In eighth grade, students are introduced to quadratic equations and how to solve them. At the same time, as experience shows, most students use only one method when solving complete quadratic equations - the root formula quadratic equation. For students who have good mental arithmetic skills, this method is clearly irrational. Students often have to solve quadratic equations even in high school, and there it is simply a pity to spend time calculating the discriminant. In my opinion, when studying quadratic equations, more time and attention should be paid to the application of Vieta’s theorem (according to the A.G. Mordkovich Algebra-8 program, only two hours are planned for studying the topic “Vieta’s Theorem. Decomposition of a quadratic trinomial into linear factors”).

In most algebra textbooks, this theorem is formulated for the reduced quadratic equation and states that if the equation has roots and , then the equalities , , are satisfied for them. Then a statement converse to Vieta's theorem is formulated, and a number of examples are offered to practice this topic.

Let's take specific examples and trace the logic of the solution using Vieta's theorem.

Example 1. Solve the equation.

Let's say this equation has roots, namely, and . Then, according to Vieta’s theorem, the equalities must simultaneously hold:

Please note that the product of roots is a positive number. This means that the roots of the equation are of the same sign. And since the sum of the roots is also a positive number, we conclude that both roots of the equation are positive. Let's return again to the product of roots. Let's assume that the roots of the equation are positive integers. Then the correct first equality can be obtained only in two ways (up to the order of the factors): or . Let us check for the proposed pairs of numbers the feasibility of the second statement of Vieta’s theorem: . Thus, the numbers 2 and 3 satisfy both equalities, and therefore are the roots of the given equation.

Answer: 2; 3.

Let us highlight the main stages of reasoning when solving the above quadratic equation using Vieta’s theorem:

write down the statement of Vieta's theorem (*)
  • determine the signs of the roots of the equation (If the product and the sum of the roots are positive, then both roots are positive numbers. If the product of the roots is a positive number, and the sum of the roots is negative, then both roots are negative numbers. If the product of the roots is a negative number, then the roots have different signs. Moreover, if the sum of the roots is positive, then the root with a larger modulus is a positive number, and if the sum of the roots is less than zero, then the root with a larger modulus is a negative number);
  • select pairs of integers whose product gives the correct first equality in the notation (*);
  • from the found pairs of numbers, select the pair that, when substituted into the second equality in the notation (*), will give the correct equality;
  • indicate in your answer the found roots of the equation.

Let's give more examples.

Example 2: Solve the equation .

Solution.

Let and be the roots of the given equation. Then, by Vieta’s theorem, we note that the product is positive, and the sum is a negative number. This means that both roots are negative numbers. We select pairs of factors that give a product of 10 (-1 and -10; -2 and -5). The second pair of numbers adds up to -7. This means that the numbers -2 and -5 are the roots of this equation.

Answer: -2; -5.

Example 3: Solve the equation .

Solution.

Let and be the roots of the given equation. Then, by Vieta’s theorem, we note that the product is negative. This means that the roots are of different signs. The sum of the roots is also a negative number. This means that the root with the largest modulus is negative. We select pairs of factors that give the product -10 (1 and -10; 2 and -5). The second pair of numbers adds up to -3. This means that the numbers 2 and -5 are the roots of this equation.

Answer: 2; -5.

Note that Vieta’s theorem can, in principle, be formulated for a complete quadratic equation: if quadratic equation has roots and , then the equalities , , are satisfied for them. However, the application of this theorem is quite problematic, since in a complete quadratic equation at least one of the roots (if any, of course) is fractional number. And working with selecting fractions is long and difficult. But still there is a way out.

Consider the complete quadratic equation . Multiply both sides of the equation by the first coefficient A and write the equation in the form . Let us introduce a new variable and obtain the reduced quadratic equation, the roots of which and (if available) can be found using Vieta’s theorem. Then the roots of the original equation will be . Please note that it is very simple to create the auxiliary reduced equation: the second coefficient is preserved, and the third coefficient is equal to the product ac. With a certain skill, students immediately create an auxiliary equation, find its roots using Vieta’s theorem, and indicate the roots of the given complete equation. Let's give examples.

Example 4: Solve the equation .

Let's create an auxiliary equation and using Vieta's theorem we will find its roots. This means that the roots of the original equation .

Answer: .

Example 5: Solve the equation .

The auxiliary equation has the form . According to Vieta's theorem, its roots are . Finding the roots of the original equation .

Answer: .

And one more case when the application of Vieta’s theorem allows you to verbally find the roots of a complete quadratic equation. It is not difficult to prove that the number 1 is the root of the equation , if and only if. The second root of the equation is found by Vieta’s theorem and is equal to . One more statement: so that the number –1 is the root of the equation necessary and sufficient to. Then the second root of the equation according to Vieta’s theorem is equal to . Similar statements can be formulated for the given quadratic equation.

Example 6: Solve the equation.

Note that the sum of the coefficients of the equation is zero. So, the roots of the equation .

Answer: .

Example 7. Solve the equation.

The coefficients of this equation satisfy the property (indeed, 1-(-999)+(-1000)=0). So, the roots of the equation .

Answer: ..

Examples of application of Vieta's theorem

Task 1. Solve the given quadratic equation using Vieta's theorem.

1. 6. 11. 16.
2. 7. 12. 17.
3. 8. 13. 18.
4. 9. 14. 19.
5. 10. 15. 20.

Task 2. Solve the complete quadratic equation by passing to the auxiliary reduced quadratic equation.

