2012 pre-test

2012 pre-test

8 y = x + 3 (6 + 8) 2 2 y = x 2 1. Find the area of the region bounded by y=x+3, the x-axis, x=3 and x=5. 6 5 - 4 - 3 - 2 - 1 - 0 | | | | | | 1 2 3 4 5 5 3

2 2. Find the equation of the line with slope 2 that intersects the x-axis where x=3. y = m x + b 5 - 4 - 3 - 2 - 1 - 0 3 0 - 6 y = 2* x + b | | | | | | 1 2 3 4 5

y = * x + b y = * x + 9.5 -1 -1 6 6 3. The parabola y = x2 has slope 6 at the point (3, 9). Thus, the tangent line to the curve at this point has slope 6. Find all points where the line perpendicular to this tangent line intersects the parabola. 6 50 - 10 - 7.5 - 5 - 2.5 - 0 9 9 y = m* x + b 9.5 | | | | | | 1 2 3 4 5 3

= * x + 9.5 y = * x + 9.5 -1 -1 6 6 x = 3 (given) x = -3.167 y = x2 x2

4. Let . Find , (simplify) 1 1 1 1 1 1 2 + 6 8 + h y = y = y = y = x + 6 x + 6 x + 6 8 + h -5 1 2+h - = h

- 1 8(8 + h) - 1 1 2 + 6 8 + h = h - 1 - h - (8 + h) (8 + h) 8 8 8 = h 1

5. Let . Find (simplify) f (3 + h) - f (3) h f( x ) = x2 + 1 f( x ) = x2 + 1 f( x ) = x2 + 1 2 2 0 0 (3 + h) (3 + h) 2 f( 0 ) = 1 f( 2 ) = 5 2 f( 3 + h ) = h2 + 6h +10 2 f = x2 + 1 2

5. Let . Find (simplify) f (3 + h) - f (3) h 2 f( 0 ) = 1 f( 2 ) = 5 2 f( 3 + h ) = h2 + 6h +10 h2 + 6h +10 2 f = x2 + 1 f(3) = 32 + 1 10 - = h 2

6. Consider . Rationalize the numerator. h () = a2 - b2 = (a-b)(a+b) a - b a + b +1 9 + h - 9

7. Evaluate if .

If and f and g meet at x=3, find a. f(3) = 32 -1 8 = 8 g(3) = 2a*3 = 6a = 6a a =8/6

y 2 - 5x 2 - 5y 3 y -1 3 x -1 y = x = 9. Find the inverse of: (3x + 5) y = x + 2 3x + 5 (3x + 5) - - x 3xy + 5y = x + 2 5y x(3y - 1) = 2 - 5y 3y -1 3y -1 x y x

10. Find the remainder when is divided by x2 + 2 ( ) r = +8 = x - 6 ( ): (x2 + 2) x3 + 2x subtract subtract x*(x2 + 2) = x3 + 2x = - 6x2 - 12 - 6x2 - 12 - 6*(x2 + 2)

11. Sketch the set of graphs by building up from the first and using scaling and translations: (label vertex & intercepts)

plot y = (x - 3)2 11. Sketch the set of graphs by building up from the first and using scaling and translations: (label vertex & intercepts) 12.5 - 10 - 7.5 - 5 - 2.5 - 0 y =(x - 3)2 y = x2 horizontal shift | | | | | | 1 2 3 4 5

plot y = - (x - 3)2 11. Sketch the set of graphs by building up from the first and using scaling and translations: (label vertex & intercepts) 12.5 - 10 - 7.5 - 5 - 2.5 - 0 y = - (x - 3)2 expand/shrink y = (x-3) 2 | | | | | | 1 2 3 4 5

plot y = 4 - (x - 3)2 11. Sketch the set of graphs by building up from the first and using scaling and translations: (label vertex & intercepts) y = x2 12.5 - 10 - 7.5 - 5 - 2.5 - 0 y = 4 - (x - 3)2 shrink/expand vertical shift horizontal shift | | | | | | 1 2 3 4 5

plot y = ¼ (4 - (x - 3)2) 11. Sketch the set of graphs by building up from the first and using scaling and translations: (label vertex & intercepts) 12.5 - 10 - 7.5 - 5 - 2.5 - 0 y =1/4 ( 4 - (x - 3)2) shrink/expand y = 4 - (x - 3)2 | | | | | | 1 2 3 4 5

plot y = ¼ (4 - (2x - 3)2) 11. Sketch the set of graphs by building up from the first and using scaling and translations: (label vertex & intercepts) 12.5 - 10 - 7.5 - 5 - 2.5 - 0 y = x2 y =1/4 (4 - [2(x - 3)]2 horizontal shift | | | | | | 1 2 3 4 5

