You got it! kzbin.info/www/bejne/i33WgZuNotabr8Usi=v-8aw9bjPSCqA2Fc

@@bprpmathbasicsYou don't know how much this is helping me. Thank you so much 💟 😭

This is class 10 maths​@@TaimTeravel

To proof root of cubic formula is so easy guys.

Even better: a line is just a degenerate quadratic:D

Taking the limit of the quadratic formula as a approaches 0 gives x = -c/b or -infinity, one of which is indeed the solution for bx +c = 0.

@@anglaismoyen does that mean a quadratic is a degenerate cubic

@@yoylecake313 Why not?

@@yoylecake313 a cube in 2 dimension is a square

Other teachers can't be like him because they don't have black and red markers. 🤣

Not all teachers have the merit to teach math, not only does it stipulate a formidable prowess, but also a level of self-composure and today we have a dearth of that type of teachers. Should only be thankful to have such people.

Those students are lucky

Most teachers are incompetent and overpaid (unions)

cuz hes him

the quadratic formula isn't even that hard to memorize. my teacher always labelled the √b²-4ac as ∆ and then used ∆ instead, made it way easier.

same haha

Same

kzbin.info/www/bejne/o4esZXuJrL-Hm7M

Very good

On my chanel you can find a playlist with the derivation of formulas for all polynomial equations from order 2 up to order 4. I don't derive the full formula for the 4th-order equation, but show how can it be derived in principle. Anyone who watches my video for the 4-th order equation will be able to derive the formula by himslef given that he will be willing to put in the required patience and effort. I show 2 methods for the 4-th order equation.

Ok, but why would you start off by multiplying everything by 4a and then adding b²?

@@brandonsteele2826 So I could factor the left side.

@@maxhagenauer24 ok that makes sense

every equation have the same number of solution as their degree. I would rather say they have "no real solution" as there won't be confusion when we go further.

Idk if you already saw it but he did a video on that recently Edit: it was called solving an unfactorable quadratic equation from 7 days ago

I agree. The idea is to derive the formula and for those that care, showing the detail would be good. And it's all pretty trivial. You have x^2 + (b/a)x and you want to make that look like (x+K)^2 = x^2 + 2Kx +K^2. So matching the x term you must have 2K = (b/a) which quickly yields the magic thing that needs to be aded

Thank you!

@@bprpmathbasics how did you upload the video and then theres comments over 4 months olkd

​@@highfall8145it used to be unlisted

Shridharacharya multiplied the LHS by 4 . We get square of 2x . Completion of square looks easier then .

@@drashokkumar9209 yeah that's true though

Certainly this formula was the creation of SREEDHAR ACHARYA

Literally the same thing . And an even better approach is to multiply both sides by 4a . Not boasting , just sayin'

Here’s an example kzbin.info/www/bejne/oHSsl6KBlq11jpYsi=SBBLgabSe0J8znHM

That’s wonderful! Cheers!

I think you meant to write 5 instead of 25 in some of the lines

@@ZacharyBlue yes, you are correct, I fixed it.

We all know where it came from. It came from YOU bprpmathbasics!

Did you remember the partial derrivative for the quadratic formula on blackpenredpen’s channel!!! That was awesome

@@leonardobarrera2816 thanks!

how was this comment 1 month ago?? was it unlisted?