1. 6. 11. 16.
2. 7. 12. 17.
3. 8. 13. 18.
4. 9. 14. 19.
5. 10. 15. 20.

Task 3. Solve a quadratic equation using the property.

Almost any quadratic equation \can be converted to the form \ However, this is possible if you initially divide each term by a coefficient \before \ In addition, you can introduce a new notation:

\[(\frac (b)(a))= p\] and \[(\frac (c)(a)) = q\]

Due to this, we will have an equation \ called in mathematics a reduced quadratic equation. The roots of this equation and the coefficients are interrelated, which is confirmed by Vieta’s theorem.

Vieta's theorem: The sum of the roots of the reduced quadratic equation \ is equal to the second coefficient \ taken with the opposite sign, and the product of the roots is the free term \

For clarity, let’s solve the following equation:

Let's solve this quadratic equation using the written rules. Having analyzed the initial data, we can conclude that the equation will have two different roots, since:

Now, from all the factors of the number 15 (1 and 15, 3 and 5), we select those whose difference is 2. The numbers 3 and 5 fall under this condition. We put a minus sign in front of the smaller number. Thus, we obtain the roots of the equation \

Answer: \[ x_1= -3 and x_2 = 5\]

Where can I solve an equation using Vieta's theorem online?

You can solve the equation on our website https://site. The free online solver will allow you to solve online equations of any complexity in a matter of seconds. All you need to do is simply enter your data into the solver. You can also watch video instructions and learn how to solve the equation on our website. And if you still have questions, you can ask them in our VKontakte group http://vk.com/pocketteacher. Join our group, we are always happy to help you.


Between the roots and coefficients of a quadratic equation, in addition to the root formulas, there are other useful relationships that are given Vieta's theorem. In this article we will give a formulation and proof of Vieta's theorem for a quadratic equation. Next we consider the theorem converse to Vieta’s theorem. After this, we will analyze the solutions to the most typical examples. Finally, we write down the Vieta formulas that define the relationship between real roots algebraic equation degree n and its coefficients.

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Vieta's theorem, formulation, proof

From the formulas for the roots of the quadratic equation a·x 2 +b·x+c=0 of the form, where D=b 2 −4·a·c, the following relations follow: x 1 +x 2 =−b/a, x 1 ·x 2 = c/a . These results are confirmed Vieta's theorem:

Theorem.

If x 1 and x 2 are the roots of the quadratic equation a x 2 +b x+c=0, then the sum of the roots is equal to the ratio of the coefficients b and a, taken with the opposite sign, and the product of the roots is equal to the ratio of the coefficients c and a, that is, .

Proof.

We will carry out the proof of Vieta's theorem according to the following scheme: we compose the sum and product of the roots of the quadratic equation using known root formulas, then we transform the resulting expressions and make sure that they are equal to −b/a and c/a, respectively.

Let's start with the sum of the roots and make it up. Now we bring the fractions to a common denominator, we have . In the numerator of the resulting fraction, after which:. Finally, after on 2, we get . This proves the first relation of Vieta's theorem for the sum of the roots of a quadratic equation. Let's move on to the second.

We compose the product of the roots of the quadratic equation: . According to the rule for multiplying fractions, last piece can be written as . Now we multiply a bracket by a bracket in the numerator, but it’s faster to collapse this product by square difference formula, So . Then, remembering, we perform the next transition. And since the discriminant of the quadratic equation corresponds to the formula D=b 2 −4·a·c, then instead of D in the last fraction we can substitute b 2 −4·a·c, we get. After opening the parentheses and casting similar terms we arrive at the fraction , and its reduction by 4·a gives . This proves the second relation of Vieta's theorem for the product of roots.

If we omit the explanations, the proof of Vieta’s theorem will take a laconic form:
,
.

It remains only to note that if the discriminant is equal to zero, the quadratic equation has one root. However, if we assume that the equation in this case has two identical roots, then the equalities from Vieta’s theorem also hold. Indeed, when D=0 the root of the quadratic equation is equal to , then and , and since D=0, that is, b 2 −4·a·c=0, whence b 2 =4·a·c, then .

In practice, Vieta’s theorem is most often used in relation to the reduced quadratic equation (with the leading coefficient a equal to 1) of the form x 2 +p·x+q=0. Sometimes it is formulated for quadratic equations of just this type, which does not limit the generality, since any quadratic equation can be replaced by an equivalent equation by dividing both sides by a non-zero number a. Let us give the corresponding formulation of Vieta’s theorem:

Theorem.

The sum of the roots of the reduced quadratic equation x 2 +p x+q=0 is equal to the coefficient of x taken with the opposite sign, and the product of the roots is equal to the free term, that is, x 1 +x 2 =−p, x 1 x 2 = q.

Theorem inverse to Vieta's theorem

The second formulation of Vieta’s theorem, given in the previous paragraph, indicates that if x 1 and x 2 are the roots of the reduced quadratic equation x 2 +p x+q=0, then the relations x 1 +x 2 =−p, x 1 x 2 =q. On the other hand, from the written relations x 1 +x 2 =−p, x 1 x 2 =q it follows that x 1 and x 2 are the roots of the quadratic equation x 2 +p x+q=0. In other words, the converse of Vieta’s theorem is true. Let's formulate it in the form of a theorem and prove it.

Theorem.

If the numbers x 1 and x 2 are such that x 1 +x 2 =−p and x 1 · x 2 =q, then x 1 and x 2 are the roots of the reduced quadratic equation x 2 +p · x+q=0.

