Math, asked by Anonymous, 1 month ago

Value of i4k+ j4k+1 + j4k + 2 + j4k+ 3 is​

Answers

Answered by 2007Prithviraj
2

Answer:

i4k +  j12k + 6

Step-by-step explanation:

i4k+ j4k+1 + j4k + 2 + j4k+ 3

=  i4k +  j12k + 6

Answered by amitnrw
2

i^{4k}+i^{4k+1}+i^{4k+2}+i^{4k+3}=0

Given :  i^{4k}+i^{4k+1}+i^{4k+2}+i^{4k+3}

( corrected Question )

To Find : Evaluate

Solution:

i^{4k}+i^{4k+1}+i^{4k+2}+i^{4k+3}

one Law of Exponent : xᵃ⁺ᵇ=xᵃ × xᵇ

i² = - 1

i³ = - i

i⁴ = 1

i^{4k}+i^{4k+1}+i^{4k+2}+i^{4k+3}

Taking i^{4k} common

i^{4k} (1 + i + i²  + i³)

= i^{4k} (1 + i - 1 - i)

= i^{4k} (0)

= 0

Hence i^{4k}+i^{4k+1}+i^{4k+2}+i^{4k+3}=0

Learn More:

(3+2i) (3-2i) in form of a+ib - Brainly.in

brainly.in/question/7842708

Write the complex number z= _ 2+i(1+i)(1-2i)Los in the form of a +ib ...

brainly.in/question/12110890

Similar questions