@@bprpmathbasics you are well come

There is a logical flaw in your reasoning, because if you start from the expressions for x₁ and x₂ in terms of a, b, c and show that a(x − x₁)(x − x₂) = 0 implies ax² + bx + c = 0 this does not imply that the converse is true, unless you also show that all steps are reversible (which they are). But this still would be insatisfactory, because then you only have demonstrated that the formula is true, not how it can be found if you don't already know it. But the idea to derive the quadratic formula from (properties of) the roots x₁ and x₂ is perfectly feasible and instructive. According to the factor theorem a polynomial P(x) has a factor (x − x₁), that is, P(x) = (x − x₁)Q(x) for some polynomial Q(x), _if and only if_ x = x₁ is a root of P(x), that is, P(x₁) = 0. With a repeated application of this theorem we can show that if a quadratic equation ax² + bx + c = 0 (a, b, c real, a ≠ 0) has the roots x₁ and x₂, then we must have ax² + bx + c = a(x − x₁)(x − x₂) Expanding the right hand side of this identity we have ax² + bx + c = ax² − a(x₁ + x₂)x + ax₁x₂ Two polynomials are identical if and only if their corresponding coefficients are identical (this is also a theorem) so we have b = − a(x₁ + x₂) and c = ax₁x₂ and since a ≠ 0 this implies x₁ + x₂ = −b/a x₁x₂ = c/a These are of course Vieta's formulas for the roots of the quadratic equation ax² + bx + c = 0. Now, the question is if we can derive expressions for x₁ and x₂ in terms of a, b, c from these two relations between the roots and the coefficients of the quadratic equation, and the answer is yes. The idea is to first find an expression for the _difference_ x₁ − x₂ in terms of a, b, c, because if we have expressions for both x₁ + x₂ and x₁ − x₂ then x₁ and x₂ will be easy to find by adding and subtracting, because we have (x₁ + x₂) + (x₁ − x₂) = 2x₁ and (x₁ + x₂) − (x₁ − x₂) = 2x₂ so one root will be half the sum of x₁ + x₂ and x₁ − x₂ and the other root will be half the difference between x₁ + x₂ and x₁ − x₂. To get an expression for x₁ − x₂ in terms of a, b, c we can use the _identity_ (p − q)² = (p + q)² − 4pq with p = x₁ and q = x₂ to find (x₁ − x₂)² = (x₁ + x₂)² − 4x₁x₂ = (−b/a)² − 4c/a = b²/a² − 4ac/a² = (b² − 4ac)/a² This is interesting, because a² is positive since a ≠ 0 and if x₁ and x₂ and therefore also x₁ − x₂ must be real, then its square (x₁ − x₂)² cannot be negative so b² − 4ac cannot be negative if the equation ax² + bx + c = 0 (a, b, c real, a ≠ 0) is to have real roots. So we have already found what is known as the _discriminant_ b² − 4ac of the quadratic before we have even found a formula for its roots. Now, supposing that b² − 4ac is nonnegative, it follows that we can either have x₁ − x₂ = √(b² − 4ac)/a or x₁ − x₂ = −√(b² − 4ac)/a But we only need a single value for x₁ − x₂, because inverting the sign of x₁ − x₂ simply amounts to swapping the values of x₁ and x₂. So, let's take the first expression for x₁ − x₂, then we have 2x₁ = (x₁ + x₂) + (x₁ − x₂) = −b/a + √(b² − 4ac)/a = (−b + √(b² − 4ac))/a 2x₂ = (x₁ + x₂) − (x₁ − x₂) = −b/a + √(b² − 4ac)/a = (−b − √(b² − 4ac))/a and so we find that x₁ = (−b + √(b² − 4ac))/2a x₂ = (−b − √(b² − 4ac))/2a and we have derived the quadratic formula for the solutions of ax² + bx + c = 0 from the known sum and product of its roots.

@@NadiehFan Yes I am aware of what you wrote and that math teachers don't like it when a students use a regressive proof. In such a case, however, I find it pointless to insist on that, since all a student would have to do is rewrite the same steps in the reverse order and bam - the assertion follows from the presumption (I apologize if I don't use the correct terms, I did not study math in the English language). Also, your approach requires the use of the factor theorem, so either one would have to prove it, or its use would have to be explicitly allowed. The point of my original comment was, that is the easiest way an actual student could prove the formula - 0 brainpower needed, 0 creativity needed, it is a very naive approach that requires only the knowledge of the actual quadratic formula beforehand (you could call it a proof for dummies). Easy in terms of actual thinking, ridiculously hard in terms of calculations. That's also why I said I would never recommend someone to use it, I just found it to be interesting in a way. I am no mathematician, however.

@@notar2123 Of course proving Vieta's formulas without using the quadratic formula requires the use of the factor theorem, but there are elementary proofs for that which are accessible to high school students. In fact in my country this was taught in high school in my time, but that was a long time ago. I wouldn't recommend any high school math teacher to prove or derive the quadratic formula by starting from Vieta's formulas, but in my opinion that would still be preferable to working back from the quadratic formula to a quadratic polynomial. But all this is really a moot issue, because there is a far easier method to derive the quadratic formula which is known as Sridhara's method and which is perfectly suitable for high school usage: ax² + bx + c = 0 ax² + bx = −c 4a²x² + 4abx = −4ac 4a²x² + 4abx + b² = b² − 4ac (2ax + b)² = b² − 4ac 2ax + b = √(b² − 4ac) ⋁ 2ax + b = −√(b² − 4ac) 2ax = −b + √(b² − 4ac) ⋁ 2ax = −b − √(b² − 4ac) x = (−b + √(b² − 4ac))/2a ⋁ x = (−b − √(b² − 4ac))/2a This is accesible to high school students who have had some exposure to solving quadratics by completing the square (which is also used for finding the coordinates of the vertex of a parabola which is the graph of a quadratic function) and indeed all steps are reversible. The advantage of Sridhara's approach over the conventional derivation which starts by converting the quadratic into a monic quadratic equation (by dividing both sides by a) is that this derivation avoids the use of fractions until the very last step by first multiplying both sides by 4a.

See the Wikipedia page for "Completing the square", there's a nice geometric version as well. Back in the day it was much more common to write math with geometry.

Check Mathologer. It's a very complex equation, which he specializes in, often with visuals. Might need to scroll for a while, so do a search, instead.

Mathologer does an excellent job showing where the cubic formula comes from, and how to use it: kzbin.info/www/bejne/hF6uiYaqqtWqqcU

oops i have one more other question mb. in timeline 8:13, you mentioned how we should just leave the square root of b^2-4ac. why? thank you so much and I'm so sorry TT

I was self-taught, and I memorized the formula before I could complete the square!

Sir this channel is called "bprp math basics"