Proof.

After replacing the coefficients p and q in the equation x 2 +p x+q=0 by their expressions through x 1 and x 2 , it is transformed into equivalent equation.

Let us substitute the number x 1 into the resulting equation instead of x, we have the equality x 1 2 −(x 1 +x 2) x 1 +x 1 x 2 =0, which for any x 1 and x 2 represents the correct numerical equality 0=0, since x 1 2 −(x 1 +x 2) x 1 +x 1 x 2 = x 1 2 −x 1 2 −x 2 ·x 1 +x 1 ·x 2 =0. Therefore, x 1 is the root of the equation x 2 −(x 1 +x 2) x+x 1 x 2 =0, which means x 1 is the root of the equivalent equation x 2 +p·x+q=0.

If in the equation x 2 −(x 1 +x 2) x+x 1 x 2 =0 substitute the number x 2 instead of x, we get the equality x 2 2 −(x 1 +x 2) x 2 +x 1 x 2 =0. This is a true equality, since x 2 2 −(x 1 +x 2) x 2 +x 1 x 2 = x 2 2 −x 1 ·x 2 −x 2 2 +x 1 ·x 2 =0. Therefore, x 2 is also a root of the equation x 2 −(x 1 +x 2) x+x 1 x 2 =0, and therefore the equations x 2 +p·x+q=0.

This completes the proof of the theorem, converse of the theorem Vieta.

Examples of using Vieta's theorem

It's time to talk about the practical application of Vieta's theorem and its converse theorem. In this section we will analyze solutions to several of the most typical examples.

Let's start by applying the theorem converse to Vieta's theorem. It is convenient to use to check whether given two numbers are roots of a given quadratic equation. In this case, their sum and difference are calculated, after which the validity of the relations is checked. If both of these relations are satisfied, then by virtue of the theorem converse to Vieta’s theorem, it is concluded that these numbers are the roots of the equation. If at least one of the relations is not satisfied, then these numbers are not the roots of the quadratic equation. This approach can be used when solving quadratic equations to check the roots found.

Example.

Which of the pairs of numbers 1) x 1 =−5, x 2 =3, or 2) or 3) is a pair of roots of the quadratic equation 4 x 2 −16 x+9=0?

Solution.

The coefficients of the given quadratic equation 4 x 2 −16 x+9=0 are a=4, b=−16, c=9. According to Vieta's theorem, the sum of the roots of a quadratic equation should be equal to −b/a, that is, 16/4=4, and the product of the roots should be equal to c/a, that is, 9/4.

Now let's calculate the sum and product of the numbers in each of the three given pairs, and compare them with the values ​​we just obtained.

In the first case we have x 1 +x 2 =−5+3=−2. The resulting value is different from 4, so no further verification can be carried out, but using the theorem inverse to Vieta’s theorem, one can immediately conclude that the first pair of numbers is not a pair of roots of the given quadratic equation.

Let's move on to the second case. Here, that is, the first condition is met. We check the second condition: the resulting value is different from 9/4. Consequently, the second pair of numbers is not a pair of roots of the quadratic equation.

There is one last case left. Here and. Both conditions are met, so these numbers x 1 and x 2 are the roots of the given quadratic equation.

Answer:

The converse of Vieta's theorem can be used in practice to find the roots of a quadratic equation. Usually, integer roots of the given quadratic equations with integer coefficients are selected, since in other cases this is quite difficult to do. In this case, they use the fact that if the sum of two numbers is equal to the second coefficient of a quadratic equation, taken with a minus sign, and the product of these numbers is equal to the free term, then these numbers are the roots of this quadratic equation. Let's understand this with an example.

Let's take the quadratic equation x 2 −5 x+6=0. For the numbers x 1 and x 2 to be the roots of this equation, two equalities must be satisfied: x 1 + x 2 =5 and x 1 ·x 2 =6. All that remains is to select such numbers. In this case, this is quite simple to do: such numbers are 2 and 3, since 2+3=5 and 2·3=6. Thus, 2 and 3 are the roots of this quadratic equation.

The theorem inverse to Vieta's theorem is especially convenient to use to find the second root of a given quadratic equation when one of the roots is already known or obvious. In this case, the second root can be found from any of the relations.

For example, let's take the quadratic equation 512 x 2 −509 x −3=0. Here it is easy to see that unity is the root of the equation, since the sum of the coefficients of this quadratic equation is equal to zero. So x 1 =1. The second root x 2 can be found, for example, from the relation x 1 ·x 2 =c/a. We have 1 x 2 =−3/512, whence x 2 =−3/512. This is how we determined both roots of the quadratic equation: 1 and −3/512.

It is clear that the selection of roots is advisable only in the simplest cases. In other cases, to find roots, you can use formulas for the roots of a quadratic equation through a discriminant.

One more thing practical application The theorem, converse to Vieta’s theorem, consists in composing quadratic equations according to given roots x 1 and x 2 . To do this, it is enough to calculate the sum of the roots, which gives the coefficient for x with the opposite sign of the given quadratic equation, and the product of the roots, which gives free member.

Example.

Write a quadratic equation whose roots are the numbers −11 and 23.

Solution.

Let's denote x 1 =−11 and x 2 =23. We calculate the sum and product of these numbers: x 1 +x 2 =12 and x 1 ·x 2 =−253. Therefore, the indicated numbers are the roots of the reduced quadratic equation with a second coefficient of −12 and a free term of −253. That is, x 2 −12·x−253=0 is the required equation.

