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www.mathcentre.ac.uk/.../trig-anim-1.mp4

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    Pythagoras theorem says that for
    any right angle triangle area,
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    see the area of the square of
    the hypotenuse equals A plus B.
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    The some of the areas of the
    other two squares.
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    But how could we prove this?
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    Let's start by making a second
    copy of the diagram.
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    On the left hand copy will
    draw this square. It just
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    surrounds the square on the
    hypotenuse.
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    And on the right-hand copy will
    draw this square.
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    Again, it just surrounds the
    squares on the other two sides.
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    Now these two knew squares we've
    drawn are both the same size.
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    In each case, the side of the
    new square has length little A
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    plus littleby. The sum of the
    length of the two shorter sides
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    of the triangle.
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    But now.
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    Look at the areas of
    these two new squares.
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    The one on the left is made up
    of square, see.
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    Plus 4 copies.
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    Of the triangle.
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    The one on the right is made up
    of squares A&B.
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    Plus 4 copies.
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    Of the triangle.
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    But they're both the same area.
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    C plus four triangles.
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    Equals area A plus area B
    plus four triangles.
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    So area C equals area A
    plus area be.
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    And that's Pythagoras theorem.
Title:
www.mathcentre.ac.uk/.../trig-anim-1.mp4
Video Language:
English

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