plot y = ¼ (4 - (2x - 3)2) 11. Sketch the set of graphs by building up from the first and using scaling and translations: (label vertex & intercepts) 12.5 - 10 - 7.5 - 5 - 2.5 - 0 y =1/4 (4 - [2(x - 3)]2 y = (x - 3)2 shrink/expand | | | | | | 1 2 3 4 5

plot y = ¼ (4 - (2x - 3)2) 11. Sketch the set of graphs by building up from the first and using scaling and translations: (label vertex & intercepts) 12.5 - 10 - 7.5 - 5 - 2.5 - 0 y =1/4 (4 - [2(x - 3)]2 y = [2(x - 3)]2 reverse | | | | | | 1 2 3 4 5

plot y = ¼ (4 - (2x - 3)2) 11. Sketch the set of graphs by building up from the first and using scaling and translations: (label vertex & intercepts) 12.5 - 10 - 7.5 - 5 - 2.5 - 0 y =1/4 (4 - [2(x - 3)]2 vertical shift y =-[2(x - 3)]2 | | | | | | 1 2 3 4 5

plot y = ¼ (4 - (2x - 3)2) 11. Sketch the set of graphs by building up from the first and using scaling and translations: (label vertex & intercepts) 12.5 - 10 - 7.5 - 5 - 2.5 - 0 y =1/4 (4 - [2(x - 3)]2 expand/shrink y =4 - [2(x - 3)]2 | | | | | | 1 2 3 4 5

R x 12. A circular piece of paper with a 4 inch radius has a sector with arc length x cut from it. (See below). The edges of the remaining figure are joined to make a cone. Find the circumference of the base of the cone, the radius of the cone and the height of the cone all in terms of x.

R R r x x 12. A circular piece of paper with a 4 inch radius has a sector with arc length x cut from it. (See below). The edges of the remaining figure are joined to make a cone. a. Find the circumference of the base of the cone. R answer is 2pR-x 2pr = 2pR-x

R 2pR - x r = answer is 2p r x 12. A circular piece of paper with a 4 inch radius has a sector with arc length x cut from it. (See below). The edges of the remaining figure are joined to make a cone. b. Find the radius of the cone R 2pr = 2pR-x

answer is h= R2 - 2pR-x R ( )2 2p r x 2pR - x r = 2p h 2pR - x 2p 12. A circular piece of paper with a 4 inch radius has a sector with arc length x cut from it. (See below). The edges of the remaining figure are joined to make a cone. a. Find the height of the cone R ( )2 r2 + h2 = R2

13. Find the roots of and all values of x where the function lies above the x-axis. x3 - 4x2 + 3x x(x - 1)(x - 3) x(x2 - 4x1 + 3) (x-2)(x+4)2 (x-2)(x+4)2 (x-2)(x+4)2 x -3 x -2 x -1 x | | | | | | 0 1 2 3 4 5 -4 roots 0,1,3 = = ( )2 always positive at x = 2 and x = -4 f(x) doesn’t exist x≠2 3<x x≠-4 x<0 1<x<2 red = positive blue = negative positive = above x axis

answer - 1 < x < 7 14. Find all values of x satisfying both algebraically and graphically and explain what the region means in terms of distance. y = x 5 - 4 - 3 - 2 - 1 - 0 +3 y = - x - 3 | | | | | | | | 1 2 3 4 5 6 7

14. Find all values of x satisfying both algebraically and graphically and explain what the region means in terms of distance. x - 3 < 4 - (x - 3) < 4 x < 7 3+ +3 if x - 3 > 0 - 1 < x < 7 - 3 - x < 1 - x + 3 < 4 if x - 3 < 0 - 3 x > - 1

reverse shrinking 15. Sketch y = - sin(2x) on -2p≤ x ≤ 2p 1 - sin(2x) sin(2x) 2p -2p sin(x) -1

(x - 3)2 ln ( ) = 3 = ln(3) a (x - 3)2 x + 15 ln ( ) = ln(a) - ln(b) x + 15 b domain of the function x > 3 16. Solve for x: 2ln(x - 3) - ln(x +15) = ln3 2ln(x - 3) - ln(x +15) = ln3 ln(an) = n*ln(a) ln[(x-3)2] - ln(x+15) = ln(3) x2 - 6x + 9 - 3x - 45 = 0 - 3x - 45 + (x +15) (x +15) 3x + 45 - 3x - 45 x1= -3, x2 = 12 x2 - 9x - 36 = 0

7 3 17. Find the area of the square 7 a = 40 2 2 area = 40 area = - a2 = 3

18. An open top box is constructed from a rectangular piece of cardboard with dimensions 14 in x 22 in by cutting equal squares with side x from the corners and folding the sides up. Express the volume of the resulting box in terms of x. 22 14 - 2x - 2x x V = (22 - 2x)(14 - 2x)x

(x - 3)2 ln ( ) = ln(3) x + 15

2012 pre-test

2012 pre-test

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