Answer:

x 2 −12·x−253=0 .

Vieta's theorem is very often used when solving problems related to the signs of the roots of quadratic equations. How is Vieta’s theorem related to the signs of the roots of the reduced quadratic equation x 2 +p·x+q=0? Here are two relevant statements:

  • If the free term q is a positive number and if the quadratic equation has real roots, then either they are both positive or both negative.
  • If the free term q is a negative number and if the quadratic equation has real roots, then their signs are different, in other words, one root is positive and the other is negative.

These statements follow from the formula x 1 · x 2 =q, as well as the rules of positive multiplication, negative numbers and numbers with different signs. Let's look at examples of their application.

Example.

R it is positive. Using the discriminant formula we find D=(r+2) 2 −4 1 (r−1)= r 2 +4 r+4−4 r+4=r 2 +8, the value of the expression r 2 +8 is positive for any real r, thus D>0 for any real r. Consequently, the original quadratic equation has two roots for any real values ​​of the parameter r.

Now let's find out when the roots have different signs. If the signs of the roots are different, then their product is negative, and according to Vieta’s theorem, the product of the roots of the reduced quadratic equation is equal to the free term. Therefore, we are interested in those values ​​of r for which the free term r−1 is negative. Thus, to find the values ​​of r we are interested in, we need decide linear inequality r−1<0 , откуда находим r<1 .

Answer:

at r<1 .

Vieta formulas

Above we talked about Vieta’s theorem for a quadratic equation and analyzed the relationships it asserts. But there are formulas connecting the real roots and coefficients of not only quadratic equations, but also cubic equations, equations of the fourth degree, and in general, algebraic equations degree n. They are called Vieta's formulas.

Let us write the Vieta formula for an algebraic equation of degree n of the form, and we will assume that it has n real roots x 1, x 2, ..., x n (among them there may be coinciding ones):

Vieta's formulas can be obtained theorem on the decomposition of a polynomial into linear factors, as well as the definition of equal polynomials through the equality of all their corresponding coefficients. So the polynomial and its expansion into linear factors of the form are equal. Opening the brackets in the last product and equating the corresponding coefficients, we obtain Vieta’s formulas.

In particular, for n=2 we have the already familiar Vieta formulas for a quadratic equation.

For a cubic equation, Vieta's formulas have the form

It remains only to note that on the left side of Vieta’s formulas there are the so-called elementary symmetric polynomials.

References.

  • Algebra: textbook for 8th grade. general education institutions / [Yu. N. Makarychev, N. G. Mindyuk, K. I. Neshkov, S. B. Suvorova]; edited by S. A. Telyakovsky. - 16th ed. - M.: Education, 2008. - 271 p. : ill. - ISBN 978-5-09-019243-9.
  • Mordkovich A. G. Algebra. 8th grade. In 2 hours. Part 1. Textbook for students of general education institutions / A. G. Mordkovich. - 11th ed., erased. - M.: Mnemosyne, 2009. - 215 p.: ill. ISBN 978-5-346-01155-2.
  • Algebra and the beginning of mathematical analysis. 10th grade: textbook. for general education institutions: basic and profile. levels / [Yu. M. Kolyagin, M. V. Tkacheva, N. E. Fedorova, M. I. Shabunin]; edited by A. B. Zhizhchenko. - 3rd ed. - M.: Education, 2010.- 368 p. : ill. - ISBN 978-5-09-022771-1.

In mathematics, there are special techniques with which many quadratic equations can be solved very quickly and without any discriminants. Moreover, with proper training, many begin to solve quadratic equations orally, literally “at first sight.”

Unfortunately, in the modern course of school mathematics, such technologies are almost not studied. But you need to know! And today we will look at one of these techniques - Vieta's theorem. First, let's introduce a new definition.

A quadratic equation of the form x 2 + bx + c = 0 is called reduced. Please note that the coefficient for x 2 is 1. There are no other restrictions on the coefficients.

  1. x 2 + 7x + 12 = 0 is a reduced quadratic equation;
  2. x 2 − 5x + 6 = 0 - also reduced;
  3. 2x 2 − 6x + 8 = 0 - but this is not given at all, since the coefficient of x 2 is equal to 2.

Of course, any quadratic equation of the form ax 2 + bx + c = 0 can be reduced - just divide all the coefficients by the number a. We can always do this, since the definition of a quadratic equation implies that a ≠ 0.

True, these transformations will not always be useful for finding roots. Below we will make sure that this should be done only when in the final equation given by the square all the coefficients are integer. For now, let's look at the simplest examples:

Task. Convert the quadratic equation to the reduced equation:

  1. 3x 2 − 12x + 18 = 0;
  2. −4x 2 + 32x + 16 = 0;
  3. 1.5x 2 + 7.5x + 3 = 0;
  4. 2x 2 + 7x − 11 = 0.

Let's divide each equation by the coefficient of the variable x 2. We get:

  1. 3x 2 − 12x + 18 = 0 ⇒ x 2 − 4x + 6 = 0 - divided everything by 3;
  2. −4x 2 + 32x + 16 = 0 ⇒ x 2 − 8x − 4 = 0 - divided by −4;
  3. 1.5x 2 + 7.5x + 3 = 0 ⇒ x 2 + 5x + 2 = 0 - divided by 1.5, all coefficients became integers;
  4. 2x 2 + 7x − 11 = 0 ⇒ x 2 + 3.5x − 5.5 = 0 - divided by 2. In this case, fractional coefficients appeared.

