If x, y, and z are natural numbers, how many

Francisca Rodden

Francisca Rodden

Answered question

2022-01-20

If x, y, and z are natural numbers, how many solutions are there to x+y+z=25?

Answer & Explanation

psor32

psor32

Beginner2022-01-20Added 33 answers

Step 1
Here is a simpler explanation: Lets look at the equation
x+y=k
where
x0 & y0
the solution set is of form
{{k, 0}, {k1, 1}, {0, k+1}}
and there are (k+1) items in the set.
x+y+z=k
can be broken down into:
x+(y+z)=k
If we choose x=0, solutions of (y+z)=k are k+1.
If we choose x=1, solutions of (y+z)=k1 are k. If we choose x=2, solutions of (y+z)=k2 are k1. If we choose x=k, solutions of (y+z)=0 are 1.
This is a simple natural number sum:
1+2+3++(k+1)=((k+1)×k+22)
My math is weak so I dont know what are the proper names to call something

Jim Hunt

Jim Hunt

Beginner2022-01-21Added 45 answers

Step 1
Suppose that natural number doesnt

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