Function to find the next prime number...
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I have a vector of size 1*152.Now i want to find the next prime number of every number present in the vector..
Ex: My vector is a=[2 4 7 8] i want the output as [2 5 7 11]..i.e., if the number is a prime then that number will be the output i.e., like 2 and 7 in the given example...
I tried using nextprime like below it gives the following error:
case 1:
>>nextprime(sym(100))
Undefined function 'nextprime' for input arguments of type 'sym'.
case 2:
>> nextprime(3)
Undefined function 'nextprime' for input arguments of type 'double'.
採用された回答
Basil C.
2018 年 2 月 19 日
Method 1 This functionality does not run in MATLAB and can be used only via MuPAD Notebook Interface.
- To create an MuPAD interface use the following code
mupad
nb = allMuPADNotebooks
Then a interface screen shall pop up where you can proceed by using the nextprime(num) function.
Method 2
- You could also create a user defined function to compute the next prime number. This function takes only a non-negative integers as an argument
function p = nextprime(n)
if (isprime(n))
p=n;
else
while(~isprime(n))
n=n+1;
end
p=n;
end
end
4 件のコメント
The if is not required:
function n = nextprime(n)
n=n+1;
while ~isprime(n)
n=n+1;
end
end
>> n = 1;
>> n = nextprime(n)
n = 2
>> n = nextprime(n)
n = 3
>> n = nextprime(n)
n = 5
>> n = nextprime(n)
n = 7
>> n = nextprime(n)
n = 11
>> n = nextprime(n)
n = 13
>> n = nextprime(n)
n = 17
emmanuel adewumi
2019 年 12 月 21 日
Just a little improvement to the functions written above worked.
function Q = nextprime(n)
if (isprime(n))
Q=n+1;
else
while(~isprime(n))
n=n+1;
end
Q=n;
end
end
Walter Roberson
2019 年 12 月 21 日
No. Consider nextprime(3) . isprime(3) is true, so your code would return the non-prime 4.
function Q = nextprime(n)
if (isprime(n))
n=n+1;
end
while(~isprime(n))
n=n+1;
end
Q=n;
end
However, this can be simplified down to Stephen's code of always adding 1 to n first
Hicham Satti
2020 年 8 月 31 日
%That will run very well
function k=next_prime(n)
if ~n>0 || n~=fix(n) || ~isscalar(n)
error ('Tap a integer positif scalar argument');
else
if isprime(n+1)
k=n+1;
else
j=n+1;
while ~isprime(j)
k=j+1;
j=j+1;
end
end
end
その他の回答 (12 件)
Arafat Roney
2020 年 5 月 11 日
function k=next_prime(n)
i=n+1;
if(isprime(i))
k=i;
else
while(~isprime(i))
i=i+1;
end
k=i;
end
end
3 件のコメント
Walter Roberson
2020 年 5 月 12 日
Your if is not needed, you can go directly to the while,
THIERNO AMADOU MOUCTAR BALDE
2020 年 12 月 19 日
thanks
Kartik rao
2021 年 4 月 21 日
thanks
Walter Roberson
2018 年 2 月 19 日
nextprime() was added to the Symbolic Toolbox in R2016b.
In releases before that,
feval(symengine, 'nextprime', sym(100))
Siddharth Joshi
2020 年 4 月 25 日
function k = next_prime(n)
if (~isscalar(n) || n<1 || n ~= fix(n))
error('n should be positive scalar ineger!!!')
else
p=-1;
while p<=0
n=n+1;
p=isprime(n)
end
k=n
end
end
k = next_prime(79)
k =
83
4 件のコメント
Chaitanya Milampure
2021 年 7 月 28 日
might be a stupid doubt, but why does p<0 and p<=0 make a big difference?
"might be a stupid doubt, but why does p<0 and p<=0 make a big difference?"
Because the author of this code did not understand how to handle logical data in a simpler way. Instead they obfuscated the simple logical condition behind some numeric comparisons: look at what p value is being used for, and what values it can have.
Once the various bugs and "features" are ironed out, all of these answers boil down to the same concept (which is easy to implement in just a few lines, even if not the most efficient approach to finding prime numbers).
Walter Roberson
2021 年 7 月 28 日
isprime() returns 0 (false) or 1 (true). Comparing that as < 0 is going to be false except the first time due to the initialization of p=-1 .
