While loop for sums?
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Add up the squares of all odd positive integers until it equals or exceeds 5 million.
(1^2+3^2...)
2 Comments
Steven Lord
on 1 Dec 2016
Show what you've tried to do to solve the problem and ask a specific question about where you're having difficulty and you may receive some guidance.
Rena Berman
on 20 Jan 2017
(Answers Dev) Restored Question.
Answers (3)
Image Analyst
on 1 Dec 2016
Try this:
theSum = 0; % Initialize
thisNumber = -1;
while theSum < 5000000
thisNumber = thisNumber + .......
theSum = theSum + ......
end
I've given you a start. Please finish the rest of your homework yourself.
sum=0;
k=0;
while(sum<=5*10^6)
if(mod(k,2))
sum=sum+k^2;
end
k=k+1;
end
Next time please try to solve your homework by yourself
5 Comments
Image Analyst
on 1 Dec 2016
I see 3 problems with this.
s.p4m
on 2 Dec 2016
I found one mistake, where I use i instead of k in the mod() function, but everything else seems to be fine.
Image Analyst
on 2 Dec 2016
OK, 4 problems then:
- Using i (imaginary variable) for loop index, like you said.
- Using <= when the user said to quit when the sum hit 5 million. Using <= will do another iteration after it should have stopped. Actually it's not really a problem since 5 million is not an odd integer so it won't increase the sum, but it is another unneeded iteration.
- Using sum, a built in function name, as the name of your variable will prevent you from using the sum function in the same scope. It's never a good idea to blow away/overwrite built-in functions.
- Iterating on every single integer will do twice as many iterations as my solution where I hope the poster figured out that you're supposed to add 2 to the loop index. Plus mod() will slow it down a little bit. It's unnecessary - just add 2 to get only odd integers.
And of course there is the issue of just answering a homework question outright. Our protocol here is not to do homework for people so they can turn in our solution as their own, but to give them hints or starter snippets that they can modify so they at least have some ownership of the solution.
s.p4m
on 2 Dec 2016
Thanks for the answer. You are right with every point.
I didn't know about the rule not to do outher people homework, but I will embrace it from now on.
prin
on 23 Oct 2022
0 votes
jum=100; n = 1; while sum(1:r) > jum
disp(r)
n = n - 1;
1 Comment
Walter Roberson
on 23 Oct 2022
r is not defined. You are missing the "end" of the "while".
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