Permutations with Identical Objects | Worksheet 6/10

Question 1

You have 11 books: 4 copies of book type A, 2 copies of book type B, 2 copies of book type C, 3 copies of book type D. How many distinct ways can these books be lined on a shelf?

Step-by-Step Solution:

Concept: Permutations with identical objects. When objects of the same type are indistinguishable, we divide by the factorial of each type's count.

Formula:
$$\frac{n!}{n_1! \cdot n_2! \cdot ... \cdot n_k!}$$
where $n$ is total objects and $n_i$ is the count of type $i$.

Given Data:
- Total objects: 11
- Distribution: Type 1: 4, Type 2: 2, Type 3: 2, Type 4: 3

Step 1 - Total arrangements if all were distinct:
11! = 39916800

Step 2 - Account for identical objects:
11! = 39916800 / 4! = 24 / 2! = 2 / 2! = 2 / 3! = 6

Final Calculation:
= 69300

Key Principle: Each group of identical objects overcounts by a factor of (count)!. Division corrects this.

Verification: The result is an integer and less than 11! = 39916800.

Question 2

A word has 11 letters: 4 as, 2 bs, 2 cs, 3 ds. How many distinct ways can these letters be arranged?

Step-by-Step Solution:

Concept: Permutations with identical objects. When objects of the same type are indistinguishable, we divide by the factorial of each type's count.

Formula:
$$\frac{n!}{n_1! \cdot n_2! \cdot ... \cdot n_k!}$$
where $n$ is total objects and $n_i$ is the count of type $i$.

Given Data:
- Total objects: 11
- Distribution: Type 1: 4, Type 2: 2, Type 3: 2, Type 4: 3

Step 1 - Total arrangements if all were distinct:
11! = 39916800

Step 2 - Account for identical objects:
11! = 39916800 / 4! = 24 / 2! = 2 / 2! = 2 / 3! = 6

Final Calculation:
= 69300

Key Principle: Each group of identical objects overcounts by a factor of (count)!. Division corrects this.

Verification: The result is an integer and less than 11! = 39916800.

Question 3

A word has 17 letters: 4 as, 4 bs, 4 cs, 3 ds, 2 es. How many distinct ways can these letters be arranged?

Step-by-Step Solution:

Concept: Permutations with identical objects. When objects of the same type are indistinguishable, we divide by the factorial of each type's count.

Formula:
$$\frac{n!}{n_1! \cdot n_2! \cdot ... \cdot n_k!}$$
where $n$ is total objects and $n_i$ is the count of type $i$.

Given Data:
- Total objects: 17
- Distribution: Type 1: 4, Type 2: 4, Type 3: 4, Type 4: 3, Type 5: 2

Step 1 - Total arrangements if all were distinct:
17! = 355687428096000

Step 2 - Account for identical objects:
17! = 355687428096000 / 4! = 24 / 4! = 24 / 4! = 24 / 3! = 6 / 2! = 2

Final Calculation:
= 2144142000

Key Principle: Each group of identical objects overcounts by a factor of (count)!. Division corrects this.

Verification: The result is an integer and less than 17! = 355687428096000.

Question 4

Consider 15 marbles: 2 of color 1, 3 of color 2, 3 of color 3, 4 of color 4, 3 of color 5. How many distinct ways can these marbles be arranged in a row?

Step-by-Step Solution:

Concept: Permutations with identical objects. When objects of the same type are indistinguishable, we divide by the factorial of each type's count.

Formula:
$$\frac{n!}{n_1! \cdot n_2! \cdot ... \cdot n_k!}$$
where $n$ is total objects and $n_i$ is the count of type $i$.

Given Data:
- Total objects: 15
- Distribution: Type 1: 2, Type 2: 3, Type 3: 3, Type 4: 4, Type 5: 3

Step 1 - Total arrangements if all were distinct:
15! = 1307674368000

Step 2 - Account for identical objects:
15! = 1307674368000 / 2! = 2 / 3! = 6 / 3! = 6 / 4! = 24 / 3! = 6

Final Calculation:
= 126126000

Key Principle: Each group of identical objects overcounts by a factor of (count)!. Division corrects this.

