Show that the square of an odd positive integer is of the form 8m + 1, for
some whole number
plzz anwer fast with explaination
Answers
Step-by-step explanation:
According to Euclid division lemma , a = bq + r where 0 ≤ r < b
Here we assume b = 8 and r ∈ [1, 7 ] means r = 1, 2, 3, .....7
Then, a = 8q + r
Case 1 :- when r = 1 , a = 8q + 1
squaring both sides,
a² = (8q + 1)² = 64²q² + 16q + 1 = 8(8q² + 2q) + 1
= 8m + 1 , where m = 8q² + 2q
case 2 :- when r = 2 , a = 8q + 2
squaring both sides,
a² = (8q + 2)² = 64q² + 32q + 4 ≠ 8m +1 [ means when r is an even number it is not in the form of 8m + 1 ]
Case 3 :- when r = 3 , a = 8q + 3
squaring both sides,
a² = (8q + 3)² = 64q² + 48q + 9 = 8(8q² + 6q + 1) + 1
= 8m + 1 , where m = 8q² + 6q + 1
You can see that at every odd values of r square of a is in the form of 8m +1
But at every even Values of r square of a isn't in the form of 8m +1 .
Also we know, a = 8q +1 , 8q +3 , 8q + 5 , 9q +7 are not divisible by 2 means these all numbers are odd numbers
Hence , it is clear that square of an odd positive is in form of 8m +1
Answer:
Any positive integer is of the form of 2q +1 , where q is the whole number
Therefore (2 q +1 )2
= 4 q 2
= + 4 q + 1 = 4 q ( q + 1) + 1 ......(1)
q ( q + 1 ) is either of 0 or even so , it is 2 cm where m is whole number
Therefore ( 2 q + 1) 2
= 4.2 m + 1
= 8 m + 1