As you can see, the above quadratic equations can have integer coefficients even if the original equation contained fractions.

Now let us formulate the main theorem, for which, in fact, the concept of a reduced quadratic equation was introduced:

Vieta's theorem. Consider the reduced quadratic equation of the form x 2 + bx + c = 0. Assume that this equation has real roots x 1 and x 2. In this case, the following statements are true:

  1. x 1 + x 2 = −b. In other words, the sum of the roots of the given quadratic equation is equal to the coefficient of the variable x, taken with the opposite sign;
  2. x 1 x 2 = c . The product of the roots of a quadratic equation is equal to the free coefficient.

Examples. For simplicity, we will consider only the above quadratic equations that do not require additional transformations:

  1. x 2 − 9x + 20 = 0 ⇒ x 1 + x 2 = − (−9) = 9; x 1 x 2 = 20; roots: x 1 = 4; x 2 = 5;
  2. x 2 + 2x − 15 = 0 ⇒ x 1 + x 2 = −2; x 1 x 2 = −15; roots: x 1 = 3; x 2 = −5;
  3. x 2 + 5x + 4 = 0 ⇒ x 1 + x 2 = −5; x 1 x 2 = 4; roots: x 1 = −1; x 2 = −4.

Vieta's theorem gives us additional information about the roots of a quadratic equation. At first glance, this may seem difficult, but even with minimal training you will learn to “see” the roots and literally guess them in a matter of seconds.

Task. Solve the quadratic equation:

  1. x 2 − 9x + 14 = 0;
  2. x 2 − 12x + 27 = 0;
  3. 3x 2 + 33x + 30 = 0;
  4. −7x 2 + 77x − 210 = 0.

Let’s try to write out the coefficients using Vieta’s theorem and “guess” the roots:

  1. x 2 − 9x + 14 = 0 is a reduced quadratic equation.
    By Vieta’s theorem we have: x 1 + x 2 = −(−9) = 9; x 1 · x 2 = 14. It is easy to see that the roots are the numbers 2 and 7;
  2. x 2 − 12x + 27 = 0 - also reduced.
    By Vieta's theorem: x 1 + x 2 = −(−12) = 12; x 1 x 2 = 27. Hence the roots: 3 and 9;
  3. 3x 2 + 33x + 30 = 0 - this equation is not reduced. But we will correct this now by dividing both sides of the equation by the coefficient a = 3. We get: x 2 + 11x + 10 = 0.
    We solve using Vieta’s theorem: x 1 + x 2 = −11; x 1 x 2 = 10 ⇒ roots: −10 and −1;
  4. −7x 2 + 77x − 210 = 0 - again the coefficient for x 2 is not equal to 1, i.e. equation not given. We divide everything by the number a = −7. We get: x 2 − 11x + 30 = 0.
    By Vieta's theorem: x 1 + x 2 = −(−11) = 11; x 1 x 2 = 30; From these equations it is easy to guess the roots: 5 and 6.

From the above reasoning it is clear how Vieta’s theorem simplifies the solution of quadratic equations. No complicated calculations, no arithmetic roots or fractions. And we didn’t even need a discriminant (see lesson “Solving quadratic equations”).

Of course, in all our reflections we proceeded from two important assumptions, which, generally speaking, are not always met in real problems:

  1. The quadratic equation is reduced, i.e. the coefficient for x 2 is 1;
  2. The equation has two different roots. From an algebraic point of view, in this case the discriminant is D > 0 - in fact, we initially assume that this inequality is true.

However, in typical mathematical problems these conditions are met. If the calculation results in a “bad” quadratic equation (the coefficient of x 2 is different from 1), this can be easily corrected - look at the examples at the very beginning of the lesson. I’m generally silent about roots: what kind of problem is this that has no answer? Of course there will be roots.

Thus, the general scheme for solving quadratic equations using Vieta’s theorem is as follows:

  1. Reduce the quadratic equation to the given one, if this has not already been done in the problem statement;
  2. If the coefficients in the above quadratic equation are fractional, we solve using the discriminant. You can even go back to the original equation to work with more "handy" numbers;
  3. In the case of integer coefficients, we solve the equation using Vieta’s theorem;
  4. If you can’t guess the roots within a few seconds, forget about Vieta’s theorem and solve using the discriminant.

Task. Solve the equation: 5x 2 − 35x + 50 = 0.

So, we have before us an equation that is not reduced, because coefficient a = 5. Divide everything by 5, we get: x 2 − 7x + 10 = 0.

All coefficients of a quadratic equation are integer - let's try to solve it using Vieta's theorem. We have: x 1 + x 2 = −(−7) = 7; x 1 · x 2 = 10. In this case, the roots are easy to guess - they are 2 and 5. There is no need to count using the discriminant.

Task. Solve the equation: −5x 2 + 8x − 2.4 = 0.

Let's look: −5x 2 + 8x − 2.4 = 0 - this equation is not reduced, let's divide both sides by the coefficient a = −5. We get: x 2 − 1.6x + 0.48 = 0 - an equation with fractional coefficients.

It is better to return to the original equation and count through the discriminant: −5x 2 + 8x − 2.4 = 0 ⇒ D = 8 2 − 4 · (−5) · (−2.4) = 16 ⇒ ... ⇒ x 1 = 1.2; x 2 = 0.4.

