How can I convert a double variable to uint8 and convert it back to double?
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VILMIL
el 1 de En. de 2021
Respondida: J Chen
el 1 de En. de 2021
I'm doing some simple image processing stuff and during it I faced with a strage problem.
The problem is: 163 is not equal to 163.0000! and I don't know why it happens and how I should fix it.
look at below code to make it more clear:
>> u = W_image(1); d = de(1);
>> d
d =
163.0000
>> u
u =
uint8
163
>> d == u
ans =
logical
0
>> d == double(u)
ans =
logical
0
>> d == cast(u, 'double')
ans =
logical
0
>>
NOTE: W_image and de are two identical matrix just with different types!
My Question: What functions should I use to see result 1 in below code?
>> d == double(uint8(d))
ans =
logical
0
>>
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Respuesta aceptada
Image Analyst
el 1 de En. de 2021
d is not 163. It probably has some digit way out in the 7th or 8th decimal place. If you want a perfect integer, just round it
fprintf('d really equals 0.20f\n', d);
d = round(d);
See the FAQ:
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Más respuestas (2)
Walter Roberson
el 1 de En. de 2021
NOTE: W_image and de are two identical matrix just with different types!
No they are not.
You are using format short ,which has the property that values which are exact integers are displayed without decimal points. d is not exactly 163
Use
format long g
d - 163
to see the difference.
Any time that you have values computed different ways, they will not necessarily be equal. For example 29/7*7-29 = 3.5527136788005e-15
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J Chen
el 1 de En. de 2021
Very interesting. In R2019b, I got
>> d = 163.0
d =
163
>> d == double(uint8(d))
ans =
logical
1
>> d == (uint8(d))
ans =
logical
1
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