Question

How do you solve `p^2 + 2p + 1 =0`?

Answer 1

It is

#p^2+2p+1=0=>p^2+p+p+1=0=>p(p+1)+(p+1)=0=> (p+1)(p+1)=0=>(p+1)^2=0#

Hence `(p+1)^2=0=>p+1=0=>p=-1`

Answer 2

There are two ways to solve for `p` in this case 1) factoring and 2) using the quadratic formula. Both yield `p=-1`

Explanation:

There are two ways to solve for `p` in this case 1) factoring and 2) using the quadratic formula.

1) Factoring

We are looking for a way to re-write the left-hand side of this equation as the multiplication of two factors, i.e.

`a(p+b)(p+c)=p^2+2p+1 = 0`

We can see immediately that `a=1`. We are then left with:

`p^2 + (b+c)p +bc = p^2+2p+1 = 0`

The solution of this is letting `b=c=1`, therefore we have:

`(p+1)(p+1) = 0`

Therefore the solution is `p=-1`

2) Quadratic formula

To use this formula we need the quadratic in the form

`0=ap^2+bp+c`

Using this we see that `a=1`, `b=2`, and `c=1`. The formula is then

`p=(-b+-sqrt(b^2-4ac))/(2a)`

`p=(-2-sqrt(4-4))/(2) = -1`

Answer 3

The solution for the equation is:
`color(blue)(p=-1`

Explanation:

`p^2 +2p +1 = 0`

The equation is of the form `color(blue)(ap^2+bp+c=0` where:

`a=1, b=2, c=1`

The Discriminant is given by:

`Delta=b^2-4*a*c`

`= (2)^2-(4* 1 * 1)`

`= 4-4 = 0`

The solutions are found using the formula
`p=(-b+-sqrtDelta)/(2*a)`

`p = ((-2)+-sqrt(0))/(2*1) = (-2+-0)/2`

`p = ( -2 +0 ) /2 = -2/2 = -1`

`p = (-2 -0) /2 = -2/2 = -1`

The solution for the equation is:
`color(blue)(p=-1`