Verification: The result is an integer and less than 15! = 1307674368000.

Question 5

You have 12 books: 3 copies of book type A, 3 copies of book type B, 4 copies of book type C, 2 copies of book type D. How many distinct ways can these books be lined on a shelf?

Step-by-Step Solution:

Concept: Permutations with identical objects. When objects of the same type are indistinguishable, we divide by the factorial of each type's count.

Formula:
$$\frac{n!}{n_1! \cdot n_2! \cdot ... \cdot n_k!}$$
where $n$ is total objects and $n_i$ is the count of type $i$.

Given Data:
- Total objects: 12
- Distribution: Type 1: 3, Type 2: 3, Type 3: 4, Type 4: 2

Step 1 - Total arrangements if all were distinct:
12! = 479001600

Step 2 - Account for identical objects:
12! = 479001600 / 3! = 6 / 3! = 6 / 4! = 24 / 2! = 2

Final Calculation:
= 277200

Key Principle: Each group of identical objects overcounts by a factor of (count)!. Division corrects this.

Verification: The result is an integer and less than 12! = 479001600.

Question 6

You have 11 books: 4 copies of book type A, 4 copies of book type B, 3 copies of book type C. How many distinct ways can these books be lined on a shelf?

Step-by-Step Solution:

Concept: Permutations with identical objects. When objects of the same type are indistinguishable, we divide by the factorial of each type's count.

Formula:
$$\frac{n!}{n_1! \cdot n_2! \cdot ... \cdot n_k!}$$
where $n$ is total objects and $n_i$ is the count of type $i$.

Given Data:
- Total objects: 11
- Distribution: Type 1: 4, Type 2: 4, Type 3: 3

Step 1 - Total arrangements if all were distinct:
11! = 39916800

Step 2 - Account for identical objects:
11! = 39916800 / 4! = 24 / 4! = 24 / 3! = 6

Final Calculation:
= 11550

Key Principle: Each group of identical objects overcounts by a factor of (count)!. Division corrects this.

Verification: The result is an integer and less than 11! = 39916800.

Question 7

You have 14 books: 3 copies of book type A, 4 copies of book type B, 3 copies of book type C, 2 copies of book type D, 2 copies of book type E. How many distinct ways can these books be lined on a shelf?

Step-by-Step Solution:

Concept: Permutations with identical objects. When objects of the same type are indistinguishable, we divide by the factorial of each type's count.

Formula:
$$\frac{n!}{n_1! \cdot n_2! \cdot ... \cdot n_k!}$$
where $n$ is total objects and $n_i$ is the count of type $i$.

Given Data:
- Total objects: 14
- Distribution: Type 1: 3, Type 2: 4, Type 3: 3, Type 4: 2, Type 5: 2

Step 1 - Total arrangements if all were distinct:
14! = 87178291200

Step 2 - Account for identical objects:
14! = 87178291200 / 3! = 6 / 4! = 24 / 3! = 6 / 2! = 2 / 2! = 2

Final Calculation:
= 25225200

Key Principle: Each group of identical objects overcounts by a factor of (count)!. Division corrects this.

Verification: The result is an integer and less than 14! = 87178291200.

Question 8

A word has 12 letters: 4 as, 4 bs, 2 cs, 2 ds. How many distinct ways can these letters be arranged?

Step-by-Step Solution:

Concept: Permutations with identical objects. When objects of the same type are indistinguishable, we divide by the factorial of each type's count.

Formula:
$$\frac{n!}{n_1! \cdot n_2! \cdot ... \cdot n_k!}$$
where $n$ is total objects and $n_i$ is the count of type $i$.

Given Data:
- Total objects: 12
- Distribution: Type 1: 4, Type 2: 4, Type 3: 2, Type 4: 2

Step 1 - Total arrangements if all were distinct:
12! = 479001600

Step 2 - Account for identical objects:
12! = 479001600 / 4! = 24 / 4! = 24 / 2! = 2 / 2! = 2

Final Calculation:
= 207900

Key Principle: Each group of identical objects overcounts by a factor of (count)!. Division corrects this.

