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Example Questions
Example Question #975 : Spatial Calculus
The velocity function of a particle and a position of this particle at a known time are given by
. approximate
using Euler's Method and three steps.
The general form of Euler's method, when a derivative function, initial value, and step size are known, is:
In the case of this problem, this can be rewritten as:
To calculate the step size find the difference between the final and initial value of and divide by the number of steps to be used:
For this problem, we are told
Knowing this, we may take the steps to estimate our function value at our desired value:
Example Question #976 : Spatial Calculus
The velocity function of a particle and a position of this particle at a known time are given by
. approximate
using Euler's Method and three steps.
The general form of Euler's method, when a derivative function, initial value, and step size are known, is:
In the case of this problem, this can be rewritten as:
To calculate the step size find the difference between the final and initial value of and divide by the number of steps to be used:
For this problem, we are told
Knowing this, we may take the steps to estimate our function value at our desired value:
Example Question #977 : Spatial Calculus
The velocity function of a particle and a position of this particle at a known time are given by
. approximate
using Euler's Method and three steps.
The general form of Euler's method, when a derivative function, initial value, and step size are known, is:
In the case of this problem, this can be rewritten as:
To calculate the step size find the difference between the final and initial value of and divide by the number of steps to be used:
For this problem, we are told
Knowing this, we may take the steps to estimate our function value at our desired value:
Example Question #978 : Spatial Calculus
The velocity function of a particle and a position of this particle at a known time are given by
. approximate
using Euler's Method and three steps.
The general form of Euler's method, when a derivative function, initial value, and step size are known, is:
In the case of this problem, this can be rewritten as:
To calculate the step size find the difference between the final and initial value of and divide by the number of steps to be used:
For this problem, we are told
Knowing this, we may take the steps to estimate our function value at our desired value:
Example Question #979 : Spatial Calculus
The velocity function of a particle and a position of this particle at a known time are given by
. approximate
using Euler's Method and three steps.
The general form of Euler's method, when a derivative function, initial value, and step size are known, is:
In the case of this problem, this can be rewritten as:
To calculate the step size find the difference between the final and initial value of and divide by the number of steps to be used:
For this problem, we are told
Knowing this, we may take the steps to estimate our function value at our desired value:
Example Question #980 : Spatial Calculus
The velocity function of a particle and a position of this particle at a known time are given by
. approximate
using Euler's Method and three steps.
The general form of Euler's method, when a derivative function, initial value, and step size are known, is:
In the case of this problem, this can be rewritten as:
To calculate the step size find the difference between the final and initial value of and divide by the number of steps to be used:
For this problem, we are told
Knowing this, we may take the steps to estimate our function value at our desired value:
Example Question #121 : How To Find Position
The velocity function of a particle and a position of this particle at a known time are given by
. approximate
using Euler's Method and three steps.
The general form of Euler's method, when a derivative function, initial value, and step size are known, is:
In the case of this problem, this can be rewritten as:
To calculate the step size find the difference between the final and initial value of and divide by the number of steps to be used:
For this problem, we are told
Knowing this, we may take the steps to estimate our function value at our desired value:
Example Question #122 : How To Find Position
The velocity function of a particle and a position of this particle at a known time are given by
. approximate
using Euler's Method and three steps.
The general form of Euler's method, when a derivative function, initial value, and step size are known, is:
In the case of this problem, this can be rewritten as:
To calculate the step size find the difference between the final and initial value of and divide by the number of steps to be used:
For this problem, we are told
Knowing this, we may take the steps to estimate our function value at our desired value:
Example Question #123 : How To Find Position
The velocity function of a particle and a position of this particle at a known time are given by
. approximate
using Euler's Method and three steps.
The general form of Euler's method, when a derivative function, initial value, and step size are known, is:
In the case of this problem, this can be rewritten as:
To calculate the step size find the difference between the final and initial value of and divide by the number of steps to be used:
For this problem, we are told
Knowing this, we may take the steps to estimate our function value at our desired value:
Example Question #124 : How To Find Position
The velocity function of a particle and a position of this particle at a known time are given by
. approximate
using Euler's Method and three steps.
The general form of Euler's method, when a derivative function, initial value, and step size are known, is:
In the case of this problem, this can be rewritten as:
To calculate the step size find the difference between the final and initial value of and divide by the number of steps to be used:
For this problem, we are told
Knowing this, we may take the steps to estimate our function value at our desired value:
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