7.6 Solve Rational Inequalities - Intermediate Algebra 2e | OpenStax
Maybe your like
Intermediate Algebra 2e7.6Solve Rational InequalitiesIntermediate Algebra 2e7.6Solve Rational InequalitiesContentsContentsHighlightsPrintSearch for key terms or text.SearchSearchCloseSearch
CloseSearchBy the end of this section, you will be able to:
- Solve rational inequalities
- Solve an inequality with rational functions
Before you get started, take this readiness quiz.
Find the value of x−5x−5 when ⓐ x=6x=6 ⓑ x=−3x=−3 ⓒ x=5.x=5. If you missed this problem, review Example 1.6.
Solve: 8−2x<12.8−2x<12. If you missed this problem, review Example 2.52.
Write in interval notation: −3≤x<5.−3≤x<5. If you missed this problem, review Example 2.49.
Solve Rational Inequalities
We learned to solve linear inequalities after learning to solve linear equations. The techniques were very much the same with one major exception. When we multiplied or divided by a negative number, the inequality sign reversed.
Having just learned to solve rational equations we are now ready to solve rational inequalities. A rational inequality is an inequality that contains a rational expression.
A rational inequality is an inequality that contains a rational expression.
Inequalities such as 32x>1,2xx−3<4,2x−3x−6≥x,32x>1,2xx−3<4,2x−3x−6≥x, and 14−2x2≤3x14−2x2≤3x are rational inequalities as they each contain a rational expression.
When we solve a rational inequality, we will use many of the techniques we used solving linear inequalities. We especially must remember that when we multiply or divide by a negative number, the inequality sign must reverse.
Another difference is that we must carefully consider what value might make the rational expression undefined and so must be excluded.
When we solve an equation and the result is x=3,x=3, we know there is one solution, which is 3.
When we solve an inequality and the result is x>3,x>3, we know there are many solutions. We graph the result to better help show all the solutions, and we start with 3. Three becomes a zero partition number and then we decide whether to shade to the left or right of it. The numbers to the right of 3 are larger than 3, so we shade to the right.
To solve a rational inequality, we first must write the inequality with only one quotient on the left and 0 on the right.
Next we determine the zero partition numbers to use to divide the number line into intervals. A zero partition number is a number which make the rational expression zero or undefined.
We then will evaluate the factors of the numerator and denominator, and find the quotient in each interval. This will identify the interval, or intervals, that contains all the solutions of the rational inequality.
We write the solution in interval notation being careful to determine whether the endpoints are included.
Solve and write the solution in interval notation: x−1x+3≥0.x−1x+3≥0.
Solution
Step 1. Write the inequality as one quotient on the left and zero on the right.
Our inequality is in this form. x−1x+3≥0x−1x+3≥0
Step 2. Determine the zero partition numbers—the points where the rational expression will be zero or undefined.
The rational expression will be zero when the numerator is zero. Since x−1=0x−1=0 when x=1,x=1, then 11 is a zero partition number.
The rational expression will be undefined when the denominator is zero. Since x+3=0x+3=0 when x=−3,x=−3, then −3−3 is a zero partition number.
The zero partition numbers are 1 and −3.−3.
Step 3. Use the zero partition numbers to divide the number line into intervals.
The number line is divided into three intervals:
( − ∞ , −3 ) ( −3 , 1 ) ( 1 , ∞ ) ( − ∞ , −3 ) ( −3 , 1 ) ( 1 , ∞ )
Step 4. Test a value in each interval. Above the number line show the sign of each factor of the rational expression in each interval. Below the number line show the sign of the quotient.
To find the sign of each factor in an interval, we choose any point in that interval and use it as a test point. Any point in the interval will give the expression the same sign, so we can choose any point in the interval.
Interval ( − ∞ , −3 ) Interval ( − ∞ , −3 )The number −4−4 is in the interval (−∞,−3).(−∞,−3). Test x=−4x=−4 in the expression in the numerator and the denominator.
Above the number line, mark the factor x−1x−1 negative and mark the factor x+3x+3 negative.
Since a negative divided by a negative is positive, mark the quotient positive in the interval (−∞,−3).(−∞,−3).
