how the function typecast works when convert double to uint8

31 Ag. 2015
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Actualizado a las 2 Sept. 2015
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I test the function typecast as follows:
z=double(1);
z1=typecast(z,'uint8');
and the results shows the
z1 = 0 0 0 0 0 0 240 63
As to my knowledge, each element in z1 should represent one 8-bit unsigned number. But the sum is not equal to 1.
Does anyone know how the function works and what's the meaning in vector z1?

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Cedric
Cedric el 31 de Ag. de 2015
Editada: Cedric el 31 de Ag. de 2015

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Look at the difference between CAST and TYPECAST, and you will understand what happens in your example.
PS: if you want to understand where these 240(F0) and 63(3F) come from, have a look a this wiki.

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Yucheng Fu
Yucheng Fu el 2 de Sept. de 2015
Thank you for the help. The double format has 64 bit length. This explains exactly what happens to my case. When the typecast convert it to uint8, it should have 8 separate numbers.

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Preguntada:

Yucheng Fu
Yucheng Fu
el 31 de Ag. de 2015

Comentada:

Yucheng Fu
Yucheng Fu
el 2 de Sept. de 2015

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