What is the zero turn for the arithmetic sequence 128,96,64,32

Question

asked Feb 4, 2022 139k views

1 Answer

Funky · Answer 1 · 2022-02-11T10:45:24+0000

You are falling by
,

$128, 128 - 32, 128 - 32\cdot2,\dots$

In general your sequence is defined as,

$a_n=128-32\cdot n$ where
$0\leq n \lt\infty$ .

The question is at which
does the value
a_n=0 .

If you divide
128 with
you get the number of steps needed to stuff
128 with
,
.

If you plug in
n=4 , you get
$a_4=128-32\cdot4$ , since
$32\cdot4=128$ you get
a_4=0 .

The zero turn of the arithmetic sequence is thus at
n=4 .

Hope this helps :)