The number 0 is in the interval (−3,1).(−3,1). Test x=0.x=0.
Above the number line, mark the factor x−1x−1 negative and mark x+3x+3 positive.
Since a negative divided by a positive is negative, the quotient is marked negative in the interval (−3,1).(−3,1).
The number 2 is in the interval (1,∞).(1,∞). Test x=2.x=2.
Above the number line, mark the factor x−1x−1 positive and mark x+3x+3 positive.
Since a positive divided by a positive is positive, mark the quotient positive in the interval (1,∞).(1,∞).
Step 5. Determine the intervals where the inequality is correct. Write the solution in interval notation.
We want the quotient to be greater than or equal to zero, so the numbers in the intervals (−∞,−3)(−∞,−3) and (1,∞)(1,∞) are solutions.
But what about the zero partition numbers?
The zero partition number x=−3x=−3 makes the denominator 0, so it must be excluded from the solution and we mark it with a parenthesis.
The zero partition number x=1x=1 makes the whole rational expression 0. The inequality requires that the rational expression be greater than or equal to 0. So, 1 is part of the solution and we will mark it with a bracket.
Recall that when we have a solution made up of more than one interval we use the union symbol, ∪,∪, to connect the two intervals. The solution in interval notation is (−∞,−3)∪[1,∞).(−∞,−3)∪[1,∞).
Solve and write the solution in interval notation: x−2x+4≥0.x−2x+4≥0.
Solve and write the solution in interval notation: x+2x−4≥0.x+2x−4≥0.
We summarize the steps for easy reference.
Solve a rational inequality.
- Step 1. Write the inequality as one quotient on the left and zero on the right.
- Step 2. Determine the zero partition numbers–the points where the rational expression will be zero or undefined.
- Step 3. Use the zero partition numbers to divide the number line into intervals.
- Step 4. Test a value in each interval. Above the number line show the sign of each factor of the numerator and denominator in each interval. Below the number line show the sign of the quotient.
- Step 5. Determine the intervals where the inequality is correct. Write the solution in interval notation.
The next example requires that we first get the rational inequality into the correct form.
Solve and write the solution in interval notation: 4xx−6<1.4xx−6<1.
Solution
| 4xx−6<14xx−6<1 | ||
| Subtract 1 to get zero on the right. | 4xx−6−1<04xx−6−1<0 | |
| Rewrite 1 as a fraction using the LCD. | 4xx−6−x−6x−6<04xx−6−x−6x−6<0 | |
| Subtract the numerators and place thedifference over the common denominator. | 4x−(x−6)x−6<04x−(x−6)x−6<0 | |
| Simplify. | 3x+6x−6<03x+6x−6<0 | |
| Factor the numerator to show all factors. | 3(x+2)x−6<03(x+2)x−6<0 | |
| Find the zero partition numbers. | ||
| The quotient will be zero when the numerator is zero.The quotient is undefined when the denominator is zero. | x+2=0x−6=0x=−2x=6x+2=0x−6=0x=−2x=6 | |
| Use the zero partition numbers to divide the number line into intervals. | ||
| Test a value in each interval. | ||
| Above the number line show the sign of each factor of the rational expression in each interval.Below the number line show the sign of the quotient. | ||
| Determine the intervals where the inequality is correct. We want the quotient to be negative, so the solution includes the points between −2 and 6. Since the inequality is strictly less than, the endpoints are not included. | ||
| We write the solution in interval notation as (−2, 6). | ||
Solve and write the solution in interval notation: 3xx−3<1.3xx−3<1.
Solve and write the solution in interval notation: 3xx−4<2.3xx−4<2.
In the next example, the numerator is always positive, so the sign of the rational expression depends on the sign of the denominator.
Solve and write the solution in interval notation: 5x2−2x−15>0.5x2−2x−15>0.
