Download presentation
Presentation is loading. Please wait.
Published byJason McCarthy Modified over 8 years ago
1
Special Cases of Factoring
2
1. Check to see if there is a GCF. 2. Write each term as a square. 3. Write those values that are squared as the product of a sum and a difference. Difference of Two Squares a 2 – b 2 (a + b)(a – b) =
3
64x 2 (8x + 1) (8x – 1) 1. GCF = ( ) 2 –1 ( ) 2 – 1. Factor. 1 2. Write as squares 8x1 3. (sum)(difference)
4
36x 2 (6x + 7) (6x – 7) 1. GCF = ( ) 2 –49 ( ) 2 – 2. Factor. 1 2. Write as squares 6x7 3. (sum)(difference)
5
100x 2 (10x + 9y) (10x – 9y) 1. GCF = ( ) 2 –81y 2 ( ) 2 – 3. Factor. 1 2. Write as squares 10x9y 3. (sum)(difference)
6
1. Check to see if there is a GCF. 2. Determine if the 1 st and 3 rd terms are perfect squares. 3. Determine if the 2 nd term is double the product of the values whose squares are the 1 st and 3 rd terms. 4. Write as a sum or difference squared. Perfect Square Trinomials a 2 + 2ab + b 2 (a + b) 2 = a 2 – 2ab + b 2 (a – b) 2 =
7
x2x2 2(x)(5) = 10x GCF = x 2 = (x + 5) 2 25 = 2. Are the 1 st and 3 rd terms perfect squares 3. Is 2 nd term double the product of the values whose squares are the 1 st and 3 rd terms √ √ (x) 2 (5) 2 5. Factor. 4. Write as a sum squared. 1 + 10 x + 25
8
5( ) 4x 2 (2x + 3) (2x – 3) 1. GCF = ( ) 2 –9 ( ) 2 – 9. Factor. 5 2. Write as squares 2x3 3. (sum)(difference) 20x 2 –45 5
9
25x 2 2(5x)(-3) = -30x GCF = 25x 2 = (5x – 3) 2 9 = 2. Are the 1 st and 3 rd terms perfect squares 3. Is 2 nd term double the product of the values whose squares are the 1 st and 3 rd terms √ √ (5x) 2 (-3) 2 6. Factor. 4. Write as a difference squared. 1 – 30 x + 9 Used -3 because the second term is – 30x
10
Factoring by Grouping Objective: After completing this section, students should be able to factor polynomials by grouping.
11
Steps for factoring by grouping: 1. A polynomial must have 4 terms to factor by grouping. 2. We factor the first two terms and the second two terms separately. Use the rules for GCF to factor these.
12
Examples: These two terms must be the same.
13
Examples: These two terms must be the same. You must always check to see if the expression is factored completely. This expression can still be factored using the rules for difference of two squares. (see 6.2) This is a difference of two squares.
14
Examples: These two terms must be the same. You can rearrange the terms so that they are the same. These two terms must be the same. But they are not the same. So this polynomial is not factorable.
15
Try These: Factor by grouping.
16
Solutions: If you did not get these answers, click the green button next to the solution to see it worked out.
17
BACK
18
25x 2 2(5x)(6y) = 60xy GCF = 25x 2 = (5x + 6y) 2 36y 2 = 2. Are the 1 st and 3 rd terms perfect squares 3. Is 2 nd term double the product of the values whose squares are the 1 st and 3 rd terms √ √ (5x) 2 (6y) 2 7a. Factor. 4. Write as a sum squared. 1 + 60 xy + 36y 2
19
64x 6 2(8x 3 )(-3) = -48x 3 GCF = 64x 6 = (5x – 3) 2 9 = 2. Are the 1 st and 3 rd terms perfect squares 3. Is 2 nd term double the product of the values whose squares are the 1 st and 3 rd terms √ √ (8x 3 ) 2 (-3) 2 7b. Factor. 4. Write as a difference squared. 1 – 48 x3x3 + 9 Used -3 because the second term is – 48x 3
20
9x 2 2(3x)(2) = 12x GCF = 9x 2 = Not a perfect square trinomial 4 = 2. Are the 1 st and 3 rd terms perfect squares 3. Is 2 nd term double the product of the values whose squares are the 1 st and 3 rd terms √ (3x) 2 (2) 2 8. Factor. 12x ≠ 15x 1 + 15 x + 4 Use trial and error or the grouping method
21
3( ) 25x 2 2(5x)(-2) = -20x GCF = 25x 2 = 3(5x – 2) 2 4 = 2. Are the 1 st and 3 rd terms perfect squares 3. Is 2 nd term double the product of the values whose squares are the 1 st and 3 rd terms √ √ (5x) 2 (-2) 2 10. Factor. 4. Write as a difference squared. 3 – 20 x + 4 Used -2 because the second term is – 20x 75x 2 – 60 x + 12
Similar presentations
© 2024 SlidePlayer.com. Inc.
All rights reserved.