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Re: 1 i 2
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From: |
slaythemall |
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Subject: |
Re: 1 i 2 |
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Date: |
Wed, 22 Jun 2016 01:12:46 -0700 (PDT) |
no to nie wiem. Ja bym dał coś takiego:
function [i, w] = zad_2()
suma = 0;
n = 1;
while (1)
w = n * sqrt(n + 3) /(2^n)
suma += w;
if (suma < 4.8)
i = n
return;
endif
n += 1;
endwhile
endfunction
ale głowy nie dam sobie uciąć
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