Solution 2.1:1b

From Förberedande kurs i matematik 2

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The graph of the function <math>y=2x+1</math> is a straight line which cuts the ''y''-axis at <math>y=1</math> and has slope 2.
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<center> [[Image:2_1_1b-1(2).gif]] </center>
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The integral's value is the area under the straight line and between <math>x=0</math>
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and <math>x=1</math>.
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[[Image:2_1_1_b1.gif|center]]
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We can divide up the region under the graph into a square and rectangle,
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[[Image:2_1_1_b2.gif|center]]
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and then add up the area to obtain the total area.
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The value of the integral is
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{{Displayed math||<math>\begin{align}
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\int\limits_{0}^{1} (2x+1)\,dx
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&= \text{(area of the square)} + \text{(area of the triangle)}\\
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&= 1\cdot 1 + \frac{1}{2}\cdot 1\cdot 2 = 2\,\textrm{.}
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\end{align}</math>}}

Current revision

The graph of the function \displaystyle y=2x+1 is a straight line which cuts the y-axis at \displaystyle y=1 and has slope 2.

The integral's value is the area under the straight line and between \displaystyle x=0 and \displaystyle x=1.

We can divide up the region under the graph into a square and rectangle,

and then add up the area to obtain the total area.

The value of the integral is

\displaystyle \begin{align}

\int\limits_{0}^{1} (2x+1)\,dx &= \text{(area of the square)} + \text{(area of the triangle)}\\ &= 1\cdot 1 + \frac{1}{2}\cdot 1\cdot 2 = 2\,\textrm{.} \end{align}

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