Verification: The result is an integer and less than 12! = 479001600.

Question 9

Consider 10 marbles: 3 of color 1, 4 of color 2, 3 of color 3. How many distinct ways can these marbles be arranged in a row?

Step-by-Step Solution:

Concept: Permutations with identical objects. When objects of the same type are indistinguishable, we divide by the factorial of each type's count.

Formula:
$$\frac{n!}{n_1! \cdot n_2! \cdot ... \cdot n_k!}$$
where $n$ is total objects and $n_i$ is the count of type $i$.

Given Data:
- Total objects: 10
- Distribution: Type 1: 3, Type 2: 4, Type 3: 3

Step 1 - Total arrangements if all were distinct:
10! = 3628800

Step 2 - Account for identical objects:
10! = 3628800 / 3! = 6 / 4! = 24 / 3! = 6

Final Calculation:
= 4200

Key Principle: Each group of identical objects overcounts by a factor of (count)!. Division corrects this.

Verification: The result is an integer and less than 10! = 3628800.

Question 10

You have 15 books: 4 copies of book type A, 4 copies of book type B, 2 copies of book type C, 3 copies of book type D, 2 copies of book type E. How many distinct ways can these books be lined on a shelf?

Step-by-Step Solution:

Concept: Permutations with identical objects. When objects of the same type are indistinguishable, we divide by the factorial of each type's count.

Formula:
$$\frac{n!}{n_1! \cdot n_2! \cdot ... \cdot n_k!}$$
where $n$ is total objects and $n_i$ is the count of type $i$.

Given Data:
- Total objects: 15
- Distribution: Type 1: 4, Type 2: 4, Type 3: 2, Type 4: 3, Type 5: 2

Step 1 - Total arrangements if all were distinct:
15! = 1307674368000

Step 2 - Account for identical objects:
15! = 1307674368000 / 4! = 24 / 4! = 24 / 2! = 2 / 3! = 6 / 2! = 2

Final Calculation:
= 94594500

Key Principle: Each group of identical objects overcounts by a factor of (count)!. Division corrects this.

Verification: The result is an integer and less than 15! = 1307674368000.

Question 11

You have 16 books: 3 copies of book type A, 2 copies of book type B, 4 copies of book type C, 4 copies of book type D, 3 copies of book type E. How many distinct ways can these books be lined on a shelf?

Step-by-Step Solution:

Concept: Permutations with identical objects. When objects of the same type are indistinguishable, we divide by the factorial of each type's count.

Formula:
$$\frac{n!}{n_1! \cdot n_2! \cdot ... \cdot n_k!}$$
where $n$ is total objects and $n_i$ is the count of type $i$.

Given Data:
- Total objects: 16
- Distribution: Type 1: 3, Type 2: 2, Type 3: 4, Type 4: 4, Type 5: 3

Step 1 - Total arrangements if all were distinct:
16! = 20922789888000

Step 2 - Account for identical objects:
16! = 20922789888000 / 3! = 6 / 2! = 2 / 4! = 24 / 4! = 24 / 3! = 6

Final Calculation:
= 504504000

Key Principle: Each group of identical objects overcounts by a factor of (count)!. Division corrects this.

Verification: The result is an integer and less than 16! = 20922789888000.

Question 12

Consider 13 marbles: 2 of color 1, 4 of color 2, 2 of color 3, 3 of color 4, 2 of color 5. How many distinct ways can these marbles be arranged in a row?

Step-by-Step Solution:

Concept: Permutations with identical objects. When objects of the same type are indistinguishable, we divide by the factorial of each type's count.

Formula:
$$\frac{n!}{n_1! \cdot n_2! \cdot ... \cdot n_k!}$$
where $n$ is total objects and $n_i$ is the count of type $i$.

Given Data:
- Total objects: 13
- Distribution: Type 1: 2, Type 2: 4, Type 3: 2, Type 4: 3, Type 5: 2

Step 1 - Total arrangements if all were distinct:
13! = 6227020800

Step 2 - Account for identical objects:
13! = 6227020800 / 2! = 2 / 4! = 24 / 2! = 2 / 3! = 6 / 2! = 2

Final Calculation:
= 5405400

Key Principle: Each group of identical objects overcounts by a factor of (count)!. Division corrects this.

