Problem 10 of MATLAB cody challenge

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NAVNEET NAYAN
NAVNEET NAYAN il 28 Lug 2018
Modificato: Guillaume il 2 Feb 2020
I was trying to solve this question in cody challenge: Problem 10. Determine whether a vector is monotonically increasing. I tried following code:
i=1;
while i<length(x)
if x(i)<=x(i+1)
tf='true';
else
tf='false';
break;
end
%
i=i+1;
end
When I am running this piece of code on MATLAB editor everything is Ok. But when I am submitting this, incorrect answer results. Format to make a function for this problem is given as:
function tf = mono_increase(x)
tf = false;
end
Can anyone sort it out?

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Risposta accettata

Dennis
Dennis il 30 Lug 2018
There are a few problems with your solution:
  1. You need to return true/false - not as string
  2. You compare values to be bigger or equal -> [1 1 1] is not increasing, but your solution return true
  3. Your solution wont work with single values, because x(i+1) does not exist
A working solution based on your approach might look like this:
if length(x)==1
tf=true;
else
i=1;
while i<length(x)
if x(i)<x(i+1)
tf=true;
else
tf=false;
break;
end
%
i=i+1;
end
end
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Guillaume
Guillaume il 30 Lug 2018
Modificato: Guillaume il 30 Lug 2018
A proper implementation in matlab would do this without a loop (e.g. see Paolo's answer). If you were to implement this with a loop, the following would be cleaner:
function tf = mono_increase(x)
tf = true;
for idx = 2:numel(x)
if x(idx) <= x(idx-1)
tf = false;
break; %for a better cody score, omit this line. for a better implementation, keep it!
end
end
end
Any loop implementation will score very poorly on cody.
NAVNEET NAYAN
NAVNEET NAYAN il 31 Lug 2018
thanks Guillaume for the worthy suggestions.

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Più risposte (2)

Paolo
Paolo il 28 Lug 2018
You can use:
all(diff(x)>0)
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Guillaume
Guillaume il 30 Lug 2018
Most of the very low scoring solutions no longer work. The two 9 overwrite assert.m with a system command. The 10s use regexp with a dynamic regular expression to execute code and bypass assignment to the function with the so-called ans trick.
For better or for worse, the score of a cody solution only depends on the number of nodes in the parse tree of the code. You can see the parse tree of code with the undocumented mtree class.
t = mtree('tf = all(diff(x)>0)');
t.rawdump
t = mtree('tf = issorted(x, ''strictascend'')');
t.rawdump
%also
%t = mtree('-filename', 'nameoffile.m')
There are plenty of tricks to get low score. Command form, if possible, cost less than function form. A char array regardless of its length only cost one so stuffing code in text helps. Compare:
str2num 1+2+3+4 %command form cheaper than function for
mtree('str2num 1+2+3+4')
1+2+3+4
mtree('1+2+3+4')
Omitting assignment using ans also helps:
%score 11:
function ans = mono_increase(x)
issorted(x, 'strictascend'); %no assignment so result is assigned to ans
end
As demonstrated above, low scoring solutions are rarely good matlab code and are often inefficient. They are optimised for the scoring system, not for the speed of execution or readability.
Paolo
Paolo il 1 Ago 2018
Thanks for the detailed answer Guillaume.
Very interesting indeed, those are some cool tricks. Wouldn't have thought people had put all this effort into hacking cody!

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Sriram Nayak
Sriram Nayak il 2 Feb 2020
i=1;
while i<length(x)
if x(i)<=x(i+1)
tf='true';
else
tf='false';
break;
end
%
i=i+1;
end
  1 Commento
Guillaume
Guillaume il 2 Feb 2020
Modificato: Guillaume il 2 Feb 2020
I'm afraid this is is not going to work. The char array `true` and the logical value true are not the same at all.
In term of cody score
i = 1;
while i < endbound
%do something
i = i + 1;
end
is going to score you very badly against the equivalent and much simpler for loop:
for i = 1:endbound
%dosomething
end

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