Q: What is the prime factorization of the number 330,188,378?

 A:
  • The prime factors are: 2 x 13 x 31 x 151 x 2,713
    • or also written as { 2, 13, 31, 151, 2,713 }
  • Written in exponential form: 21 x 131 x 311 x 1511 x 2,7131

Why is the prime factorization of 330,188,378 written as 21 x 131 x 311 x 1511 x 2,7131?

What is prime factorization?

Prime factorization or prime factor decomposition is the process of finding which prime numbers can be multiplied together to make the original number.

Finding the prime factors of 330,188,378

To find the prime factors, you start by dividing the number by the first prime number, which is 2. If there is not a remainder, meaning you can divide evenly, then 2 is a factor of the number. Continue dividing by 2 until you cannot divide evenly anymore. Write down how many 2's you were able to divide by evenly. Now try dividing by the next prime factor, which is 3. The goal is to get to a quotient of 1.

If it doesn't make sense yet, let's try it...

Here are the first several prime factors: 2, 3, 5, 7, 11, 13, 17, 19, 23, 29...

Let's start by dividing 330,188,378 by 2

330,188,378 ÷ 2 = 165,094,189 - No remainder! 2 is one of the factors!
165,094,189 ÷ 2 = 82,547,094.5 - There is a remainder. We can't divide by 2 evenly anymore. Let's try the next prime number
165,094,189 ÷ 3 = 55,031,396.3333 - This has a remainder. 3 is not a factor.
165,094,189 ÷ 5 = 33,018,837.8 - This has a remainder. 5 is not a factor.
165,094,189 ÷ 7 = 23,584,884.1429 - This has a remainder. 7 is not a factor.
...
Keep trying increasingly larger numbers until you find one that divides evenly.
...
165,094,189 ÷ 13 = 12,699,553 - No remainder! 13 is one of the factors!
12,699,553 ÷ 13 = 976,888.6923 - There is a remainder. We can't divide by 13 evenly anymore. Let's try the next prime number
12,699,553 ÷ 17 = 747,032.5294 - This has a remainder. 17 is not a factor.
12,699,553 ÷ 19 = 668,397.5263 - This has a remainder. 19 is not a factor.
12,699,553 ÷ 23 = 552,154.4783 - This has a remainder. 23 is not a factor.
...
Keep trying increasingly larger numbers until you find one that divides evenly.
...
12,699,553 ÷ 31 = 409,663 - No remainder! 31 is one of the factors!
409,663 ÷ 31 = 13,214.9355 - There is a remainder. We can't divide by 31 evenly anymore. Let's try the next prime number
409,663 ÷ 37 = 11,071.973 - This has a remainder. 37 is not a factor.
409,663 ÷ 41 = 9,991.7805 - This has a remainder. 41 is not a factor.
409,663 ÷ 43 = 9,527.0465 - This has a remainder. 43 is not a factor.
...
Keep trying increasingly larger numbers until you find one that divides evenly.
...
409,663 ÷ 151 = 2,713 - No remainder! 151 is one of the factors!
2,713 ÷ 151 = 17.9669 - There is a remainder. We can't divide by 151 evenly anymore. Let's try the next prime number
2,713 ÷ 157 = 17.2803 - This has a remainder. 157 is not a factor.
2,713 ÷ 163 = 16.6442 - This has a remainder. 163 is not a factor.
2,713 ÷ 167 = 16.2455 - This has a remainder. 167 is not a factor.
...
Keep trying increasingly larger numbers until you find one that divides evenly.
...
2,713 ÷ 2,713 = 1 - No remainder! 2,713 is one of the factors!

The orange divisor(s) above are the prime factors of the number 330,188,378. If we put all of it together we have the factors 2 x 13 x 31 x 151 x 2,713 = 330,188,378. It can also be written in exponential form as 21 x 131 x 311 x 1511 x 2,7131.

Factor Tree

Another way to do prime factorization is to use a factor tree. Below is a factor tree for the number 330,188,378.

330,188,378
Factor Arrows
2165,094,189
Factor Arrows
1312,699,553
Factor Arrows
31409,663
Factor Arrows
1512,713

More Prime Factorization Examples

330,188,376330,188,377330,188,379330,188,380
23 x 31 x 71 x 1,965,4071330,188,377131 x 110,062,793122 x 51 x 16,509,4191

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