Task. Solve the equation: 2x 2 + 10x − 600 = 0.

First, let's divide everything by the coefficient a = 2. We get the equation x 2 + 5x − 300 = 0.

This is the reduced equation, according to Vieta’s theorem we have: x 1 + x 2 = −5; x 1 x 2 = −300. It is difficult to guess the roots of the quadratic equation in this case - personally, I was seriously stuck when solving this problem.

You will have to look for roots through the discriminant: D = 5 2 − 4 · 1 · (−300) = 1225 = 35 2 . If you don't remember the root of the discriminant, I'll just note that 1225: 25 = 49. Therefore, 1225 = 25 49 = 5 2 7 2 = 35 2.

Now that the root of the discriminant is known, solving the equation is not difficult. We get: x 1 = 15; x 2 = −20.

There are a number of relationships in quadratic equations. The main ones are the relationships between roots and coefficients. Also in quadratic equations there are a number of relationships that are given by Vieta’s theorem.

In this topic, we will present Vieta’s theorem itself and its proof for a quadratic equation, the theorem inverse to Vieta’s theorem, and analyze a number of examples of solving problems. In the material we will pay special attention to the consideration of Vieta’s formulas, which define the connection between the real roots of an algebraic equation of degree n and its coefficients.

Formulation and proof of Vieta's theorem

Formula for the roots of a quadratic equation a x 2 + b x + c = 0 of the form x 1 = - b + D 2 · a, x 2 = - b - D 2 · a, where D = b 2 − 4 a c, establishes relationships x 1 + x 2 = - b a, x 1 x 2 = c a. This is confirmed by Vieta's theorem.

Theorem 1

In a quadratic equation a x 2 + b x + c = 0, Where x 1 And x 2– roots, the sum of the roots will be equal to the ratio of the coefficients b And a, which was taken with the opposite sign, and the product of the roots will be equal to the ratio of the coefficients c And a, i.e. x 1 + x 2 = - b a, x 1 x 2 = c a.

Evidence 1

We offer you the following scheme for carrying out the proof: take the formula of roots, compose the sum and product of the roots of the quadratic equation and then transform the resulting expressions in order to make sure that they are equal -b a And c a respectively.

Let's make the sum of the roots x 1 + x 2 = - b + D 2 · a + - b - D 2 · a. Let's bring the fractions to a common denominator - b + D 2 · a + - b - D 2 · a = - b + D + - b - D 2 · a. Let's open the parentheses in the numerator of the resulting fraction and present similar terms: - b + D + - b - D 2 · a = - b + D - b - D 2 · a = - 2 · b 2 · a . Let's reduce the fraction by: 2 - b a = - b a.

This is how we proved the first relation of Vieta’s theorem, which relates to the sum of the roots of a quadratic equation.

Now let's move on to the second relationship.

To do this, we need to compose the product of the roots of the quadratic equation: x 1 · x 2 = - b + D 2 · a · - b - D 2 · a.

Let's remember the rule for multiplying fractions and write the last product as follows: - b + D · - b - D 4 · a 2.

Let's multiply a bracket by a bracket in the numerator of the fraction, or use the difference of squares formula to transform this product faster: - b + D · - b - D 4 · a 2 = - b 2 - D 2 4 · a 2 .

Let's use the definition of a square root to make the following transition: - b 2 - D 2 4 · a 2 = b 2 - D 4 · a 2 . Formula D = b 2 − 4 a c corresponds to the discriminant of a quadratic equation, therefore, into a fraction instead of D can be substituted b 2 − 4 a c:

b 2 - D 4 a 2 = b 2 - (b 2 - 4 a c) 4 a 2

Let's open the brackets, add similar terms and get: 4 · a · c 4 · a 2 . If we shorten it to 4 a, then what remains is c a . This is how we proved the second relation of Vieta’s theorem for the product of roots.

The proof of Vieta's theorem can be written in a very laconic form if we omit the explanations:

x 1 + x 2 = - b + D 2 a + - b - D 2 a = - b + D + - b - D 2 a = - 2 b 2 a = - b a , x 1 x 2 = - b + D 2 · a · - b - D 2 · a = - b + D · - b - D 4 · a 2 = - b 2 - D 2 4 · a 2 = b 2 - D 4 · a 2 = = D = b 2 - 4 · a · c = b 2 - b 2 - 4 · a · c 4 · a 2 = 4 · a · c 4 · a 2 = c a .

When the discriminant of a quadratic equation is equal to zero, the equation will have only one root. To be able to apply Vieta's theorem to such an equation, we can assume that the equation, with a discriminant equal to zero, has two identical roots. Indeed, when D=0 the root of the quadratic equation is: - b 2 · a, then x 1 + x 2 = - b 2 · a + - b 2 · a = - b + (- b) 2 · a = - 2 · b 2 · a = - b a and x 1 · x 2 = - b 2 · a · - b 2 · a = - b · - b 4 · a 2 = b 2 4 · a 2 , and since D = 0, that is, b 2 - 4 · a · c = 0, whence b 2 = 4 · a · c, then b 2 4 · a 2 = 4 · a · c 4 · a 2 = c a.

Most often in practice, Vieta's theorem is applied to the reduced quadratic equation of the form x 2 + p x + q = 0, where the leading coefficient a is equal to 1. In this regard, Vieta’s theorem is formulated specifically for equations of this type. This does not limit the generality due to the fact that any quadratic equation can be replaced by an equivalent equation. To do this, you need to divide both of its parts by a number a different from zero.

