Borrar filtros
Borrar filtros

image arithmetic result not the same

2 visualizaciones (últimos 30 días)
Aaron Connell
Aaron Connell el 26 de Feb. de 2018
Comentada: Aaron Connell el 26 de Feb. de 2018
Good evening, I have a question about image arithmetic. Below is some code that reads in a grayscale image and performs arithmetic on it. I want to know why the modified image does not look the same when we essentially divided the image pixels by 64 and then multiplied the result by 64. the resulting image should have been identical. Below is the image of the result:
b=imread('blocks.jpg');
class(b); %shows it is a uint8 image
b2=(b/64)*64;
subplot(1,2,1)
imshow(b)
title('original image')
subplot(1,2,2)
imshow(b2)
title('modified image')

Iniciar sesión para responder a esta pregunta.

Respuesta aceptada

Walter Roberson
Walter Roberson el 26 de Feb. de 2018
>> uint8(65)/64
ans =
uint8
1
>> uint8(63)/64
ans =
uint8
1
we deduce from this that when you do arithmetic on an int8 or uint8, the result is always as if you had done the arithmetic in double precision, then rounded it, and converted back to the data type.
>> uint8(round(double(uint8(65))/double(64)))
ans =
uint8
1
>> uint8(round(double(uint8(63))/double(64)))
ans =
uint8
1

Más respuestas (1)

Steven Lord
Steven Lord el 26 de Feb. de 2018
How many unique values can the results of (b/64)*64 take on?
b = intmin('int8'):intmax('int8');
b2 = (b/64);
unique(b2)
Read this page for a description of why the list of unique values in b2 is so short.
  1 comentario
Aaron Connell
Aaron Connell el 26 de Feb. de 2018
Thank you very much I had no idea about the unique function. That gave me a clear answer.

Iniciar sesión para comentar.

Categorías

Más información sobre Geometric Transformation and Image Registration en Help Center y File Exchange.

Etiquetas

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by