Using switch to identify even or dd

cgo
20 Juil 2022
3 Réponses
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Mise à jour 20 Juil 2022
18 Vues (30 jours)

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Problem in brief: Print “Odd” if the argument is 1, 3, or 5, “Even” if the argument is 0, 2, or 4, and “Let me get back to you on that one.” for any other value.
function [y] = even_odd(x)
r = mod(x,2);
switch x
case x<=4 && r ==0
fprintf('even \n')
case x<=5 && r == 1
fprintf('odd \n')
otherwise
fprintf('i will get back to you on that \n')
end
end
I dont understand why this function doesn't give the correct response. Please provide insights.

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MJFcoNaN
MJFcoNaN le 20 Juil 2022
Hello,
I will suggest you learn the basic programma of Matlab firstly. There may be significant discrepancy between languages.
cgo
cgo le 20 Juil 2022
this is matlab language. I want to know if there is a mistake in the logic as I am unable to get the intended outputs.

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 Réponse acceptée

Walter Roberson
Walter Roberson le 20 Juil 2022
Modifié(e) : Walter Roberson le 20 Juil 2022
Ran in:

0 votes

Ran in:
even_odd(-88)
even
even_odd(2)
even
even_odd(3)
odd
even_odd(7)
i will get back to you on that
function [y] = even_odd(x)
r = mod(x,2);
switch true
case x<=4 && r ==0
fprintf('even \n')
case x<=5 && r == 1
fprintf('odd \n')
otherwise
fprintf('i will get back to you on that \n')
end
end

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cgo
cgo le 20 Juil 2022
i am unaware of the 'true' statement there. why does it make the code work? Thanks for your insights.
Walter Roberson
Walter Roberson le 20 Juil 2022
Ran in:
Ran in:
The value that you list in the switch statement is compared to the value listed in the case. The values in your case are things like x<=4 && r==0 which is a logical expression, so the values in your case are either true or false so you need to switch on one of true, false, 0, or 1 . You want to select the case that is true, so you have to switch on true
... in practice you do not need that comparison for x inside the switch. You might hypothetically want to test against
fprintf('%ld\n', flintmax)
9007199254740992
which is the largest double precision integer that can be reliably tested for division by 2.

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Plus de réponses (2)

KSSV
KSSV le 20 Juil 2022

0 votes

@cgo
You have only two options x can be either even or odd..that's all.
x = 4 ;
r = mod(x,2);
if r == 0
fprintf('%d is Even\n',x)
else
fprintf('%d is Odd\n',x)
end

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cgo
cgo le 20 Juil 2022
sorry, the problem insists on using switch. I am practising the command since I know if-else already.
KSSV
KSSV le 20 Juil 2022
With switch, case, otherwise
x = 5 ;
r = mod(x,2);
switch r
case 1
fprintf('%d is Odd\n',x)
case 0
fprintf('%d is Even\n',x)
end

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David Hill
David Hill le 20 Juil 2022

0 votes

Look at the function switch, case, otherwise, it does not work as you coded.
function [y] = even_odd(x)
r = mod(x,2);
if x<=4 && r==0
fprintf('even \n')
elseif x<=5 && r==1
fprintf('odd \n')
else
fprintf('i will get back to you on that \n')
end
end

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cgo
cgo le 20 Juil 2022
sorry, the problem insists on using switch. I am practising the command since I know if-else already.

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