The FCS $tan_(fcs)(pix: pi) = tan (pix+ pi (tan (pix + pi tan (pix +...)$ . How do you graph this FCS to reveal x-intercepts $0, +-1, +_2, +3|-...$ ?

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Answer 1 · 2018-06-30T11:56:41

See graph and explanation.

As #y = tan_(fcs)( pix; pi ) = tan ( pi ( x + y ) ), inversely,

$pi ( x + y ) = kpi + tan ^(-1) y, k = 0, +-1, +-2, +-3, ...$ .

So, upon setting $y = 0, x = 0, +-1, +-2, +-3, ...$

See graph for these x-intercepts.

graph{y - tan ( pi ( x + y )) = 0[-10 10 -2 2] }

The FCS tan_(fcs)(pix: pi) = tan (pix+ pi (tan (pix + pi tan (pix +...)tan_(fcs)(pix: pi) = tan (pix+ pi (tan (pix + pi tan (pix +...). How do you graph this FCS to reveal x-intercepts 0, +-1, +_2, +3|-...0, +-1, +_2, +3|-...?