Solution
| The inequality is in the correct form. | 5x2−2x−15>05x2−2x−15>0 |
| Factor the denominator. | 5(x+3)(x−5)>05(x+3)(x−5)>0 |
| Find the zero partition numbers.The quotient is 0 when the numerator is 0.Since the numerator is always 5, the quotient cannot be 0. | |
| The quotient will be undefined when thedenominator is zero. | (x+3)(x−5)=0x=−3, x=5 (x+3)(x−5)=0x=−3, x=5 |
| Use the zero partition numbers to divide the number line into intervals. | |
| Test values in each interval.Above the number line show the sign of eachfactor of the denominator in each interval.Below the number line, show the sign of the quotient. | |
| Write the solution in interval notation. | (−∞,−3)∪(5,∞)(−∞,−3)∪(5,∞) |
Solve and write the solution in interval notation: 1x2+2x−8>0.1x2+2x−8>0.
Solve and write the solution in interval notation: 3x2+x−12>0.3x2+x−12>0.
The next example requires some work to get it into the needed form.
Solve and write the solution in interval notation: 13−2x2<53x.13−2x2<53x.
Solution
| 13−2x2<53x13−2x2<53x | ||
| Subtract 53x53x to get zero on the right. | 13−2x2−53x<013−2x2−53x<0 | |
| Rewrite to get each fraction with the LCD 3x2.3x2. | 1⋅x23⋅x2−2⋅3x2⋅3−5⋅x3x⋅x<01⋅x23⋅x2−2⋅3x2⋅3−5⋅x3x⋅x<0 | |
| Simplify. | x23x2−63x2−5x3x2<0x23x2−63x2−5x3x2<0 | |
| Subtract the numerators and place thedifference over the common denominator. | x2−5x−63x2<0x2−5x−63x2<0 | |
| Factor the numerator. | (x−6)(x+1)3x2<0(x−6)(x+1)3x2<0 | |
| Find the zero partition numbers. | 3x2=0x−6=0x+1=0x=0x=6x=−13x2=0x−6=0x+1=0x=0x=6x=−1 | |
| Use the zero partition numbers to divide the numberline into intervals. | ||
| Above the number line show the sign of eachfactor in each interval. Below the number line, show the sign of the quotient. | ||
| Since, 0 is excluded, the solution is the twointervals, (−1,0)(−1,0) and (0,6).(0,6). | (−1,0)∪(0,6)(−1,0)∪(0,6) | |
Solve and write the solution in interval notation: 12+4x2<3x.12+4x2<3x.
Solve and write the solution in interval notation: 13+6x2<3x.13+6x2<3x.
Solve an Inequality with Rational Functions
When working with rational functions, it is sometimes useful to know when the function is greater than or less than a particular value. This leads to a rational inequality.
Given the function R(x)=x+3x−5,R(x)=x+3x−5, find the values of x that make the function less than or equal to 0.
Solution
We want the function to be less than or equal to 0.
| R(x)≤0R(x)≤0 | |
| Substitute the rational expression for R(x).R(x). | x+3x−5≤0x≠5x+3x−5≤0x≠5 |
| Find the zero partition numbers. | x+3=0x−5=0 x=−3x=5x+3=0x−5=0 x=−3x=5 |
| Use the zero partition numbers to divide the number line into intervals. | |
| Test values in each interval. Above thenumber line, show the sign of each factorin each interval. Below the number line,show the sign of the quotient | |
| Write the solution in interval notation. Since5 is excluded we, do not include it in the interval. | [−3,5)[−3,5) |
Given the function R(x)=x−2x+4,R(x)=x−2x+4, find the values of x that make the function less than or equal to 0.
Given the function R(x)=x+1x−4,R(x)=x+1x−4, find the values of x that make the function less than or equal to 0.
In economics, the function C(x)C(x) is used to represent the cost of producing x units of a commodity. The average cost per unit can be found by dividing C(x)C(x) by the number of items x.x. Then, the average cost per unit is c(x)=C(x)x.c(x)=C(x)x.
The function C(x)=10x+3000C(x)=10x+3000 represents the cost to produce x,x, number of items. Find ⓐ the average cost function, c(x)c(x) ⓑ how many items should be produced so that the average cost is less than $40.
