[コンプリート!] (x-y)2-6(x-y) 5 150775-Y x 2 6 x 5

 So we know that the first number is the xaxis (2) and the second one the yaxis (6) and the linear equation is y= x4 let's plug in the numbers 6=24 Wait does that make sense to you The answer is A (1,5) y=x4 5= 14 Hope it make and that was a fake mssue 👍

Y x 2 6 x 5-Directrix y = −1 2 y = 1 2 Select a few x x values, and plug them into the equation to find the corresponding y y values The x x values should be selected around the vertex Tap for more steps Replace the variable x x with 1 1 in the expression f ( 1) = ( 1) 2 − 5 ⋅ 1 6 f ( 1) = ( 1) 2Answer The solution is every couple of numbers, which is solution of the equation 6 x − y = 1 1 \displaystyle 6x y = 11 6x−y = 11 Problem 6 5 u − 6 v = − 2 7 u 1 8 v = 2 \displaystyle \begin {array} {l} 5u 6v = 2 \\ 7u 18v = 2 \end {array} 5u−6v = −2 7u18v = 2

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 Example 5 y = ( x 2) 2 With similar reasoning to the last example, I know that my curve is going to be completely above the x axis, except at x = −2 The "plus 2" in brackets has the effect of moving our parabola 2 units to the left Rotating the Parabola The original question from Anuja asked how to draw y 2 = x − 4The axis of symmetry is x = 3 Explanation The standard form for the equation of a parabola is y = a2 bx c How do find the vertex and axis of symmetry for a quadratic equation y = −x2 2x−5 ?

Incoming Term: x+y=-2 6^x+5y=36, y=x^2-6x+5, y x 2 6 x 5, y=(x-6)^2(x-3)+5, factorise (x-2)^y-6(x-y)+5, y=x^2+5x-6 x intercept, 2 4 x y = 6 x 5 0 4, y=x^2-6x+5 in vertex form, y=x^2-6x+5 parabola, y=x^2+6x+5 x intercept,

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