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Further Pure 1 Lesson 8 – Inequalities. Wiltshire Inequalities Inequalities involve the relationships >,<,≥,≤ There are two types of inequality Type 1.

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Presentation on theme: "Further Pure 1 Lesson 8 – Inequalities. Wiltshire Inequalities Inequalities involve the relationships >,<,≥,≤ There are two types of inequality Type 1."— Presentation transcript:

1 Further Pure 1 Lesson 8 – Inequalities

2 Wiltshire Inequalities Inequalities involve the relationships >,<,≥,≤ There are two types of inequality Type 1 – Those that are only true for certain values. Example: x 2 > 9, when x > 3 or x < -3 Type 2 – Those that are always true. Example: x 2 + y 2 ≥ 0, for all x,y in the reals. In this lesson we will be looking at the first type of inequalities, and how to solve the inequality.

3 Wiltshire Drawing Inequalities You can either write an inequality algebraically or you can show it with a diagram. You need to be familiar with either method. x < a x > a x ≥ a x ≤ a a < x ≤ b Note that a solid end is used for ≤ & ≥ and an empty end is used for. ab

4 Wiltshire Manipulating Inequalities

5 Wiltshire Solving Inequalities We are going to look at solving inequalities of the form f(x) > 0. This can be solved 2 different ways. Method 1 - By plotting the graph of f(x) and then examining where the graph is above the x-axis. Method 2 - By solving the equation using an algebraic method.

6 Wiltshire Method 1 - Graphically Solve the inequality We have already learnt how to plot this graph in lesson 7. Just by studying the graph you can see where the line is above the x-axis. -3 < x < 1 & 6 < x

7 Wiltshire Method 2 - Algebraically We can use a table to investigate when the graph is positive and when it is negative. There are three key points on the x-axis, the two asymptotes and the value of x when y = 0. From the table you can see that -3 < x < 1 & 6 < x –––+ –+++ ––++

8 Wiltshire Inequalities of the form f(x) ≤ g(x) – Method 1 Solve the inequality x + 1 < 2/x We can sketch y = x + 1 and y = 2/x Now we need to find the x co-ordinates of where the two graphs meet. We need to solve x + 1 = 2/x x 2 + x = 2 x 2 + x - 2 = 0 (x + 2)(x - 1) = 0 x = -2 & 1 From the graph we can see that the solution is. x < -2 & 0 < x < 1

9 Wiltshire Inequalities of the form f(x) ≤ g(x) – Method 2 Solve the inequality x + 1 < 2/x x + 1 – 2/x < 0 x 2 + x – 2 < 0 x (x – 1)(x + 2) < 0 x –––+ –+++ ––++

10 Wiltshire Inequalities of the form f(x) ≤ g(x) – Method 3 The third method is to re- arrange the equation so that it is equal to zero and then sketch the graph. (x – 1)(x + 2) < 0 x If y = 0, x = -2 & 1 If x = 0, y is undefined As x tends to infinity y tends towards x. As x tends to minus infinity y tends towards –x. From the graph you can see that x < -2 & 0 < x < 1

11 Wiltshire Questions Solve the following inequalities graphically and algebraically. 1) (x+2)(x-5)(2x-3) < 0 2)x 2 ≥ x + 6 3)2/x > 0.5x 4)2x-1 ≤ 9 x-1 x+1 You can now do Ex 3B pg 92

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