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1 Permutations and Combinations. 2 In this section, techniques will be introduced for counting the unordered selections of distinct objects and the ordered.

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Presentation on theme: "1 Permutations and Combinations. 2 In this section, techniques will be introduced for counting the unordered selections of distinct objects and the ordered."— Presentation transcript:

1 1 Permutations and Combinations

2 2 In this section, techniques will be introduced for counting the unordered selections of distinct objects and the ordered arrangements of objects of a finite set.

3 3 6.2.1 Arrangements The number of ways of arranging n unlike objects in a line is n !. Note: n ! = n (n-1) (n-2) ···3 x 2 x 1 This is read as n factorial

4 4 Example It is known that the password on a computer system contain the three letters A, B and C followed by the six digits 1, 2, 3, 4, 5, 6. Find the number of possible passwords.

5 5 Solution There are 3! ways of arranging the letters A, B and C, and 6! ways of arranging the digits 1, 2, 3, 4, 5, 6. Therefore the total number of possible passwords is 3! x 6! = 4320. So 4320 different passwords can be formed.

6 6 Arrangements of Like Objects The number of ways of arranging in a line, n objects, of which p are alike, is The number of ways of arranging in a line n objects of which p of one type are alike, q of a second type are alike, r of a third type are alike, and so on, is

7 7 Example Find the number of ways that the letters of the word STATISTICS can be arranged. Solution The word STATISTICS contains 10 letters, in which S occurs 3 times, T occurs 3 times and occurs twice. Therefore the number of ways is

8 8 That is, there are 50400 ways of arranging the letter in the word STATISTICS.

9 9 6.2.2 Permutations A permutation of a set of distinct objects is an ordered arrangement of these objects. The number of r-permutations of a set with n distinct elements, is calculated using:

10 10 Note: 0! is defined to 1, so

11 11 Example worked 2 different ways Find the number of ways of placing 3 of the letters A, B, C, D, E in 3 empty spaces. Method 1: Remember making Arrangements: 5 X 4 X 3 = 60 Choices for first letter Choices for second letter Choices for third letter

12 12 METHOD 2: The number of ways 3 letters taken from 5 letters can be written as 5 P 3

13 13 Example How many different ways are there to select one chairman and one vice chairman from a class of 20 students. Solution 20 P 2 = 20 x 19 = 380

14 14 6.2.3 Combinations An r-combination of elements of a set is an unordered selection of r elements from the set. Thus, an r-combination is simply a subset of the set with r elements.

15 15 The number of r-combinations of a set with n elements, where n is a positive integer and r is an integer with 0 <= r <= n, i.e. the number of combinations of r objects from n unlike objects is

16 16 Example How many different ways are there to select two class representatives from a class of 20 students? The number of such combinations is Solution

17 17 Example A committee of 5 members is chosen at random from 6 faculty members of the mathematics department and 8 faculty members of the computer science department. In how many ways can the committee be chosen if there are no restrictions; Solution The number of ways of choosing the committee is 14 C 5 = 2002.

18 18 What if there must be more faculty members of the computer science department than the faculty members of the mathematics department? 3 members from Comp Sci and 2 members from math or 4 members from Comp Sci and 1 member from math or All 5 members from Comp Sci. How many different committees does that allow?

19 19 3 members from Comp Sci and 2 members from math 8 C 3 x 6 C 2 = 56 x 15 = 840 How many different committees does that allow? 4 members from Comp Sci and 1 member from math. All 5 members from Comp Sci. 8 C 4 x 6 C 1 = 70 x 6 = 420. 8 C 5 = 56 Total number of committees is 1316.

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