Find the last two digits of 71+72+73+..................7342?
71=07, 75=−−07
72=49, 76=−−49
73=43, 77=−−43
74=01, 78=−−01
There is a cyclicity of 4 as 07, 49 , 43 ,01 is the last 2 digits for the powers of 7.
Here 342=4k+2⇒ Required answer is 07+49=56