87609 By Newton-Raphson method, the positive root of the equation \(x^{4}-x-10=0\) is

87610 By trapezoidal rule, the approximate value of the integral \(\int_{0}^{6} \frac{\mathrm{dx}}{1+\mathrm{x}^{2}}\) is

87618 Using trapezoidal rule and taking \(n=4\), the approximate value of integral \(\int_{1}^{9} x^{2} d x\) is
\(2\left[\frac{1}{2}\left(1+9^{2}\right)+\alpha^{2}+\beta^{2}+7^{2}\right]\) then

87611 The positive root of equation \(x^{3}-2 x-5=0\) lies in the interval

87612 The value of \(\int_{0}^{6} \frac{d x}{1+x^{2}}\) by choosing six subintervals and by using Simpson's Rule will be

87609 By Newton-Raphson method, the positive root of the equation \(x^{4}-x-10=0\) is

87610 By trapezoidal rule, the approximate value of the integral \(\int_{0}^{6} \frac{\mathrm{dx}}{1+\mathrm{x}^{2}}\) is

87618 Using trapezoidal rule and taking \(n=4\), the approximate value of integral \(\int_{1}^{9} x^{2} d x\) is
\(2\left[\frac{1}{2}\left(1+9^{2}\right)+\alpha^{2}+\beta^{2}+7^{2}\right]\) then

87611 The positive root of equation \(x^{3}-2 x-5=0\) lies in the interval

87612 The value of \(\int_{0}^{6} \frac{d x}{1+x^{2}}\) by choosing six subintervals and by using Simpson's Rule will be

87609 By Newton-Raphson method, the positive root of the equation \(x^{4}-x-10=0\) is

87610 By trapezoidal rule, the approximate value of the integral \(\int_{0}^{6} \frac{\mathrm{dx}}{1+\mathrm{x}^{2}}\) is

87618 Using trapezoidal rule and taking \(n=4\), the approximate value of integral \(\int_{1}^{9} x^{2} d x\) is
\(2\left[\frac{1}{2}\left(1+9^{2}\right)+\alpha^{2}+\beta^{2}+7^{2}\right]\) then

87611 The positive root of equation \(x^{3}-2 x-5=0\) lies in the interval

87612 The value of \(\int_{0}^{6} \frac{d x}{1+x^{2}}\) by choosing six subintervals and by using Simpson's Rule will be

87609 By Newton-Raphson method, the positive root of the equation \(x^{4}-x-10=0\) is

87610 By trapezoidal rule, the approximate value of the integral \(\int_{0}^{6} \frac{\mathrm{dx}}{1+\mathrm{x}^{2}}\) is

87618 Using trapezoidal rule and taking \(n=4\), the approximate value of integral \(\int_{1}^{9} x^{2} d x\) is
\(2\left[\frac{1}{2}\left(1+9^{2}\right)+\alpha^{2}+\beta^{2}+7^{2}\right]\) then

87611 The positive root of equation \(x^{3}-2 x-5=0\) lies in the interval

87612 The value of \(\int_{0}^{6} \frac{d x}{1+x^{2}}\) by choosing six subintervals and by using Simpson's Rule will be

87609 By Newton-Raphson method, the positive root of the equation \(x^{4}-x-10=0\) is

87610 By trapezoidal rule, the approximate value of the integral \(\int_{0}^{6} \frac{\mathrm{dx}}{1+\mathrm{x}^{2}}\) is

87618 Using trapezoidal rule and taking \(n=4\), the approximate value of integral \(\int_{1}^{9} x^{2} d x\) is
\(2\left[\frac{1}{2}\left(1+9^{2}\right)+\alpha^{2}+\beta^{2}+7^{2}\right]\) then

87611 The positive root of equation \(x^{3}-2 x-5=0\) lies in the interval

87612 The value of \(\int_{0}^{6} \frac{d x}{1+x^{2}}\) by choosing six subintervals and by using Simpson's Rule will be