Verification: The result is an integer and less than 13! = 6227020800.

Question 13

A word has 13 letters: 4 as, 4 bs, 3 cs, 2 ds. How many distinct ways can these letters be arranged?

Step-by-Step Solution:

Concept: Permutations with identical objects. When objects of the same type are indistinguishable, we divide by the factorial of each type's count.

Formula:
$$\frac{n!}{n_1! \cdot n_2! \cdot ... \cdot n_k!}$$
where $n$ is total objects and $n_i$ is the count of type $i$.

Given Data:
- Total objects: 13
- Distribution: Type 1: 4, Type 2: 4, Type 3: 3, Type 4: 2

Step 1 - Total arrangements if all were distinct:
13! = 6227020800

Step 2 - Account for identical objects:
13! = 6227020800 / 4! = 24 / 4! = 24 / 3! = 6 / 2! = 2

Final Calculation:
= 900900

Key Principle: Each group of identical objects overcounts by a factor of (count)!. Division corrects this.

Verification: The result is an integer and less than 13! = 6227020800.

Question 14

Consider 6 marbles: 3 of color 1, 2 of color 2, 1 of color 3. How many distinct ways can these marbles be arranged in a row?

Step-by-Step Solution:

Concept: Permutations with identical objects. When objects of the same type are indistinguishable, we divide by the factorial of each type's count.

Formula:
$$\frac{n!}{n_1! \cdot n_2! \cdot ... \cdot n_k!}$$
where $n$ is total objects and $n_i$ is the count of type $i$.

Given Data:
- Total objects: 6
- Distribution: Type 1: 3, Type 2: 2, Type 3: 1

Step 1 - Total arrangements if all were distinct:
6! = 720

Step 2 - Account for identical objects:
6! = 720 / 3! = 6 / 2! = 2

Final Calculation:
= 60

Key Principle: Each group of identical objects overcounts by a factor of (count)!. Division corrects this.

Verification: The result is an integer and less than 6! = 720.

Question 15

A word has 9 letters: 3 as, 3 bs, 3 cs. How many distinct ways can these letters be arranged?

Step-by-Step Solution:

Concept: Permutations with identical objects. When objects of the same type are indistinguishable, we divide by the factorial of each type's count.

Formula:
$$\frac{n!}{n_1! \cdot n_2! \cdot ... \cdot n_k!}$$
where $n$ is total objects and $n_i$ is the count of type $i$.

Given Data:
- Total objects: 9
- Distribution: Type 1: 3, Type 2: 3, Type 3: 3

Step 1 - Total arrangements if all were distinct:
9! = 362880

Step 2 - Account for identical objects:
9! = 362880 / 3! = 6 / 3! = 6 / 3! = 6

Final Calculation:
= 1680

Key Principle: Each group of identical objects overcounts by a factor of (count)!. Division corrects this.

Verification: The result is an integer and less than 9! = 362880.

Question 16

You have 12 books: 3 copies of book type A, 3 copies of book type B, 4 copies of book type C, 2 copies of book type D. How many distinct ways can these books be lined on a shelf?

Step-by-Step Solution:

Concept: Permutations with identical objects. When objects of the same type are indistinguishable, we divide by the factorial of each type's count.

Formula:
$$\frac{n!}{n_1! \cdot n_2! \cdot ... \cdot n_k!}$$
where $n$ is total objects and $n_i$ is the count of type $i$.

Given Data:
- Total objects: 12
- Distribution: Type 1: 3, Type 2: 3, Type 3: 4, Type 4: 2

Step 1 - Total arrangements if all were distinct:
12! = 479001600

Step 2 - Account for identical objects:
12! = 479001600 / 3! = 6 / 3! = 6 / 4! = 24 / 2! = 2

Final Calculation:
= 277200

Key Principle: Each group of identical objects overcounts by a factor of (count)!. Division corrects this.

Verification: The result is an integer and less than 12! = 479001600.