Solution
ⓐ
| C(x)=10x+3000C(x)=10x+3000 | |
| The average cost function is c(x)=C(x)x.c(x)=C(x)x. | |
| To find the average cost function, divide thecost function by x.x. | c(x)=C(x)xc(x)=10x+3000xc(x)=C(x)xc(x)=10x+3000x |
| The average cost function is c(x)=10x+3000x.c(x)=10x+3000x. |
ⓑ
| We want the function c(x)c(x) to be less than 40.40. | c(x)<40c(x)<40 |
| Substitute the rational expression for c(x).c(x). | 10x+3000x<40x≠010x+3000x<40x≠0 |
| Subtract 40 to get 0 on the right. | 10x+3000x−40<010x+3000x−40<0 |
| Rewrite the left side as one quotient by findingthe LCD and performing the subtraction. | 10x+3000x−40(xx)<010x+3000x−40(xx)<0 |
| 10x+3000x−40xx<010x+3000x−40xx<0 | |
| 10x+3000−40xx<010x+3000−40xx<0 | |
| −30x+3000x<0−30x+3000x<0 | |
| Factor the numerator to show all factors. | −30(x−100)x<0−30(x−100)x<0 |
| Find the zero partition numbers. | −30(x−100)=0x=0−30≠0x−100=0x=100−30(x−100)=0x=0−30≠0x−100=0x=100 |
More than 100 items must be produced to keep the average cost below $40 per item.
The function C(x)=20x+6000C(x)=20x+6000 represents the cost to produce x,x, number of items. Find ⓐ the average cost function, c(x)c(x) ⓑ how many items should be produced so that the average cost is less than $60?
The function C(x)=5x+900C(x)=5x+900 represents the cost to produce x,x, number of items. Find ⓐ the average cost function, c(x)c(x) ⓑ how many items should be produced so that the average cost is less than $20?
Section 7.6 Exercises
Practice Makes Perfect
Solve Rational Inequalities
In the following exercises, solve each rational inequality and write the solution in interval notation.
339.x − 3 x + 4 ≥ 0 x − 3 x + 4 ≥ 0
340.x + 6 x − 5 ≥ 0 x + 6 x − 5 ≥ 0
341.x + 1 x − 3 ≤ 0 x + 1 x − 3 ≤ 0
342.x − 4 x + 2 ≤ 0 x − 4 x + 2 ≤ 0
343.x − 7 x − 1 > 0 x − 7 x − 1 > 0
344.x + 8 x + 3 > 0 x + 8 x + 3 > 0
345.x − 6 x + 5 < 0 x − 6 x + 5 < 0
346.x + 5 x − 2 < 0 x + 5 x − 2 < 0
347.3 x x − 5 < 1 3 x x − 5 < 1
348.5 x x − 2 < 1 5 x x − 2 < 1
349.6 x x − 6 > 2 6 x x − 6 > 2
350.3 x x − 4 > 2 3 x x − 4 > 2
351.2 x + 3 x − 6 ≤ 1 2 x + 3 x − 6 ≤ 1
352.4 x − 1 x − 4 ≤ 1 4 x − 1 x − 4 ≤ 1
353.3 x − 2 x − 4 ≥ 2 3 x − 2 x − 4 ≥ 2
354.4 x − 3 x − 3 ≥ 2 4 x − 3 x − 3 ≥ 2
355.1 x 2 + 7 x + 12 > 0 1 x 2 + 7 x + 12 > 0
356.1 x 2 − 4 x − 12 > 0 1 x 2 − 4 x − 12 > 0
357.3 x 2 − 5 x + 4 < 0 3 x 2 − 5 x + 4 < 0
358.4 x 2 + 7 x + 12 < 0 4 x 2 + 7 x + 12 < 0
359.2 2 x 2 + x − 15 ≥ 0 2 2 x 2 + x − 15 ≥ 0
360.6 3 x 2 − 2 x − 5 ≥ 0 6 3 x 2 − 2 x − 5 ≥ 0
361.−2 6 x 2 − 13 x + 6 ≤ 0 −2 6 x 2 − 13 x + 6 ≤ 0
362.−1 10 x 2 + 11 x − 6 ≤ 0 −1 10 x 2 + 11 x − 6 ≤ 0
363.1 2 + 12 x 2 > 5 x 1 2 + 12 x 2 > 5 x
364.1 3 + 1 x 2 > 4 3 x 1 3 + 1 x 2 > 4 3 x
365.1 2 − 4 x 2 ≤ 1 x 1 2 − 4 x 2 ≤ 1 x
366.1 2 − 3 2 x 2 ≥ 1 x 1 2 − 3 2 x 2 ≥ 1 x
367.1 x 2 − 16 < 0 1 x 2 − 16 < 0
368.4 x 2 − 25 > 0 4 x 2 − 25 > 0
369.4 x − 2 ≥ 3 x + 1 4 x − 2 ≥ 3 x + 1
370.5 x − 1 ≤ 4 x + 2 5 x − 1 ≤ 4 x + 2
Solve an Inequality with Rational Functions
In the following exercises, solve each rational function inequality and write the solution in interval notation.
