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pretttyune
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There are 8 books in a shelf that consist of 2 paperback Updated on: 04 Jun 2026, 00:59
Originally posted by pretttyune on 12 Nov 2007, 02:39.
Last edited by Bunuel on 04 Jun 2026, 00:59, edited 4 times in total.
Edited the answer choices and added the OA
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There are 8 books on a shelf, of which 2 are paperbacks and 6 are hardbacks. How many possible selections of 4 books from this shelf include at least one paperback?

A. 40
B. 45
C. 50
D. 55
E. 60



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There are 8 books in a shelf that consist of 2 paperback books and 6 hardback books. If 4 books are selected at random without replacement, how many different combinations are there that at least one paperback book is selected?
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Bunuel
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There are 8 books in a shelf that consist of 2 paperback 08 Feb 2012, 03:20
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pretttyune
There are 8 books in a shelf that consist of 2 paperback books and 6 hardback books. If 4 books are selected at random without replacement, how many different combinations are there that at least one paperback book is selected?

A. 40
B. 45
C. 50
D. 55
E. 60
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It's almost always better to solve "at least one" combination/probability questions using the formula {at least one} = {total} - {none}.

The total number of selections of 4 books out of 8: \(C^4_8 = 70\);
The total number of selections of 4 hardback books out of 6 (so none are paperback): \(C^4_6 = 15\);

Therefore, {at least one} = {total} - {none} = 70 - 15 = 55.


Answer: D.
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There are 8 books in a shelf that consist of 2 paperback 28 Sep 2009, 04:30
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There are 8 books in a shelf that consist of 2 paperback books and 6 hardback books. If 4 books are selected at random without replacement, how many different combinations are there that at least one paperback book is selected ?

Soln:
No. of combinations which have atleast one paperback is
= Total no. of combinations - Combinations in which there is no paperback
= 8C4 - 6C4
= 55 ways

Other way of doing this is finding out directly

No. of combinations which have atleast one paperback is
= Total no. of combinations that have 2 paperback + total no. of combinations that have 1 paperback
= 2C2 * 6C2 + 2C1 * 6C3
= 15 + 40
= 55 ways
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sidbidus
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There are 8 books in a shelf that consist of 2 paperback 12 Nov 2007, 03:12
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No of combinations = p(1) + p(2)

= (2C1 * 6C3) + (2C2 * 6C2)

= (2*6*5*4)/(3*2*1) + (6*5)/2

= 40 + 15

= 55
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There are 8 books in a shelf that consist of 2 paperback 12 Nov 2007, 20:27
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pmenon
Is the answer above right ?

I was taking the approach of first finding out the number of ways of selecting 4 books out of 8, then finding the number of possibilities where no paperbacks were chosen, and subtracting the two.

If anyone can help with this approach to put down what the actual terms should be, thatd be very helpful to me.
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i would go about it this way:

total - all hardback
total = 8C4
hardback = 6C4

8C4 - 6C4
70-15 = 55
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There are 8 books in a shelf that consist of 2 paperback 20 May 2012, 04:36
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The selection should at least contain one PAPERBACK book. There are a total of 2 PB and 6 HB books are available.

The combinations that at least one PB book will come out are: PHHH & PPHH

1. PHHH = 2C1 * 6C3 = 2 * (5*4) = 40
2. PPHH = 2C2 * 6C2 = 1 * ((6*5) / 2) = 15

In total 40+15 = 55 Ways
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There are 8 books in a shelf that consist of 2 paperback 25 Jan 2013, 08:20
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Hmm....so when I did this I made an error that might have carried over from using combinatorics from probability. I found the total as 8C4 and to find the amount to subtract from it I had (6C4)(2C0). Why don't we multiply by the books not chosen and what's would it mean if we did?

I'm trying to understand a fundamental flaw I made here
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There are 8 books in a shelf that consist of 2 paperback 25 Jan 2013, 08:33
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manimgoindowndown
Hmm....so when I did this I made an error that might have carried over from using combinatorics from probability. I found the total as 8C4 and to find the amount to subtract from it I had (6C4)(2C0). Why don't we multiply by the books not chosen and what's would it mean if we did?

I'm trying to understand a fundamental flaw I made here
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You'd get the same result because 2C0=2!/(2!*0!)=2/(2*1)=1: there is one way to choose 0 books from 2 books.

Hope it's clear.
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There are 8 books in a shelf that consist of 2 paperback 16 Jul 2017, 11:42
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pretttyune
There are 8 books in a shelf that consist of 2 paperback books and 6 hardback books. If 4 books are selected at random without replacement, how many different combinations are there that at least one paperback book is selected?

A. 40
B. 45
C. 50
D. 55
E. 60
Show more

There are two scenarios that fit the question: either one paperback or two is selected.

