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14 March, 16:39

What are the first four solutions to the sequence: f (1) = 4 and f (n) = 2*f (n-1) + 3

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  1. 14 March, 16:54
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    F (1) = 4 is given

    f (2) = 2*f (2-1) + 3

    = 2*f (1) + 3

    = 2*4+3

    = 8+3

    = 11

    f (3) = 2*f (3-1) + 3

    = 2*f (2) + 3

    = 2*11+3

    = 22+3

    = 25

    f (4) = 2*f (4-1) + 3

    = 2*f (3) + 3

    = 2*25+3

    = 50+3

    = 53

    f (5) = 2*f (5-1) + 3

    = 2*f (4) + 3

    = 2*53+3

    = 106+3

    = 109

    f (1) = 4

    f (2) = 11

    f (3) = 25

    f (4) = 53

    f (5) = 109
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