Probability. Robert P. Dobrow. Читать онлайн. Newlib. NEWLIB.NET

Автор: Robert P. Dobrow
Издательство: John Wiley & Sons Limited
Серия:
Жанр произведения: Математика
Год издания: 0
isbn: 9781119692416
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to permute all the books on the shelves. There are ways to put the math books on the bottom shelf and ways to put the remaining novels on the other two shelves. Thus, by the multiplication principle, the desired probability is

       Example 1.15 A bag contains six Scrabble tiles with the letters A-D-M-N-O-R. You reach into the bag and take out tiles one at a time. What is the probability that you will spell the word R-A-N-D-O-M?How many possible words can be formed? All the letters are distinct and a “word” is a permutation of the set of six letters. There are possible words. Only one of them spells R-A-N-D-O-M, so the desired probability is

       Example 1.16 Scrabble continued. Change the previous example. After you pick a tile from the bag, write down that letter and then return the tile to the bag. So every time you reach into the bag, it contains the six original letters. What is the probability that you spell R-A-N-D-O-M now when drawing six tiles?With the change, there are possible words, and only one still spells R-A-N-D-O-M, so the desired probability is

      Sampling with and without replacement

       Example 1.17 When national polling organizations conduct nationwide surveys, they often select about 1000 people sampling without replacement. If is the number of people in a target population, then by the multiplication principle there are possible ordered samples. For national polls in the United States, where , the number of people age 18 or over, is about 250 million, that gives about 250,000,000 possible ordered samples, which is a mind-boggling 2.5 with 8000 zeros after it.

      As defined, permutations tell us the number of possible arrangements of n objects where all objects are distinguishable and order matters when sampling without replacement. As in the last example, perhaps we only want to arrange k of the n objects, k less-than-or-equal-to n, sampling without replacement where order matters. What changes when we want to know the number of permutations of k objects out of n?

      The first object can still be any of the n objects, while the second can be any of the remaining n minus 1 objects, etc. However, rather than continuing to the last of the n objects, we stop at the kth object. Considering the pattern, the kth object can be any of the remaining n minus k plus 1 objects at that point. Thus, the number of possible arrangements is n times left-parenthesis n minus 1 right-parenthesis times midline-horizontal-ellipsis times left-parenthesis n minus k plus 1 right-parenthesis which is more easily written as n factorial slash left-parenthesis n minus k right-parenthesis factorial We illustrate this in the following examples.

       Example 1.18 A club with seven members needs to elect three officers (president, vice president, and secretary/treasurer) for the upcoming year. Members can only hold one position. How many sets of officers are possible?Thinking through the problem, the president can be any of the seven members. Once the president is in place, the vice president can be any of the remaining six members, and finally, the secretary/treasurer can be any of the remaining five members. By the multiplication rule, the number of possible sets of officers is . We obtain the same result with and , as .

       Example 1.19 A company decides to create inventory stickers for their product. Each sticker will consist of three digits (0–9) which cannot repeat among themselves, two capital letters which cannot repeat, and another three digits that cannot repeat amongst themselves. For example, valid stickers include 203AZ348 and 091BE289, but 307JM449 is not valid. How many different possible stickers can the company make?We use both permutations and the multiplication rule to solve the problem. For the three digits, there are possible options and we need in order. This occurs twice. For each set of digits, there are thus arrangements possible. For the capital letters, there are options with . Thus, the number of possible arrangements is . Combining this we find the number of possible stickers is . The company can keep inventory on up to almost 337 million objects with this scheme for stickers.

      In the last section, you learned how to count ordered lists and permutations. Here we count unordered sets and subsets. For example, given a set of n distinct objects, how many subsets of size k can we select when sampling without replacement? To proceed, we first show a simple yet powerful correspondence between subsets of a set and binary sequences, or lists. This correspondence will allow us to relate counting results for sets to those for lists, and vice versa.

      A binary sequence is a list, each of whose elements can take one of two values, which we generically take to be zeros and ones. Our questions about subsets of size k drawn from n distinct objects is equivalent to asking: how many binary sequences of length n contain exactly k ones?

      To illustrate, consider a group of n people lined up in a row and numbered 1 to n. Each person holds a card. On one side of the card is a 0; on the other side is a 1. Initially, all the cards are turned to 0. The n cards from left to right form a binary list.

      Select a subset of the n people. Each person in the subset turns over his/her card, from 0 to 1. The cards taken from left to right form a new binary list. For instance, if n equals 6 and the first and third persons are selected, the corresponding list is left-parenthesis 1 comma 0 comma 1 comma 


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