If one is selected, then the total number of combinations is 2C1*6C3 + 2C2*6C2

2C1*6C3:
2*6!/(3!*3!) = 2*6*5*4/3*2 = 40

2C2*6C2
1*6*5*4*3*2/(2*4*3*2) = 15

40+15 =55
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There are 8 books in a shelf that consist of 2 paperback 08 Jul 2018, 01:09
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Could someone provide a group of similar practice problems? Would really appreciate the help on this. Thanks
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There are 8 books in a shelf that consist of 2 paperback 10 Jul 2018, 02:21
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eishan123
Could someone provide a group of similar practice problems? Would really appreciate the help on this. Thanks
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21. Combinatorics/Counting Methods



22. Probability



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There are 8 books in a shelf that consist of 2 paperback 14 Jul 2018, 19:39
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pretttyune
There are 8 books in a shelf that consist of 2 paperback books and 6 hardback books. If 4 books are selected at random without replacement, how many different combinations are there that at least one paperback book is selected?

A. 40
B. 45
C. 50
D. 55
E. 60
Show more

We can use the equation:

The number of ways in which at least 1 paperback book is selected = The total number of ways to select 4 books – The number of ways in which no paperback books are selected

The number of ways in which no paperback books are selected is equivalent to the number of ways in which all 4 books selected are hardcover. Let’s determine that now. There are 6 hardback books, and 4 must be selected; thus:

6C4 = 6!/(4! x 2!) = (6 x 5)/2! = 30/2 = 15 ways

Now we determine the total number of ways to select the books. There are 8 total books and 4 must be selected, thus:

8C4 = 8!/(4! x 4!) = (8 x 7 x 6 x 5)/4! = 7 x 2 x 5 = 70 ways

Thus, the number of ways to select at least one paperback book = 70 – 15 = 55.

Answer: D
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There are 8 books in a shelf that consist of 2 paperback 13 Apr 2021, 08:53
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Hi Bunuel Bunuel,
Here why cant we do like below -
Total = 8*7*6*5
Only Hardback = 6*5*4*3

Required = Total - Hardback
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There are 8 books in a shelf that consist of 2 paperback 13 Apr 2021, 10:09
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Rakhi08
Hi Bunuel Bunuel,
Here why cant we do like below -
Total = 8*7*6*5
Only Hardback = 6*5*4*3

Required = Total - Hardback
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Say we have A, B, C, D, E, F, G, and H books.

With 8*7*6*5 you'd get duplications in 4-book selections. If we choose A first, then choose B, then choose C and finally choose D, you'd get the same four books as if we choose D first, then choose A, then choose B, and then choose C. Note that the order of the books does not matter. Your method assumes that the order of the books does matter - you're choosing one book as the "first book", another as the "second book" and so on. Thus you get duplications. In order to get rid of them, you should divide 8*7*6*5 by 4!.
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There are 8 books in a shelf that consist of 2 paperback 14 Nov 2021, 07:56
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pretttyune
There are 8 books in a shelf that consist of 2 paperback books and 6 hardback books. If 4 books are selected at random without replacement, how many different combinations are there that at least one paperback book is selected?

A. 40
B. 45
C. 50
D. 55
E. 60
Show more

In general, when it comes to counting questions involving "at least," we can use the following property:
Number of outcomes that satisfy the restriction = (number of outcomes that ignore the restriction) - (number of outcomes that BREAK the restriction)

So we get:
Number of combinations with at least one paperback = (total number of 4-book combinations) - (number of 4-book combinations that DON'T have at least one paperback)

In other words:
Number of combinations with at least one paperback = (total number of 4-book combinations) - (number of 4-book combinations with ZERO paperbacks)

total number of 4-book combinations
There are 8 altogether, and we must choose 4 of them
Since the order in which we select the books does not matter, we can use combinations.
We can select 4 books from 8 books in 8C4 ways (= 70)

number of 4-book combinations with ZERO paperbacks
In order to get ZERO paperbacks, we'll select 4 books from the 6 hardback books only.
We can select 4 books from 6 books in 6C4 ways (= 15)

So, the number of combinations with at least one paperback = (70) - (15) = 55

Answer: D
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There are 8 books in a shelf that consist of 2 paperback 18 Oct 2022, 10:45
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There are 8 books in a shelf that consist of 2 paperback books and 6 hardback books. If 4 books are selected at random without replacement, how many different combinations are there that at least one paperback book is selected?

A. 40
B. 45
C. 50
D. 55
E. 60
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There are 8 books in a shelf that consist of 2 paperback 29 May 2024, 20:06
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­Total minus choosing all hardbacks:

­
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There are 8 books in a shelf that consist of 2 paperback 25 Aug 2025, 18:38
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I'd like to introduce my way of doing this. It combines both the probability approach and the combinatorics approach.

Probability of selecting 4 books that at least 1 of them is paperback = 1 - Prob that none of them are paperback
This is 1 - 6/8 * 5/7 * 4/6 * 3/5 = 11/14

The total possible combinations of choosing 4 out of 8 books is 8C4 = 70

=> No. combinations of selecting 4 books that at least 1 of them is paperback = 70 * 11/14 = 55
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