Let us give another formulation of Vieta's theorem.

Theorem 2

Sum of roots in the given quadratic equation x 2 + p x + q = 0 will be equal to the coefficient of x, which is taken with the opposite sign, the product of the roots will be equal to the free term, i.e. x 1 + x 2 = − p, x 1 x 2 = q.

Theorem inverse to Vieta's theorem

If you look carefully at the second formulation of Vieta’s theorem, you can see that for the roots x 1 And x 2 reduced quadratic equation x 2 + p x + q = 0 the following relations will be valid: x 1 + x 2 = − p, x 1 · x 2 = q. From these relations x 1 + x 2 = − p, x 1 x 2 = q it follows that x 1 And x 2 are the roots of the quadratic equation x 2 + p x + q = 0. So we come to a statement that is the converse of Vieta’s theorem.

We now propose to formulate this statement as a theorem and carry out its proof.

Theorem 3

If the numbers x 1 And x 2 are such that x 1 + x 2 = − p And x 1 x 2 = q, That x 1 And x 2 are the roots of the reduced quadratic equation x 2 + p x + q = 0.

Evidence 2

Replacing odds p And q to their expression through x 1 And x 2 allows you to transform the equation x 2 + p x + q = 0 into an equivalent .

If we substitute the number into the resulting equation x 1 instead of x, then we get the equality x 1 2 − (x 1 + x 2) x 1 + x 1 x 2 = 0. This is equality for any x 1 And x 2 turns into a true numerical equality 0 = 0 , because x 1 2 − (x 1 + x 2) x 1 + x 1 x 2 = x 1 2 − x 1 2 − x 2 x 1 + x 1 x 2 = 0. This means that x 1– root of the equation x 2 − (x 1 + x 2) x + x 1 x 2 = 0, So what x 1 is also the root of the equivalent equation x 2 + p x + q = 0.

Substitution into equation x 2 − (x 1 + x 2) x + x 1 x 2 = 0 numbers x 2 instead of x allows us to obtain equality x 2 2 − (x 1 + x 2) x 2 + x 1 x 2 = 0. This equality can be considered true, since x 2 2 − (x 1 + x 2) x 2 + x 1 x 2 = x 2 2 − x 1 x 2 − x 2 2 + x 1 x 2 = 0. It turns out that x 2 is the root of the equation x 2 − (x 1 + x 2) x + x 1 x 2 = 0, and hence the equations x 2 + p x + q = 0.

The converse of Vieta's theorem has been proven.

Examples of using Vieta's theorem

Let's now begin to analyze the most typical examples on the topic. Let's start by analyzing problems that require the application of the theorem inverse to Vieta's theorem. It can be used to check numbers produced by calculations to see if they are the roots of a given quadratic equation. To do this, you need to calculate their sum and difference, and then check the validity of the relations x 1 + x 2 = - b a, x 1 · x 2 = a c.

The fulfillment of both relations indicates that the numbers obtained during the calculations are the roots of the equation. If we see that at least one of the conditions is not met, then these numbers cannot be the roots of the quadratic equation given in the problem statement.

Example 1

Which of the pairs of numbers 1) x 1 = − 5, x 2 = 3, or 2) x 1 = 1 - 3, x 2 = 3 + 3, or 3) x 1 = 2 + 7 2, x 2 = 2 - 7 2 is a pair of roots of a quadratic equation 4 x 2 − 16 x + 9 = 0?

Solution

Let's find the coefficients of the quadratic equation 4 x 2 − 16 x + 9 = 0. This is a = 4, b = − 16, c = 9. According to Vieta's theorem, the sum of the roots of a quadratic equation must be equal to -b a, that is, 16 4 = 4 , and the product of the roots must be equal c a, that is, 9 4 .

Let's check the obtained numbers by calculating the sum and product of numbers from three given pairs and comparing them with the obtained values.

In the first case x 1 + x 2 = − 5 + 3 = − 2. This value is different from 4, therefore, the check does not need to be continued. According to the theorem converse to Vieta's theorem, we can immediately conclude that the first pair of numbers are not the roots of this quadratic equation.

In the second case, x 1 + x 2 = 1 - 3 + 3 + 3 = 4. We see that the first condition is met. But the second condition is not: x 1 · x 2 = 1 - 3 · 3 + 3 = 3 + 3 - 3 · 3 - 3 = - 2 · 3. The value we got is different from 9 4 . This means that the second pair of numbers are not the roots of the quadratic equation.

Let's move on to consider the third pair. Here x 1 + x 2 = 2 + 7 2 + 2 - 7 2 = 4 and x 1 x 2 = 2 + 7 2 2 - 7 2 = 2 2 - 7 2 2 = 4 - 7 4 = 16 4 - 7 4 = 9 4. Both conditions are met, which means that x 1 And x 2 are the roots of a given quadratic equation.

Answer: x 1 = 2 + 7 2 , x 2 = 2 - 7 2

We can also use the converse of Vieta's theorem to find the roots of a quadratic equation. The simplest way is to select integer roots of the given quadratic equations with integer coefficients. Other options can be considered. But this can significantly complicate calculations.

To select roots, we use the fact that if the sum of two numbers is equal to the second coefficient of a quadratic equation, taken with a minus sign, and the product of these numbers is equal to the free term, then these numbers are the roots of this quadratic equation.

