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Mathematics Department Collaboration Outcome Brief Summary: Different math disciplines reviewed all District 4 benchmarks to see the growth. Although the.

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Presentation on theme: "Mathematics Department Collaboration Outcome Brief Summary: Different math disciplines reviewed all District 4 benchmarks to see the growth. Although the."— Presentation transcript:

1 Mathematics Department Collaboration Outcome Brief Summary: Different math disciplines reviewed all District 4 benchmarks to see the growth. Although the growths were not very significant, yet the data revealed a steady improvement in every area. Benchmark 4 data given by Ms. Gumucio were analyzed and disaggregated by math faculty Algebra Essentials: 8 standards identified by the non-mastery item analysis were selected for re- teaching.Standards: 4,7,8,9,11,17,20,and 21. ALGEBRAI: Non-Master range of 22% to 32% related to power Standards #:5,7,12,13,15,20,21, and 23 Were identified for re-teaching. GEOMETRY:Standards # 4,7,16,17,18, 20, 21,and 22 were identified for re-teaching. ALGEBRA II: Standards# 2,7,10,11.2, 12,18,and 19 were identified for re-teaching. All teachers in different disciplines developed different exam questions based on the identified standards for re-teaching.

2 Mathematics Department Plan: All teachers shared and presented effective strategies for teaching identified standards.

3 NEXT STEPS TO SOLVE THE EXIGENCE Faculty based on the data unanimously decided to re- teach the designated standards starting Tuesday 4/20/2010 in order to be able to review all the concepts which were revealed as non-mastery areas. New CST style power point lessons created by Curriculum Specialist were given to all disciplines as another venue to teach.

4 TIMELINE Math department will implement the remediation and intervention as of Tuesday 4/20/10.in order to have time to review all the identified standards and concepts. Next year the starting date will be September.

5 WHO IS RESPONSIBLE ? Classroom Teacher Math Curriculum Specialist Discipline leader Math department chair AP Curriculum( Ms.Gumucio) AP Testing (Ms. Rubio)

6 To solve a quadratic eqn. by factoring, you must remember your factoring patterns!

7 5.2 Solving Quadratic Equations by Factoring Goals: 1. Factoring quadratic expressions 2. Finding zeros of quadratic functions What must be true about a quadratic equation before you can solve it using the zero product property?

8 Zero Product Property Let A and B be real numbers or algebraic expressions. If AB=0, then A=0 or B=0. This means that If the product of 2 factors is zero, then at least one of the 2 factors had to be zero itself!

9 Example: Solve. x 2 +3x-18=0 x 2 +3x-18=0Factor the left side (x+6)(x-3)=0set each factor =0 x+6=0 OR x-3=0solve each eqn. -6 -6 +3 +3 x=-6 OR x=3check your solutions!

10 Example: Solve. 2t 2 -17t+45=3t-5 2t 2 -17t+45=3t-5Set eqn. =0 2t 2 -20t+50=0factor out GCF of 2 2(t 2 -10t+25)=0divide by 2 t 2 -10t+25=0factor left side (t-5) 2 =0set factors =0 t-5=0solve for t +5 t=5check your solution!

11 Example: Solve. 3x-6=x 2 -10 3x-6=x 2 -10Set = 0 0=x 2 -3x-4Factor the right side 0=(x-4)(x+1)Set each factor =0 x-4=0 OR x+1=0 Solve each eqn. +4 +4 -1 -1 x=4 OR x=-1 Check your solutions!

12 Finding the Zeros of an Equation The Zeros of an equation are the x- intercepts ! First, change y to a zero. Now, solve for x. The solutions will be the zeros of the equation.

13 Example: Find the Zeros of y=x 2 -x-6 y=x 2 -x-6Change y to 0 0=x 2 -x-6Factor the right side 0=(x-3)(x+2)Set factors =0 x-3=0 OR x+2=0Solve each equation +3 +3 -2 -2 x=3 OR x=-2Check your solutions! If you were to graph the eqn., the graph would cross the x-axis at (-2,0) and (3,0).

14 5.2 Solving Quadratic Equations by Factoring Goals: 1. Factoring quadratic expressions 2. Finding zeros of quadratic functions What must be true about a quadratic equation before you can solve it using the zero product property?

15 To solve a quadratic eqn. by factoring, you must remember your factoring patterns!

16 Zero Product Property Let A and B be real numbers or algebraic expressions. If AB=0, then A=0 or B=0. This means that If the product of 2 factors is zero, then at least one of the 2 factors had to be zero itself!

17 Example: Solve. x 2 +3x-18=0 x 2 +3x-18=0Factor the left side (x+6)(x-3)=0set each factor =0 x+6=0 OR x-3=0solve each eqn. -6 -6 +3 +3 x=-6 OR x=3check your solutions!

