Presentation is loading. Please wait.

Presentation is loading. Please wait.

A permutation of r objects taken from n different objects without repetition is an arrangement of the objects in a specific order For example, there 12.

Published byAlexis Jennings Modified over 8 years ago

Similar presentations

Presentation on theme: "A permutation of r objects taken from n different objects without repetition is an arrangement of the objects in a specific order For example, there 12."— Presentation transcript:

1

2 A permutation of r objects taken from n different objects without repetition is an arrangement of the objects in a specific order For example, there 12 permutations for the letters A, B, C and D taken 2 at a time. These are : AB BA CA DA AC BC CB DB AD BD CD DC Permutation of r objects taken from n different object

3 Using the multiplication principle The number of permutations of 4 objects taken two at a time = 4 x 3 = 12. Similarly, the number of permutations of 10 objects taken 3 at a time = 10 X 9 X 8 = 720. In general, the number of permutations of n objects taken r at a time = = =

4 P r = n! (n - r)! n The number of permutations of r objects chosen from a set of n different objects is denoted by

5 Example Suppose you have 4 different flags. How many different signals could you make using (i) 2 flags (ii) 2 or 3 flags Solution (i) n = 4r = 2 There are 12 different signals using 2 flags from 4 flags. n P r = 4 P 2 = 4! 2! = 4 x 3 x 2! =(4)(3) = 12 2!

6 n = 4 r = 2 or n = 4r = 3 There are 36 different signals using 2 or 3 flags from 4 flags. 4 P 2 4 P 3 + 2! 4! = = = = ____ 4! 1! + 4x3x2! 2! + 4x3x1! 1! 12 + 24 36 (ii) 2 or 3 flags

7 Example How many arrangements of the letters of the word B E G I N are there if (i) 3 letters are used (ii) all of the letters are used Solution (i) n = 5r = 3 The arrangements of the letters of the word BEGIN is 60 if 3 letters are used. 5 P 3 = == 5! 2! (5)(4)(3) 60

8 ii) n = 5 Number of arrangements if all of the letters are used. Example A relay team has 5 members. How many ways can a coach arrange 4 of them to run a 4x100 m race. The order of the four runners is important. Number of arrangements the coach can make 5 P 5 == = 5!(5)(4)(3)(2)(1)120 5 P 4 = =

9 Solution (i) n= 5 r= 3 There are 60 different arrangements. n P r =====60 5 P 3 5! 2! (5)(4)(3)(2)(1) 2! (5)(4)(3) Example How many three-digit numbers can be made from the integers 2, 3, 4, 5, 6 if (i) each integer is used only once? (ii)there is no restriction on the number of times each integer can be used?

10 Number of ways of making the three-digit numbers =5 x 5 x 5 = 125 (Repetition is allowed) ii) there is no restriction on the number of times each integer can be used? integer can be used? Solution:

11 Example Find the number of arrangements of 4 digits taken from the set { 1, 2, 3, 4}. In how many ways can these numbers be arranged so that (a) The numbers begin with digit ‘1’ (b) The numbers do not begin with digit ‘1’ Solution Number of arrangements of 4 digits = 4! = 24 (a)If the arrangements begin with digit ‘1’, then the number of ways the 3 remaining digits can be arranged = 3! =6

12 (b)The number of arrangements that do not begin with digit ‘1’ Example Four sisters and two brothers are arranged in different ways in a straight line for several photographs to be taken. How many different arrangements are possible if (a) there are no restrictions (b) the two brothers must be separated = 24 - 6 = 8

13 Solution (a) 6! = 720 (b)First, (b)First, find the numbers of arrangements with the two brothers standing next to each other. other. In these arrangements, the two brothers move together as one unit and this is equivalent to the arrangement of 5 objects except that they are able to switch positions with each other. Number of arrangements with two brothers next to each other = 5! x 2! = 120 x 2 = 240 Number of arrangements with the two brothers separated =720 – 240 = 480

14 Example Arrange 6 boys and 3 girls in a straight line so that the girls are separated. In how many ways can this be done? Solution Consider this arrangement : o B o B o B o B o B o B o Let the 6 B’s represent the 6 boys and the ‘o’ represent the spaces for the girls. Number of arrangements for the boys = 6! Number of arrangements for the girls 7 P 3 =(7 spaces available for the 3 girls) = 210

15 Total number of arrangements of 6 boys and 3 girls where the girls are separated = 151200 = 6! x 210

16 Solution a) The NOP = b) The NOP = EXAMPLE There are 10 students out of whom six are females. How many possible arrangements are there if a) they are arranged in a row? b) males always sit on one side and female on the other side? = 362880010! 2!xx6!4!= 34560

17 Example A witness to a hit-and-run accident told the police that the plat number contained the letters PDW followed by 3 digits, the first of which is 5. If the witness cannot recall the last 2 digits, but is certain that all 3 digits are different, find the minimum number of automobile registrations that the police may have to check. 5 Solution P D W The NOP = 1 x 9x 8= 72 ways

18 Example In how many ways can 4 girls and 5 boys sit in a row if the boys and girls must sit alternate to each other? Solution B B B B B The NOP = 5! x 4!= 2880 ways

