0 Stimmen

function will recive input Value a and it caluclate its approximate value to e. e=1/e~~(1-1/n)^n. e value that the difference between the approximation and the actual value of e is smaller than err.function should return the corresponding value of n.

Melden Sie sich an, um diese Frage zu beantworten.

Antworten (1)

Image Analyst
Image Analyst am 24 Nov. 2019

0 Stimmen

I don't know what that means. Let's say that a=8, and e=2.718281828. Do you simply want to return an ouput = (exp(1) - a)??? And do you just want to do a while loop, incrementing the value of n, until (1-1/n)^n is less than 1/e ???
n=0;
e1 = 1 / exp(1)
while difference > e1
difference = abs(e1 - (1-1/n)^n);
n = n + 1;
end
n = n - 1; % Undo last addition before the break.

6 Kommentare
4 ältere Kommentare anzeigen 4 ältere Kommentare ausblenden

Roger Nadal
Roger Nadal am 25 Nov. 2019
Bearbeitet: Walter Roberson am 25 Nov. 2019
e is euler number and i/p value should be err. function should calculate an approximation of e using formula such that the difference between the approximation and the actual value of e is smaller than err. The function will then return the corresponding value of n.
Image Analyst
Image Analyst am 25 Nov. 2019
It seems like they want you to compute e by summing a series. See if you can construct a while loop that accumulates a sum and breaks out of the loop when the error gets small enough. I think I've given you a good start above. Just construct the sum of the series.
Roger Nadal
Roger Nadal am 25 Nov. 2019
Function should return the value n and how it will calculate the difference between approximation and the actual value of e is smaller than err?
Image Analyst
Image Analyst am 25 Nov. 2019
Correct. Do a for loop over, say a million iterations and break when the error is less. Since it seems to be homework, here's a hint
theSum = 0;
correctValue = 1 / exp(1); % or exp(1) depending on how you're constructing the series.
minAllowableError = whatever you want.
for n = 1 : 1000000
newTerm = ... compute the nth term.
theSum = theSum + newTerm;
theErrorSoFar = theSum - correctValue
if theErrorSoFar < minAllowableError
% The error is now small enough and we can bail out now.
break.
end
end
fprintf('We did %d iterations and got an error of %f.\n', n, theErrorSoFar)
Roger Nadal
Roger Nadal am 26 Nov. 2019
Not getting the proper answer in function it should receive input value of err and calculate approx value to e and difference of approx and actual e is small than err
Image Analyst
Image Analyst am 26 Nov. 2019
Well, only Walter here has the Mind Reading Toolbox, not me, so let's see what code you have so far, if you still want/need help. What modifications did you make to the snippet I gave you?

Melden Sie sich an, um zu kommentieren.

Kategorien

Mehr zu Programming finden Sie in Hilfe-Center und File Exchange

Tags

Gefragt:

Roger Nadal
Roger Nadal
am 24 Nov. 2019

Kommentiert:

Image Analyst
Image Analyst
am 26 Nov. 2019

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by