How do you graph #16m ^ { 2} - 4m + 8< 0#?

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Answer 1 · 2018-03-21T11:47:28

See below.

#f(m) =16m^2-4m+8 <0#

First, we can simplify the inequality by dividing through be 4.

#-> 4m^2-m+2<0#

Now, we will map the variable #m# onto the #x-# axis of the #xy-#plane.

Considering the graph of the limiting case where #f(m) =0#,

graph{4x^2-x+2 [-20.86, 19.66, -3.06, 17.21]}

Then, the area represented by the inequality #f(m)<0# is shown below below.

graph{(4x^2-x+2)-y <0 [-20.86, 19.66, -3.06, 17.21]}