

Hence, it is solved .

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