0 Stimmen

I need help in the the code with alternative to bin2dec function which gives output in the double class
I have been trying but no success. Can anyone help

6 Kommentare
4 ältere Kommentare anzeigen 4 ältere Kommentare ausblenden

Jan
Jan am 7 Mär. 2022
This sounds like a homework question. Then please post, what you have tried so far and ask a specific question.
Hint: To get the first bit, use:
x = 17;
rem(x, 2)
To get the others, you can divide by 2 successively and round.
Haseeb Hashim
Haseeb Hashim am 7 Mär. 2022
I have tried similar to this but we have to divide the resulting quotient form first division. You have given the function which only gives us the remiander. ineed to automate the code.
Haseeb Hashim
Haseeb Hashim am 7 Mär. 2022
Bearbeitet: Haseeb Hashim am 7 Mär. 2022
Oh I get it now, thanks for help man
I think we should use the floor function instead of round to get 3 if answer is 3.5
Jan
Jan am 7 Mär. 2022
This is the floor() function. Another hint: You do not need loops:
x = 17;
y = x ./ [1, 2, 4, 8, 16]
With floor() you get the natural numbers and rem() extracts the first bit. You can express [1,2,4,8] as pow2(0:3).
Haseeb Hashim
Haseeb Hashim am 7 Mär. 2022
Bearbeitet: Rik am 7 Mär. 2022
clc
clear
close all
num = 29;
i = 1;
flag = true;
while flag == true
bin(i) = rem(num,2);
if bin(i) == 0
num = num/2;
if num == 1
bin(i+1) = 1;
break
end
elseif bin(i) ~= 0
num = floor(num/2);
if num == 1
bin(i+1) = 1;
break
end
end
i = i + 1;
end
flip(bin)
I have made this logic and it gives the exactly right answers I was wondering that is there another efficient method which gives me what want but with efficient and easy code
Rik
Rik am 7 Mär. 2022
If you want to improve this code: try to determine the number of bits you need. That way you can use array operations. That removes the need for a loop and prevents dynamically growing your bin array.

Melden Sie sich an, um zu kommentieren.

Melden Sie sich an, um diese Frage zu beantworten.

 Akzeptierte Antwort

Jan
Jan am 7 Mär. 2022
Bearbeitet: Jan am 7 Mär. 2022

0 Stimmen

Some simplifications:
% Replace:
flag = true;
while flag == true
% by
while true
If you have checked for:
if bin(i) == 0
an
else
is enough and there is no reason to check for
elseif bin(i) ~= 0
again. But in your case there is no need to distinguish the 2 cases, because num = floor(num/2) works in all cases. Instead of catching the last bin manually, you can do this in the loop also:
num = 29;
i = 1;
while true
bin(i) = rem(num, 2);
num = floor(num / 2);
if num == 0
break
end
i = i + 1;
end
flip(bin)
Or even simpler: Check the condition instead of breaking an infinite loop:
num = 29;
bin = [];
while num > 0
bin(end+1) = rem(num, 2);
num = floor(num / 2);
end
flip(bin)
The Matlabish way is to omit the loop and to determine the number of bits in advance:
nBit = floor(log2(num)) + 1;
bin = rem(floor(num .* pow2(1-nBit:0)), 2);
Take the time to understand, what's going on here. Run it in pieces:
1-nBit:0
pow2(1-nBit:0)
num .* pow2(1-nBit:0)
floor(num .* pow2(1-nBit:0))

Weitere Antworten (0)

Kategorien

Mehr zu Logical finden Sie in Hilfe-Center und File Exchange

Produkte

Version

R2017a

Tags

Gefragt:

Haseeb Hashim
Haseeb Hashim
am 7 Mär. 2022

Bearbeitet:

Jan
Jan
am 7 Mär. 2022

Community Treasure Hunt

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

Start Hunting!

Translated by