18 Example: Solve. 2t 2 -17t+45=3t-5 2t 2 -17t+45=3t-5Set eqn. =0 2t 2 -20t+50=0factor out GCF of 2 2(t 2 -10t+25)=0divide by 2 t 2 -10t+25=0factor left side (t-5) 2 =0set factors =0 t-5=0solve for t +5 t=5check your solution!

19 Example: Solve. 3x-6=x 2 -10 3x-6=x 2 -10Set = 0 0=x 2 -3x-4Factor the right side 0=(x-4)(x+1)Set each factor =0 x-4=0 OR x+1=0 Solve each eqn. +4 +4 -1 -1 x=4 OR x=-1 Check your solutions!

20 Finding the Zeros of an Equation The Zeros of an equation are the x- intercepts ! First, change y to a zero. Now, solve for x. The solutions will be the zeros of the equation.

21 Example: Find the Zeros of y=x 2 -x-6 y=x 2 -x-6Change y to 0 0=x 2 -x-6Factor the right side 0=(x-3)(x+2)Set factors =0 x-3=0 OR x+2=0Solve each equation +3 +3 -2 -2 x=3 OR x=-2Check your solutions! If you were to graph the eqn., the graph would cross the x-axis at (-2,0) and (3,0).

22 5.2 Solving Quadratic Equations by Factoring Goals: 1. Factoring quadratic expressions 2. Finding zeros of quadratic functions What must be true about a quadratic equation before you can solve it using the zero product property?

23 To solve a quadratic eqn. by factoring, you must remember your factoring patterns!

24 Zero Product Property Let A and B be real numbers or algebraic expressions. If AB=0, then A=0 or B=0. This means that If the product of 2 factors is zero, then at least one of the 2 factors had to be zero itself!

25 Example: Solve. x 2 +3x-18=0 x 2 +3x-18=0Factor the left side (x+6)(x-3)=0set each factor =0 x+6=0 OR x-3=0solve each eqn. -6 -6 +3 +3 x=-6 OR x=3check your solutions!

26 Example: Solve. 2t 2 -17t+45=3t-5 2t 2 -17t+45=3t-5Set eqn. =0 2t 2 -20t+50=0factor out GCF of 2 2(t 2 -10t+25)=0divide by 2 t 2 -10t+25=0factor left side (t-5) 2 =0set factors =0 t-5=0solve for t +5 t=5check your solution!

27 Example: Solve. 3x-6=x 2 -10 3x-6=x 2 -10Set = 0 0=x 2 -3x-4Factor the right side 0=(x-4)(x+1)Set each factor =0 x-4=0 OR x+1=0 Solve each eqn. +4 +4 -1 -1 x=4 OR x=-1 Check your solutions!

28 Finding the Zeros of an Equation The Zeros of an equation are the x- intercepts ! First, change y to a zero. Now, solve for x. The solutions will be the zeros of the equation.

29 Example: Find the Zeros of y=x 2 -x-6 y=x 2 -x-6Change y to 0 0=x 2 -x-6Factor the right side 0=(x-3)(x+2)Set factors =0 x-3=0 OR x+2=0Solve each equation +3 +3 -2 -2 x=3 OR x=-2Check your solutions! If you were to graph the eqn., the graph would cross the x-axis at (-2,0) and (3,0).

30 #1) Which statement must be true about the triangle? P Q R A. P + R < Q B. P + Q > R C. Q + P < R D. P + R = Q

31 B. P + Q > R

32 #2) For the figure shown below, lines m // l -which numbererd angles are equal to each other? A. 1 and 2 B. 1 and 5 C. 3 and 7 D. 5 and 7

33 Corresponding angle D

34 #3) If two consecutive angles of a parallelogram measure (2x + 10) º and (x-10)º, then what must be the value of x? A. 20 B. 60 C. 90 D. 120

35 B. 60

36 #4) Point x, y, and z are points on the circle. Which of the following facts is enough to prove that < XZY is a right angle? A. XY is a chord of the circle B. XZ = YZ C. XY > XZ D. XY is a diameter of the circle.

37 D One side of the triangle is a diameter => opposite is a RIGHT angle

38 #5) In the circle below, AB CD, AB is a diameter, and CD is a radius. ┴ What is m < B? A. 45º B. 55º C. 65º D. 75º

39 Inscribed angle B is half of arc AC = 90º A. 45º

40 #6 Which of the following translations would move the point (5, -2) to (7, – 4)? A.(x, y)  (x + 2, y + 2) B.(x, y)  (x – 2, y + 2) C.(x, y)  (x – 2, y – 2) D.(x, y)  (x + 2, y – 2)

41 (5, -2) to (7, – 4)? D. (x, y)  (x + 2, y – 2)