371.Given the function R(x)=x−5x−2,R(x)=x−5x−2, find the values of xx that make the function less than or equal to 0.
372.Given the function R(x)=x+1x+3,R(x)=x+1x+3, find the values of xx that make the function greater than or equal to 0.
373.Given the function R(x)=x−6x+2R(x)=x−6x+2, find the values of x that make the function less than or equal to 0.
374.Given the function R(x)=x+1x−4,R(x)=x+1x−4, find the values of x that make the function less than or equal to 0.
Writing Exercises
375.Write the steps you would use to explain solving rational inequalities to your little brother.
376.Create a rational inequality whose solution is (−∞,−2]∪[4,∞).(−∞,−2]∪[4,∞).
Self Check
ⓐ After completing the exercises, use this checklist to evaluate your mastery of the objectives of this section.
ⓑ After reviewing this checklist, what will you do to become confident for all objectives?
PreviousNextOrder a print copyCitation/AttributionThis book may not be used in the training of large language models or otherwise be ingested into large language models or generative AI offerings without OpenStax's permission.
Want to cite, share, or modify this book? This book uses the Creative Commons Attribution License and you must attribute OpenStax.
Attribution information- If you are redistributing all or part of this book in a print format, then you must include on every physical page the following attribution:
Access for free at https://openstax.org/books/intermediate-algebra-2e/pages/1-introduction
- If you are redistributing all or part of this book in a digital format, then you must include on every digital page view the following attribution:
Access for free at https://openstax.org/books/intermediate-algebra-2e/pages/1-introduction
- Use the information below to generate a citation. We recommend using a citation tool such as this one.
- Authors: Lynn Marecek, Andrea Honeycutt Mathis
- Publisher/website: OpenStax
- Book title: Intermediate Algebra 2e
- Publication date: May 6, 2020
- Location: Houston, Texas
- Book URL: https://openstax.org/books/intermediate-algebra-2e/pages/1-introduction
- Section URL: https://openstax.org/books/intermediate-algebra-2e/pages/7-6-solve-rational-inequalities
© Jul 8, 2025 OpenStax. Textbook content produced by OpenStax is licensed under a Creative Commons Attribution License . The OpenStax name, OpenStax logo, OpenStax book covers, OpenStax CNX name, and OpenStax CNX logo are not subject to the Creative Commons license and may not be reproduced without the prior and express written consent of Rice University.
Tag » How To Solve Rational Inequalities
-
Solving Rational Inequalities - Purplemath
-
9.7: Solve Rational Inequalities - Mathematics LibreTexts
-
Rational Inequalities - YouTube
-
Solving Rational Inequalities - ChiliMath
-
Rational Inequalities: One Side Is Zero (video) - Khan Academy
-
Rational Inequalities: Both Sides Are Not Zero (video) - Khan Academy
-
Algebra - Rational Inequalities - Pauls Online Math Notes
-
Solving Rational Inequalities Steps & Examples
-
Solving Rational Inequalities - Math Is Fun
-
Solve Rational Inequalities – Intermediate Algebra
-
Solving Rational Inequalities - Mathematics Stack Exchange
-
[PDF] 135 NOTES ON RATIONAL INEQUALITIES
-
Tutorial 23B: Rational Inequalities - West Texas A&M University
-
Solving Polynomial And Rational Inequalities