19

20 Solution The NOP =a) b) or The NOP = 2 ( 1 x 6 x 5 x 4 ) = 240 ways c) The NOP = 5 x 5 x 4 x 3 = 300 ways 4 6 4 x 6 x 5 x 4= 480 ways

21 EExample HHow many four-digit even numbers can be formed from the digits, 1, 2, 3, 4, 5, 6, 7 to make up between 2000 and 6000 A aa) without repetition Solution: consider the last position by two parts : “0” and “not 0” ends with 0 not ends with 0 or0 The NOP = (4 x 6 x 5 x 1 ) + ( 3 x 6 x 5 x 3) = 390 ways

22 The NOP = 4 x 8 x 8 x 4 = 1024 ways. b) With repetition

23 Example Three married couples have bought 6 seats in the same row for a concert In how many different ways can they be seated a) with no restrictions b) If each couple is to sit together c) If all the men sit together to the right of all the women Solution a) The NOP = 6! = 720 H 1 W 1 H 2 W 2 H 3 W 3 b) 48 ways The NOP = 3! X 2! X 2! X 2! = 48 ways

24 W 1 W 2 W 3 H 1 H 2 H 3 The NOP = 1 x 3! X 3! = 36 ways. c) If all the men sit together to the right of all the women

Download ppt "A permutation of r objects taken from n different objects without repetition is an arrangement of the objects in a specific order For example, there 12."

Similar presentations

Quantitative Methods Session – 29.08.13 Permutation & Combination Pranjoy Arup Das.

Quantitative Methods Session – Permutation & Combination Pranjoy Arup Das.
MATHCOUNTS TOOLBOX Facts, Formulas and Tricks

MATHCOUNTS TOOLBOX Facts, Formulas and Tricks
1. Permutation 2. Combination 3. Formula for P ( n,r ) 4. Factorial 5. Formula for C ( n,r ) 1.

1. Permutation 2. Combination 3. Formula for P ( n,r ) 4. Factorial 5. Formula for C ( n,r ) 1.
12.1 Permutations When a question says ‘how many arrangment’..... Think BOXES For each space we have a box In the box write down how many options can go.

12.1 Permutations When a question says ‘how many arrangment’..... Think BOXES For each space we have a box In the box write down how many options can go.
Statistics and Probability Theory

Statistics and Probability Theory
Permutation and Combination

Permutation and Combination
PERMUTATIONS AND COMBINATIONS M408 – Probability Unit.

PERMUTATIONS AND COMBINATIONS M408 – Probability Unit.
Multiplication Rule. A tree structure is a useful tool for keeping systematic track of all possibilities in situations in which events happen in order.

Multiplication Rule. A tree structure is a useful tool for keeping systematic track of all possibilities in situations in which events happen in order.
Combinations and Probability

Combinations and Probability
4.1. Fundamental Counting Principal Find the number of choices for each option and multiply those numbers together. Lets walk into TGIF and they are offering.

4.1. Fundamental Counting Principal Find the number of choices for each option and multiply those numbers together. Lets walk into TGIF and they are offering.
COUNTING PRINCIPALS, PERMUTATIONS, AND COMBINATIONS.

COUNTING PRINCIPALS, PERMUTATIONS, AND COMBINATIONS.
Combinations & Permutations. Essentials: Permutations & Combinations (So that’s how we determine the number of possible samples!) Definitions: Permutation;

Combinations & Permutations. Essentials: Permutations & Combinations (So that’s how we determine the number of possible samples!) Definitions: Permutation;
Mathematics. Permutation & Combination Session.

Mathematics. Permutation & Combination Session.
Combinations and Permutations

Combinations and Permutations
Counting Unit Review Sheet. 1. There are five choices of ice cream AND three choices of cookies. a)How many different desserts are there if you have one.

Counting Unit Review Sheet. 1. There are five choices of ice cream AND three choices of cookies. a)How many different desserts are there if you have one.
Chapter 6 The Inclusion-Exclusion Principle and Applications

Chapter 6 The Inclusion-Exclusion Principle and Applications
Topics to be covered: Produce all combinations and permutations of sets. Calculate the number of combinations and permutations of sets of m items taken.

Topics to be covered: Produce all combinations and permutations of sets. Calculate the number of combinations and permutations of sets of m items taken.
19 Permutation and Combination Case Study 19.1 Counting Principle

19 Permutation and Combination Case Study 19.1 Counting Principle
Counting Principles. What you will learn: Solve simple counting problems Use the Fundamental Counting Principle to solve counting problems Use permutations.

Counting Principles. What you will learn: Solve simple counting problems Use the Fundamental Counting Principle to solve counting problems Use permutations.
3.1Set Notation 3.1.1 Venn Diagrams Venn Diagram is used to illustrate the idea of sets and subsets. Example 1 X  U(b) A  B X U B A U.

3.1Set Notation Venn Diagrams Venn Diagram is used to illustrate the idea of sets and subsets. Example 1 X  U(b) A  B X U B A U.

Similar presentations

Ads by Google