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Getting error Operands to the || and && operators must be convertible to logical scalar values.

조회 수: 3 (최근 30일)
Astrik
Astrik 2016년 8월 31일
댓글: Param Siddharth 2020년 4월 23일
I have to check the arguments of my function for a number of cases. The function passes all tests besides the arguments
12, 3, [3 4], 5
The code is as follows
function dd= day_diff(month1, day1, month2, day2)
if month1<1 || month2<1 || day1<=0|| day2<=0 || rem(month1,1)~=0 ||rem(day1,1)~=0 || rem(month2,1)~=0 || rem(day2,1)~=0 || isscalar(month1)~=1 || isscalar(month2)~=1 || isscalar(day1)~=1 || isscalar(day2)~=1
dd=-1;
elseif (month1==2 && day1==29) || (month2==2 && day2==29)
dd=-1;
elseif (eomday(2015,month1)==30 && day1==31) ||(eomday(2015,month2)==30 && day2==31)
dd=-1;
The error I get
>> day_diff(12, 3, [3 4], 5)
Operands to the || and && operators must be convertible to logical
scalar values.
Error in day_diff (line 2)
if (month1<1 || isscalar(month1)~=1) || (month2<1
||isscalar(month1)~=1) || day1<=0|| day2<=0 || rem(month1,1)~=0
||rem(day1,1)~=0 || rem(month2,1)~=0 || rem(day2,1)~=0 ||
isscalar(day1)~=1 || isscalar(day2)~=1
Any help will be appreciated.

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채택된 답변

Star Strider
Star Strider 2016년 8월 31일
The short-circuit operators don’t work with vector arguments. Replace them with single ‘|’ and ‘&’ and see if that solves the problem.

추가 답변 (1개)

Steven Lord
Steven Lord 2016년 8월 31일
month2 = [3 4];
z = month2 < 1
Is z a logical scalar value? In order to be a logical scalar value, it must be BOTH logical (check this with the class function) AND scalar (check with isscalar.)
Reorder your error checking to check that the input are scalar first. Once you know your inputs are scalar, then you can check their values.

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