Example 2

As an example, we use the quadratic equation x 2 − 5 x + 6 = 0. Numbers x 1 And x 2 can be the roots of this equation if two equalities are satisfied x 1 + x 2 = 5 And x 1 x 2 = 6. Let's select these numbers. These are numbers 2 and 3, since 2 + 3 = 5 And 2 3 = 6. It turns out that 2 and 3 are the roots of this quadratic equation.

The converse of Vieta's theorem can be used to find the second root when the first is known or obvious. To do this, we can use the relations x 1 + x 2 = - b a, x 1 · x 2 = c a.

Example 3

Consider the quadratic equation 512 x 2 − 509 x − 3 = 0. It is necessary to find the roots of this equation.

Solution

The first root of the equation is 1, since the sum of the coefficients of this quadratic equation is zero. It turns out that x 1 = 1.

Now let's find the second root. For this you can use the relation x 1 x 2 = c a. It turns out that 1 x 2 = − 3,512, where x 2 = - 3,512.

Answer: roots of the quadratic equation specified in the problem statement 1 And - 3 512 .

It is possible to select roots using the theorem inverse to Vieta’s theorem only in simple cases. In other cases, it is better to search using the formula for the roots of a quadratic equation through a discriminant.

Thanks to the converse of Vieta's theorem, we can also construct quadratic equations using the existing roots x 1 And x 2. To do this, we need to calculate the sum of the roots, which gives the coefficient for x with the opposite sign of the given quadratic equation, and the product of the roots, which gives the free term.

Example 4

Write a quadratic equation whose roots are numbers − 11 And 23 .

Solution

Let's assume that x 1 = − 11 And x 2 = 23. The sum and product of these numbers will be equal: x 1 + x 2 = 12 And x 1 x 2 = − 253. This means that the second coefficient is 12, the free term − 253.

Let's make an equation: x 2 − 12 x − 253 = 0.

Answer: x 2 − 12 x − 253 = 0 .

We can use Vieta's theorem to solve problems that involve the signs of the roots of quadratic equations. The connection between Vieta's theorem is related to the signs of the roots of the reduced quadratic equation x 2 + p x + q = 0 as follows:

  • if the quadratic equation has real roots and if the intercept term q is a positive number, then these roots will have the same sign “+” or “-”;
  • if the quadratic equation has roots and if the intercept term q is a negative number, then one root will be “+”, and the second “-”.

Both of these statements are a consequence of the formula x 1 x 2 = q and rules for multiplying positive and negative numbers, as well as numbers with different signs.

Example 5

Are the roots of a quadratic equation x 2 − 64 x − 21 = 0 positive?

Solution

According to Vieta’s theorem, the roots of this equation cannot both be positive, since they must satisfy the equality x 1 x 2 = − 21. This is impossible with positive x 1 And x 2.

Answer: No

Example 6

At what parameter values r quadratic equation x 2 + (r + 2) x + r − 1 = 0 will have two real roots with different signs.

Solution

Let's start by finding the values ​​of which r, for which the equation will have two roots. Let's find the discriminant and see at what r it will take positive values. D = (r + 2) 2 − 4 1 (r − 1) = r 2 + 4 r + 4 − 4 r + 4 = r 2 + 8. Expression value r 2 + 8 positive for any real r, therefore, the discriminant will be greater than zero for any real r. This means that the original quadratic equation will have two roots for any real values ​​of the parameter r.

Now let's see when the roots have different signs. This is possible if their product is negative. According to Vieta's theorem, the product of the roots of the reduced quadratic equation is equal to the free term. This means that the correct solution will be those values r, for which the free term r − 1 is negative. Let's solve the linear inequality r − 1< 0 , получаем r < 1 .

Answer: at r< 1 .

Vieta formulas

There are a number of formulas that are applicable to carry out operations with the roots and coefficients of not only quadratic, but also cubic and other types of equations. They are called Vieta's formulas.

For an algebraic equation of degree n of the form a 0 · x n + a 1 · x n - 1 + . . . + a n - 1 x + a n = 0 the equation is considered to have n real roots x 1 , x 2 , … , x n, among which may be the same:
x 1 + x 2 + x 3 + . . . + x n = - a 1 a 0 , x 1 · x 2 + x 1 · x 3 + . . . + x n - 1 · x n = a 2 a 0 , x 1 · x 2 · x 3 + x 1 · x 2 · x 4 + . . . + x n - 2 · x n - 1 · x n = - a 3 a 0 , . . . x 1 · x 2 · x 3 · . . . · x n = (- 1) n · a n a 0

Definition 1

Vieta's formulas help us obtain:

  • theorem on the decomposition of a polynomial into linear factors;
  • determination of equal polynomials through the equality of all their corresponding coefficients.

Thus, the polynomial a 0 · x n + a 1 · x n - 1 + . . . + a n - 1 · x + a n and its expansion into linear factors of the form a 0 · (x - x 1) · (x - x 2) · . . . · (x - x n) are equal.

If we open the brackets in the last product and equate the corresponding coefficients, we obtain Vieta's formulas. Taking n = 2, we can obtain Vieta's formula for the quadratic equation: x 1 + x 2 = - a 1 a 0, x 1 · x 2 = a 2 a 0.

Definition 2

Vieta's formula for the cubic equation:
x 1 + x 2 + x 3 = - a 1 a 0 , x 1 x 2 + x 1 x 3 + x 2 x 3 = a 2 a 0 , x 1 x 2 x 3 = - a 3 a 0

The left side of the Vieta formula contains the so-called elementary symmetric polynomials.

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