Question 17

Consider 12 marbles: 2 of color 1, 2 of color 2, 2 of color 3, 3 of color 4, 3 of color 5. How many distinct ways can these marbles be arranged in a row?

Step-by-Step Solution:

Concept: Permutations with identical objects. When objects of the same type are indistinguishable, we divide by the factorial of each type's count.

Formula:
$$\frac{n!}{n_1! \cdot n_2! \cdot ... \cdot n_k!}$$
where $n$ is total objects and $n_i$ is the count of type $i$.

Given Data:
- Total objects: 12
- Distribution: Type 1: 2, Type 2: 2, Type 3: 2, Type 4: 3, Type 5: 3

Step 1 - Total arrangements if all were distinct:
12! = 479001600

Step 2 - Account for identical objects:
12! = 479001600 / 2! = 2 / 2! = 2 / 2! = 2 / 3! = 6 / 3! = 6

Final Calculation:
= 1663200

Key Principle: Each group of identical objects overcounts by a factor of (count)!. Division corrects this.

Verification: The result is an integer and less than 12! = 479001600.

Question 18

Consider 12 marbles: 2 of color 1, 4 of color 2, 4 of color 3, 2 of color 4. How many distinct ways can these marbles be arranged in a row?

Step-by-Step Solution:

Concept: Permutations with identical objects. When objects of the same type are indistinguishable, we divide by the factorial of each type's count.

Formula:
$$\frac{n!}{n_1! \cdot n_2! \cdot ... \cdot n_k!}$$
where $n$ is total objects and $n_i$ is the count of type $i$.

Given Data:
- Total objects: 12
- Distribution: Type 1: 2, Type 2: 4, Type 3: 4, Type 4: 2

Step 1 - Total arrangements if all were distinct:
12! = 479001600

Step 2 - Account for identical objects:
12! = 479001600 / 2! = 2 / 4! = 24 / 4! = 24 / 2! = 2

Final Calculation:
= 207900

Key Principle: Each group of identical objects overcounts by a factor of (count)!. Division corrects this.

Verification: The result is an integer and less than 12! = 479001600.

Question 19

Consider 10 marbles: 2 of color 1, 4 of color 2, 3 of color 3, 1 of color 4. How many distinct ways can these marbles be arranged in a row?

Step-by-Step Solution:

Concept: Permutations with identical objects. When objects of the same type are indistinguishable, we divide by the factorial of each type's count.

Formula:
$$\frac{n!}{n_1! \cdot n_2! \cdot ... \cdot n_k!}$$
where $n$ is total objects and $n_i$ is the count of type $i$.

Given Data:
- Total objects: 10
- Distribution: Type 1: 2, Type 2: 4, Type 3: 3, Type 4: 1

Step 1 - Total arrangements if all were distinct:
10! = 3628800

Step 2 - Account for identical objects:
10! = 3628800 / 2! = 2 / 4! = 24 / 3! = 6

Final Calculation:
= 12600

Key Principle: Each group of identical objects overcounts by a factor of (count)!. Division corrects this.

Verification: The result is an integer and less than 10! = 3628800.

Question 20

Consider 7 marbles: 3 of color 1, 3 of color 2, 1 of color 3. How many distinct ways can these marbles be arranged in a row?

Step-by-Step Solution:

Concept: Permutations with identical objects. When objects of the same type are indistinguishable, we divide by the factorial of each type's count.

Formula:
$$\frac{n!}{n_1! \cdot n_2! \cdot ... \cdot n_k!}$$
where $n$ is total objects and $n_i$ is the count of type $i$.

Given Data:
- Total objects: 7
- Distribution: Type 1: 3, Type 2: 3, Type 3: 1

Step 1 - Total arrangements if all were distinct:
7! = 5040

Step 2 - Account for identical objects:
7! = 5040 / 3! = 6 / 3! = 6

Final Calculation:
= 140

Key Principle: Each group of identical objects overcounts by a factor of (count)!. Division corrects this.

Verification: The result is an integer and less than 7! = 5040.

Permutations with Identical Objects: Worksheet 6 - Intermediate-Advanced Practice Permutations with Identical Objects INTERMEDIATE ADVANCED

What you'll learn in this worksheet: