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Question

Total number of values of a so that x2xa=0 has integral roots, where aN and 6a100, is equal to

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Solution

x2xa=0
D=1+4a which is odd.
So, for integral roots, D must be a perfect square for some odd integer.
Let D=(2k+1)2 where k=0,1,2,...
1+4a=4k2+4k+1
a=k(k+1)
Since, 6a1002k9
Therefore, possible values of a are 6,12,20,30,42,56,72,90

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