42 Which drawing below shows a completed construction of the angle bisector of angle B? A. B. C.D. #7)

43 Put the steps in order to construct a line perpendicular to line l from point P. #8)

44 Geometry CST prep

45 #1) Which statement must be true about the triangle? P Q R A. P + R < Q B. P + Q > R C. Q + P < R D. P + R = Q

46 B. P + Q > R

47 #2) For the figure shown below, lines m // l -which numbererd angles are equal to each other? A. 1 and 2 B. 1 and 5 C. 3 and 7 D. 5 and 7

48 Corresponding angle D

49 #3) If two consecutive angles of a parallelogram measure (2x + 10) º and (x-10)º, then what must be the value of x? A. 20 B. 60 C. 90 D. 120

50 B. 60

51 #4) Point x, y, and z are points on the circle. Which of the following facts is enough to prove that < XZY is a right angle? A. XY is a chord of the circle B. XZ = YZ C. XY > XZ D. XY is a diameter of the circle.

52 D One side of the triangle is a diameter => opposite is a RIGHT angle

53 #5) In the circle below, AB CD, AB is a diameter, and CD is a radius. ┴ What is m < B? A. 45º B. 55º C. 65º D. 75º

54 Inscribed angle B is half of arc AC = 90º A. 45º

55 #6 Which of the following translations would move the point (5, -2) to (7, – 4)? A.(x, y)  (x + 2, y + 2) B.(x, y)  (x – 2, y + 2) C.(x, y)  (x – 2, y – 2) D.(x, y)  (x + 2, y – 2)

56 (5, -2) to (7, – 4)? D. (x, y)  (x + 2, y – 2)

57 Which drawing below shows a completed construction of the angle bisector of angle B? A. B. C.D. #7)

58 Put the steps in order to construct a line perpendicular to line l from point P. #8)

59 Geometry CST prep

60 Sec. 10 – 6 Circles and Arcs Objectives: 1) To find the measures of central angles and arcs. 2) To find circumferences and arc lengths.

61 T C R D Circle – Set of all points equidistant from a given point Center ** Name the circle by its center. Radius – Is a segment that has one endpt @ the center and the other endpt on the circle. Ex. CD Diameter – A segment that contains the center of a circle & has both endpts on the circle.Ex. TR Central Angle – Is an  whose vertex is the center of the circle.Ex.  TCD C ** 360°

62 Finding measures of Central  s 25% 8% 27% 40% A B C D E m  BAE = = 40% of 360 = (.40) 360 = 144  m  CAD = 8% of 360 (.08)(360) = 28.8  m  DAE = 27% of 360 = 97.2 

63 More Circle terms P S R T Arc – Part of a Circle. * Measured in degrees ° Minor Arc – Smaller than a semicircle. (< 180°) * Named by 2 letters * Arc Measure = measure of central  * Ex: RS Major Arc – Greater than a semicircle. (> 180°) * Name by 3 letters * Order matters * Ex: RTS * Measure = Central  Semicircle – Half of a Circle. * Name by 3 letters * Ex: TRS = 180 

64 Arcs Continued A B C Adjacent Arcs – Are arcs of the same circle that have exactly one point in common. Ex: AB and BC mBCA = mBC + mCA Arc Addition!!

65 Ex 1 : Finding the measures of Arcs O B C D A 58  32  mBC = mDB = mAD = mAB = m  BOC = mBC + mCD mADC – mCD mABC – mBC 32 = 32 + 58 = 90 = 180 – 58 = 122 = 180 – 32 = 148 32° 122° 148°

66 Circumference Circumference – of a circle is the distance around the circle. C =  d or C = 2  r Pi = 3.14 Diameter of circle Radius of Cirlce

67 Ex. 2: Find the circumference of the following circle. 9cm C = 2  r =2  (9cm) =18  cm = 56.5cm

68 Example 2: Circumference The diameter of a bicycle wheel is 22in. To the nearest whole number, how many revolutions does the wheel make when the bicycle travels 100ft? Step 1: Convert diameter to feet. 12in in a foot C =  d =(1.83ft)  = 5.8ft Step 2 finish the prob 100ft/5.8ft = = 17.2 turns 22/12 = 1.83ft

69 Back to Arcs!! The measure of an arc is in degrees. Arc Length – Is a fraction of a circle’s Circumference. –It is the piece of string that would form the part of the circle. A B C

70 Length of AB = mAB 360 2r2r Measure of the arc. It is in Degrees. The Circumference Ex: An arc of 40  represents 40/360 or 1/9 of the circle. * Which means 1/9 of the Circumfernece.

71 Find the length of ADB in M. 18cm 150  A B M D mADB = 210 C = 2  r = 2  (18cm) = 113cm Length of ADB = (210/360) (113cm) = 66cm Length of ADB = mADB/360 2  r

72 Mathematics Department Plan: All teachers in different disciplines developed different exam questions based on the identified standards for re-teaching. All teachers shared and presented effective strategies for teaching identified standards.

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