Problem 1 : Show Find the vertex of the quadratic function : f(x) = x2 - 8x + 12 Problem 2 : Graph the quadratic function : f(x) = x2 - 4x + 8 Problem 3 : The graph of a quadratic function f(x) = - 10x2 + 700x - 6000 shows the profit, a company earns for selling items at different prices. Find the maximum profit that the company can expect to earn.  Problem 4 : Find the equation of a parabola that passes through the points : (-2, 0), (3, -10) and (5, 0) Detailed Answer KeyProblem 1 : Find the vertex of the quadratic function : f(x) = x2 - 8x + 12 Solution : Step 1 : Identify the coefficients a, b and c. Comparing ax2 + bx + c and x2 - 8x + 12, we get a = 1, b = -8 and c = 12 Step 2 : Solve for h, the x-coordinate of the vertex. h = - b / 2a Substitute. h = - (-8) / 2(1) h = 8 / 2 h = 4 Step 3 : Substitute the value of h into the equation for x to find k, the y-coordinate of the vertex. f(4) = 42 - 8(4) + 12 f(4) = 16 - 32 + 12 f(4) = - 4 So, the vertex of the given quadratic function is (h, k) = (4, -4) Problem 2 : Graph the quadratic function : f(x) = x2 - 4x + 8 Solution : Step 1 : Identify the coefficients a, b and c. Comparing ax2 + bx + c and x2 - 4x + 8, we get a = 1, b = -4 and c = 8 Step 2 : Find the vertex of the quadratic function. The x-coordinate of the vertex can be determined by h = - b / 2a Substitute. h = - (-4) / 2(1) h = 4 / 2 h = 2 Substitute the value of h for x into the equation to find the y-coordinate of the vertex, k : f(2) = 22 - 4(2) + 8 f(2) = 4 - 8 + 8 f(2) = 4 So, the vertex is (h, k) = (2, 4) Step 3 : Find the axis of symmetry of the quadratic function. Axis of symmetry of a quadratic function can be determined by the x-coordinate of the vertex. In the vertex (2, 4), the x-coordinate is 2. So, the axis of symmetry is x = 2 Step 4 : Find the y-intercept of the quadratic function. To find the y-intercept, put x = 0. f(0) = 02 - 4(0) + 8 f(0) = 8 Step 5 : Find a point symmetric to the y-intercept across the axis of symmetry. Because (0, 8) is point on the parabola 2 units to the left of the axis of symmetry, x = 2, (4, 8) will be a point on the parabola 2 units to the right of the axis of symmetry. Step 6 : Sketch the graph. Once we have three points associated with the quadratic function, we can sketch the parabola based on our knowledge of its general shape. Problem 3 : The graph of a quadratic function f(x) = - 10x2 + 700x - 6000 shows the profit, a company earns for selling items at different prices. Find the maximum profit that the company can expect to earn. Solution : The x-axis shows the selling price and the y-axis shows the profit. The maximum y-value of the profit function occurs at the vertex of its parabola. Find the vertex of the parabola. Use the function to find the x-coordinate and y-coordinate of the vertex. Find the x-coordinate of the vertex. h = - b / 2a Substitute. h = - 700 / 2(-10) h = - 700 / (-20) h = 35 Find the y-coordinate of the vertex. y = - 10x2 + 700x - 6000 Substitute x = 35. y = - 10(35)2 + 700(35) - 6000 Simplify. y = - 12250 + 24500 - 6000 y = 6250 So, the vertex is (h, k) = (35, 6250) So, the selling price of $35 per item gives the maximum profit of $6,250. Problem 4 : Find the equation of a parabola that passes through the points : (-2, 0), (3, -10) and (5, 0) Solution : Step 1 : Write the three equations by substituting the given x and y-values into the standard form of a parabola equation, y = ax2 + bx + c Substitute (-2, 0). 0 = a(-2)2 + b(-2) + c 0 = 4a - 2b + c Substitute (3, -10). -10 = a(3)2 + b(3) + c -10 = 9a + 3b + c Substitute (5, 0). 0 = a(5)2 + b(5) + c 0 = 25a + 5b + c Step 2 : Solve the system : 0 = 4a - 2b + c -10 = 9a + 3b + c 0 = 25a + 5b + c Solving the above system using elimination method, we will get a = 1, b = - 3 and c = - 10 Step 3 : Substitute 1 for a, -3 for b, and -10 for c in the standard form of quadratic equation. Hence, the equation of a parabola is y = x2 - 3x - 10 Step 4 : Confirm that the graph of the equation passes through the given three points. Apart from the stuff given above, if you need any other stuff in math, please use our google custom search here. Kindly mail your feedback to We always appreciate your feedback. ©All rights reserved. onlinemath4all.com What is the standard form of a quadratic equation answer?So standard form for a quadratic equation is ax squared plus bx plus c is equal to zero.
How did you write quadratic equation into standard form?A quadratic equation is an equation of the form ax2+bx+c=0 a x 2 + b x + c = 0 , where a≠0 a ≠ 0 . The form ax2+bx+c=0 a x 2 + b x + c = 0 is called the standard form of the quadratic equation.
What are the 3 examples of quadratic equations written in standard form?Examples of the standard form of a quadratic equation (ax² + bx + c = 0) include:. 6x² + 11x - 35 = 0.. 2x² - 4x - 2 = 0.. -4x² - 7x +12 = 0.. 20x² -15x - 10 = 0.. x² -x - 3 = 0.. 5x² - 2x - 9 = 0.. 3x² + 4x + 2 = 0.. -x² +6x + 18 = 0.. What is the standard form of a quadratic form?The quadratic function f(x) = a(x - h)2 + k, a not equal to zero, is said to be in standard form. If a is positive, the graph opens upward, and if a is negative, then it opens downward. The line of symmetry is the vertical line x = h, and the vertex is the point (h,k).
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Standard form of quadratic equation worksheet with answers
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