show that square of any odd integer is form 4m +1,for some integer m
Answers
Step-by-step explanation:
Note :- I am taking q as some integer.
Let positive integer a be the any positive integer.
Then, b = 4 .
By division algorithm we know here
0 ≤ r < 4 , So r = 0, 1, 2, 3.
When r = 0
a = 4m
Squaring both side , we get
a² = ( 4m )²
a² = 4 ( 4m²)
a² = 4q , where q = 4m²
When r = 1
a = 4m + 1
squaring both side , we get
a² = ( 4m + 1)²
a² = 16m² + 1 + 8m
a² = 4 ( 4m² + 2m ) + 1
a² = 4q + 1 , where q = 4m² + 2m
When r = 2
a = 4m + 2
Squaring both hand side , we get
a² = ( 4m + 2 )²
a² = 16m² + 4 + 16m
a² = 4 ( 4m² + 4m + 1 )
a² = 4q , Where q = 4m² + 4m + 1
When r = 3
a = 4m + 3
Squaring both hand side , we get
a² = ( 4m + 3)²
a² = 16m² + 9 + 24m
a² = 16m² + 24m + 8 + 1
a² = 4 ( 4m² + 6m + 2) + 1
a² = 4q + 1 , where q = 4m² + 6m + 2
Hence ,Square of any positive integer is in form of 4q or 4q + 1 , where q is any integer.
THANKS
#BeBrainly.
Answer:
Step-by-step explanation:
I am taking q as some integer.
Let positive integer a be the any positive integer.
Then, b = 4 .
By division algorithm we know here
0 ≤ r < 4 , So r = 0, 1, 2, 3.
When r = 0
a = 4m
Squaring both side , we get
a² = ( 4m )²
a² = 4 ( 4m²)
a² = 4q , where q = 4m²
When r = 1
a = 4m + 1
squaring both side , we get
a² = ( 4m + 1)²
a² = 16m² + 1 + 8m
a² = 4 ( 4m² + 2m ) + 1
a² = 4q + 1 , where q = 4m² + 2m
When r = 2
a = 4m + 2
Squaring both hand side , we get
a² = ( 4m + 2 )²
a² = 16m² + 4 + 16m
a² = 4 ( 4m² + 4m + 1 )
a² = 4q , Where q = 4m² + 4m + 1
When r = 3
a = 4m + 3
Squaring both hand side , we get
a² = ( 4m + 3)²
a² = 16m² + 9 + 24m
a² = 16m² + 24m + 8 + 1
a² = 4 ( 4m² + 6m + 2) + 1
a² = 4q + 1 , where q = 4m² + 6m + 2
Hence ,Square of any positive integer is in form of 4q or 4q + 1 , where q is any integer.
THANKS