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Koch Square Problem : A(I): index out of bounds; value 4 out of bound 3

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Mohanad Arafae
Mohanad Arafae on 14 Nov 2016
Commented: KSSV on 15 Nov 2016
Can someone please fix my error?

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Answers (1)

Walter Roberson
Walter Roberson on 14 Nov 2016
You use newpointsx(4) and newpointsy(4) before you have assigned anything to those locations. Two lines further on you use the (5) indices too.
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Walter Roberson
Walter Roberson on 14 Nov 2016
Your code has
v=[newpointsx(4);newpointsy(4)]-[newpointsx(2);newpointsy(2)]
vprime = R*v
f=[newpointsx(5);newpointsy(5)]-[newpointsx(3);newpointsy(3)]
fprime = R*f
newpointsx(4) = vprime(1)+newpointsx(2) %Point D
newpointsy(4) = vprime(2)+newpointsy(2)
newpointsx(5) = fprime(1)+newpointsx(3) %Point F
newpointsy(5) = fprime(2)+newpointsy(3)
Notice that you use newpointsx(4) and newpointsy(4) in calculating v, but you do not assign any value to newpointsx(4) or newpointsy(4) until 5 lines later in the code.
You need to assign values to newpointsx(4), newpointsx(5), newpointsy(4), newpointsy(5) before you can use them in calculations.
KSSV
KSSV on 15 Nov 2016
@ Walter Roberson, I apologize, I have not seen all this discussion and in hurry closed the question. I shall be careful next time.

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