Write a function called day_diff that takes four scalar positive integer inputs, month1, day1, month2, day2. These represents the birthdays of two children who were born in 2015. The function returns a positive integer scalar that is equal to the dif
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I can't deal it anymore. I have trouble to check an integer number or an array number in order to input argument in this problem .
function dd = day_diff(month1, day1, month2, day2)
if (month1 && day1 >0)&&(month1
if true
% code
end <= 12)&&(month2 && day2 >0) && month2 <= 12
if isinteger(month1 &&
if (month1 == 1 && month2 == 1)||(month1 == 3 && month2 == 3)||(month1 == 5 && month2 == 5)||(month1 == 7 && month2 == 7)||(month1 == 8 && month2 == 8)||(month1 == 10 && month2 == 10)||(month1 == 12 && month2 == 12) && day1<=31 && day2<=31
if day1 == day2
total1 = day1;
total2 = day2;
elseif day1 ~= day2
total1 = max(day1,day2);
total2 = min(day1,day2);
end
elseif (month1 == 4 && month2 == 4) ||(month1 == 6 && month2 == 6)||(month1 == 9 && month2 == 9)||(month1 == 11 && month2 == 11) % months have 30 days
if day1 == day2 && day1<=30 && day2<30
total1 = day1;
total2 = day2;
elseif day1 ~= day2 && day1<=30 && day2<30
total1 = max(day1,day2);
total2 = min(day1,day2);
else
dd=-1; return
end
elseif month1 == 1 && month2 ==2
total1 = day1;
total2 = day2+31;
elseif (month1 == 2 && day1<=28) && month2 == 1
total1 = day1 + 31;
total2 = day2;
elseif (month1 == 2 && day1>28) && month2 == 1
dd=-1;
return
elseif month1 == 1 && month2 == 12
total1 = day1;
total2 = day2 + 334;
elseif month1 == 2 && month2 == 3
total1 = day1 + 31;
total2 = day2 + 59;
elseif month1 == 1 && day1<=31&& month2 == 4
total1 = day1;
total2 = day2 + 90;
elseif month1 == 1 && day1>31 && month2 == 4
dd=-1; return
elseif month1 == 11 && day1<=30 && month2 == 12
total1 = day1 ;
total2 = day2 + 30;
elseif month1 == 11 && day1>30 && month2 == 12
dd=-1;
return
elseif month1 == 7 && month2 == 9
total1 = day1 + 181;
total2 = day2 + 243;
elseif month1 == 2 && day1<=28 && month2 == 6 && day2>30
dd=-1; return
elseif month1 == 2 && day1<=28 && month2 == 6 && day2<=30
total1 = day1;
total2 = day2 + 92;
end
dd = (max(total1,total2)) - (min(total1,total2));
else
dd = -1;
return
end
end
Answers (4)
Image Analyst
on 26 Nov 2016
0 votes
Why not make your function just be a wrapper for etime()? Did they specifically prohibit using that function?
4 Comments
ledinh lam
on 27 Nov 2016
champions2015
on 26 Aug 2017
whats the 'floor' for? what difference does it make with using 'fix'?
Image Analyst
on 26 Aug 2017
Floor rounds down to minus infinity. Fix rounds towards zero. They give different results when operating on negative numbers.
champions2015
on 26 Aug 2017
I see, thanks very much!
Here there is more basic solution:
function dd = day_diff(m1, d1, m2, d2)
A = [31 28 31 30 31 30 31 31 30 31 30 31]';
day1 = d1 + sum(A(1:(m1-1)));
day2 = d2 + sum(A(1:(m2-1)));
if prod(size(m1)) ~= 1 || prod(size(m2)) ~= 1 || prod(size(d1)) ~= 1 || prod(size(d2)) ~= 1
dd = -1;
elseif m1 < 1 || m2 < 1 || d1 < 1 || d2 < 1 || m1 ~= floor(m1) || m2 ~= floor(m2) || d1 ~= floor(d1) || d2 ~= floor(d2)
dd = -1;
elseif A(m1) < d1 || A(m2) < d2
dd = -1;
else
dd = abs(day2-day1);
end
end
4 Comments
Raunil Raj
on 6 Mar 2018
%to avoid matrix input for day and month
if prod(size(m1)) ~= 1 || prod(size(m2)) ~= 1 || prod(size(d1)) ~= 1 || prod(size(d2)) ~= 1
dd = -1;
%To avoid negative and rational numbers as input for month & day
elseif m1 < 1 || m2 < 1 || d1 < 1 || d2 < 1 || m1 ~= floor(m1) || m2 ~= floor(m2) || d1 ~= floor(d1) || d2 ~= floor(d2)
dd = -1;
elseif A(m1) < d1 || A(m2) < d2
dd = -1;
What case would the last one be? I do not understand the logic. Please help!
Steven Lord
on 6 Mar 2018
If you want to check if something is a scalar, don't compute prod(size(...)). Use the isscalar function instead.
Raunil Raj
on 7 Mar 2018
Thank you for you response but I actually wanted to know the logic behind this:
elseif A(m1) < d1 || A(m2) < d2
dd = -1;
Image Analyst
on 8 Mar 2018
It says to set dd equal to minus one if A is less than d1 at the m1 index, or if A is less than d2 at the m2 index.
Vignesh M
on 4 May 2018
if true
function [ dd ] = day_diff( m1,d1,m2,d2 )
% Short circuiting!
N = [31,28,31,30,31,30,31,31,30,31,30,31];
if isscalar(m1) && isscalar(d1) && isscalar(m2) && isscalar(d2) && ... m1 == fix(m1) && d1 == fix(d1) && m2 == fix(m2) && d2 == fix(d2) &&... m1 > 0 && m1 <= 12 && m2 > 0 && m2 <= 12 && ... d1 > 0 && d1 <= N(m1) && d2 > 0 && d2 <= N(m2)
day1 = d1 + sum(N(1:1:m1-1));
day2 = d2 + sum(N(1:1:m2-1));
dd = abs(day1-day2)
else
dd = -1
end
end
RAMAKANT SHAKYA
on 8 Feb 2019
function dd=day_diff(m1,d1,m2,d2)
num_of_days=[31,28,31,30,31,30,31,31,30,31,30,31];
dd=-1;
mmm1=round(m1);mmm2=round(m2);ddd1=round(d1);ddd2=round(d2);
if(isscalar(d1)&&isscalar(d2)&&isscalar(m1)&&isscalar(m2)) % checking for valid input
if(d1-ddd1 || d2-ddd2 || m1-mmm1 || m2-mmm2) % checking for valid input
dd=-1;
else
if (m1<1||m1>12||m2<1||m2>12) %checking months
dd=-1;
else
if(d1>num_of_days(m1) || d2>num_of_days(m2) || d1<1 || d2<1) %validating days of respective month
dd=-1;
else
dd1=sum(num_of_days(1:m1));
dd1=dd1+d1-num_of_days(m1);
dd2=sum(num_of_days(1:m2));
dd2=dd2+d2-num_of_days(m2);
if(dd1>=dd2)
dd=dd1-dd2;
else
dd=dd2-dd1;
end
end
end
end
end
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