The code would have been better as
function k = next_prime(n)
if (~isscalar(n) || n<1 || n ~= fix(n))
error('n should be positive scalar ineger!!!')
else
p=false;
while ~p
n=n+1;
p=isprime(n);
end
k=n;
end
end
Buwaneka Dissanayake
2020 年 6 月 21 日
% what's wrong with this? it take too long to run & fail
function n = next_prime(n)
k = n+1;
while ~isprime(k)
n = n+1;
end
end
what's wrong with this? it take too long to run & fail.
2 件のコメント
Walter Roberson
2020 年 6 月 21 日
you test if k is prime but you increment n
SAKSHI CHANDRA
2020 年 7 月 22 日
your control statement defines k but there is nothing related in the block statements which would check
~isprime(k)
MD SADIQUE IQBAL
2020 年 7 月 17 日
0 投票
unction n = next_prime(n)
k = n+1;
while ~isprime(k)
n = n+1;
end
end
2 件のコメント
Stephen23
2020 年 7 月 17 日
Fails every basic test:
>> next_prime(1)
ans = 1
>> next_prime(2)
ans = 2
>> next_prime(3) % infinite loop, stop using ctrl+c
>> next_prime(4)
ans = 4
>> next_prime(5) % infinite loop, stop using ctrl+c
>> next_prime(6)
ans = 6
>> next_prime(7) % infinite loop, stop using ctrl+c
I can see the pattern... it is a very big hint as to what the bug is. As is reading this thread.
SAKSHI CHANDRA
2020 年 7 月 22 日
your control statement defines k but there is nothing related in the block statements which would check
~isprime(k)
SAKSHI CHANDRA
2020 年 7 月 22 日
function k = nxt_prime(n)
k=n+1;
while ~isprime(k)
k=k+1;
end
end
Ravindra Pawar
2020 年 8 月 13 日
編集済み: Ravindra Pawar
2020 年 8 月 13 日
0 投票
function k = next_prime(n) %function definition
while ~isprime(n+1) %if n+1 is prime we are out of for loop else loop restarts
n = n+1;
end
k = n+1;
end
shweta s
2020 年 8 月 14 日
%to find the next prime no.
function p = next_prime(n)
if (isprime(n))
p=n+1;
else
while(~isprime(n))
n=n+1;
end
p=n;
end
end
3 件のコメント
Sai Krishna Praneeth Duggirala
2021 年 4 月 15 日
fails when n=3
Rik
2021 年 4 月 15 日
@Sai Krishna Praneeth Duggirala And that is why you should be smart if you want to cheat from this page.
Walter Roberson
2021 年 4 月 15 日
Fails for any prime except 2.
Hicham Satti
2020 年 8 月 31 日
%That will run very well
function k=next_prime(n)
if ~n>0 || n~=fix(n) || ~isscalar(n)
error ('Tap a integer positif scalar argument');
else
if isprime(n+1)
k=n+1;
else
j=n+1;
while ~isprime(j)
k=j+1;
j=j+1;
end
end
end
3 件のコメント
Rik
2020 年 9 月 8 日
Same question here as with your other answers: why are you posting solutions to homework questions? What does it teach?
Since this exact solution has been posted before in this exact thread I will delete this answer if you don't respond to that question.
Hicham Satti
2020 年 9 月 8 日
why the other codes answers are not deleted ??
Rik
2020 年 9 月 8 日
Because I'm just one person trying to clean up thread like this. And you didn't answer my question (neither here, nor on the other next_prime thread).
Pragyan Dash
2020 年 9 月 19 日
function k = next_prime(n)
while (~isprime(n + 1))
n = n + 1;
end
k = n + 1;
end
Malgorzata Frydrych
2021 年 6 月 26 日
function k= next_prime(n)
if ~isscalar(n) || n<=0 || mod(n,1)~=0;
error('number should be a positive integer scalar')
end
k=0;
while ~isprime(k)
n=n+1;
k=n;
end
end
1 件のコメント
Walter Roberson
2021 年 6 月 26 日
Is this efficient? If you are currently at 15, is there a point in testing 16?
Dikshita Madkatte
2021 年 7 月 14 日
編集済み: Dikshita Madkatte
2021 年 7 月 14 日
function k=next_prime(n)
if ~n>0 || n~=fix(n) || ~isscalar(n);
fprintf('n should be positive interger')
end
i=n+1;
if (isprime(i))
k=i;
else
while(~isprime(i))
i=i+1;
end
k=i;
end
end
1 件のコメント
Rik
2021 年 7 月 14 日
A few remarks:
fprintf is not an error. Your code will still run after it fails the check.
You can increment i by two, since 2 is the only even prime, and the while loop will not be reached if n is 1.
You forgot to write documentation for your function. What is this going to teach? Why should it not be deleted?
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