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6

Take a closer look at the javadocs for Scanner.nextInt: This method will throw InputMismatchException if the next token cannot be translated into a valid int value as described below. If the translation is successful, the scanner advances past the input that matched. (emphasis added) If it's not successful, the scanner isn't advanced. That means that ...


6

You're comparing apples to oranges here. Your first algorithm is an iterative bubble sort, and the second is a recursive selection sort. (It's labeled as a bubble sort, but it's actually not. Notice that it works by finding the minimum value and swapping it to the front of the array.) Since you're looking at two totally different algorithms, it's not ...


5

That statement (line 39-40) does nothing. No matter what it evaluates to (either high or nil), the value is not used. Then line 41 evaluates, and (first list) is nil if your list is empty, hence the null pointer exception.


5

Syntactically, the plus function is recursive: clearly, it's calling itself. The interesting question is: what kind of process does it generate? Given that it was written in a tail-recursive fashion (intuitively: there's nothing left to do after the recursive call), we can state that the process it generates is iterative. For a more detailed discussion of ...


4

No need for recursion, you can use closest(): $clickedElement.click(function() { var $parent = $(this).closest('[data-status], [data-state], #main-container'); });


4

You can change the stack size with ulimit on Linux, for example: ulimit -s unlimited On Windows with Visual Studio, use /F option.


4

It isn't, really: (define (convert-base from to n) (let f ([n n] [mul 1] [res 0]) (if (zero? n) res (f (quotient n to) (* mul from) (+ res (* mul (modulo n to))))))) Testing > (convert-base-y 10 2 10) 1010 > (convert-base-y 10 8 64) 100


4

Try this to get all parents of a child ;with name_tree as ( select id, parentid from Users where id = 47897 -- this is the starting point you want in your recursion union all select C.id, C.parentid from Users c join name_tree p on C.id = P.parentid -- this is the recursion -- Since your parent id is not NULL the recursion will ...


4

this is very simple. use a set: import string def getAvailableLetters(lettersGuessed): return set(string.ascii_lowercase) - set(lettersGuessed.lower())


4

When you do: l.append(l) a reference to list l is appended to list l: >>> l = [1, 2] >>> l.append(l) >>> l is l[2] True >>> In other words, you put the list inside itself. This creates an infinite reference cycle which is represented by [...]. To do what you want, you need to append a copy of list l: ...


3

Try this: s1='aabbccdd' s2='abce' l1=list(s1) for c in s2: # c will be each character of the string s2... try: l1.remove(c) # try to remove the character... except ValueError: # Open question: What if the character in c is not in s1? # not specified what 'abc'-'aaa' is or 'abc'-'ace'... # just pass ...


3

The most efficient way to do this is with a Set. Iterate over each character and add them to a set. If the add operation returns false, then the character is already in your set and the String has not-all-unique chars, otherwise all are unique String s = "some string blah blah blah"; Set<Character> set = new HashSet<>(); for (char c : ...


3

Like @Kon said, a Set is (probably) more efficient. However, to use recursion you need to add a termination condition: your function never returns true! A zero or one length string must be unique (well, unique zero-length is a bit ambiguous...): add this at the top: if (s.length() <= 1) { return true; }


3

Recursive function is a function that calls itself. It may call itself directly (A calls A), or indirectly (A calls B, B calls C, C calls A). It's still a recursion.


3

Your function should not depend on external variables. def lenRecur(aStr): ''' aStr: a string returns: int, the length of aStr ''' if aStr == '': return 0 else: return 1 + lenRecur(aStr[1:]) print lenRecur("abcdefq")


3

Break it down condition by condition: if secretWord=="" or lettersGuessed==[]: return False If its empty, then return false. Seems simple enough. if secretWord[0:] in lettersGuessed: return True If the first letter is in secret word, return True. Ok, lets look at the call: isWordGuessed('apple', ['a', 'e', 'i', 'k', 'p', 'r', 's']) Well, ...


3

You are adding zeros. You have to add N1 + 1 to your sum and change stop condition int inbetween_sum (int N1, int N2) { int sum1 = 0; if (N1 + 1 >= N2) { return sum1; } sum1 += N1 + 1 + inbetween_sum (N1+1, N2); return sum1; } Also initializing sum1 to 0 and then using += is not clear. Your code can be refactored to: int ...


3

the < function can only compare numbers so a very straightforward approach is to use an or to ensure they are numbers. Also the second and third if statements had the closing ) in the wrong spots. user> (defn my-max ([list] (if (empty? list) -1 (my-max (pop list) (first list)))) ([list high] (if ...


3

There are many ways to do it,Try this way simply $result = call_user_func_array('array_merge', $array); echo "<pre>"; print_r($result); echo "</pre>";


3

As i said before i enjoyed this question. I know you already accepted an answer, but I decided to post my final response as it also returns the percentile without client effort ( which means you can also do a SET on the nodes to update the value in the db when you need to ) and of course if for any other reason as one i can come back to :) here is the link ...


2

You need to actually return the value of the recursive call: return gcdRecur(b, a%b) def gcdRecur(a, b): if b == 0: return a else: return gcdRecur(b, a%b)


2

In your loop, you are using fib_seq(x) and it should be fib_seq(i) Also, if you want to reduce time a bit more, you can use memoization technique def fib_seq(n): if n == 0: return n elif n == 1: return n else: return fib_seq(n-1) + fib_seq(n-2) def memoize(fn, arg): memo = {} if arg not in memo: memo[arg] = fn(arg) ...


2

Why are you using recursion? your code is recalculating the ENTIRE fibonnaci sequence over and over and over and over and over... The code just wants the sum of the even terms. There is NO need for recursion. In pseudo-code: t1 = 1 t2 = 2; sum = 2; do { t3 = t1 + t2; if (t3 is even) { sum += t3; } t1 = t2; t2 = t3; } while (t2 <= ...


2

Fibonacci sequence is often used as an example of how to write recursive code, which is ridiculous because it has a very straight-forward iterative solution: def fib(n): if n < 2: return n else: a, b = 1, 1 for _ in range(2, n): # O(n) a, b = b, a+b return b What is less obvious is that it also has ...


2

The recurrence relation should be T(n) = 2T(n/2) + cn Then from this answer you can solve your recurrence relation. Let's assume that cn = Θ(1) T(n)=2T(n/2)+Θ(1) =2T(n/2)+k =2{2T(n/4)+k)+k =4T(n/4)+3k =... =n.T(1)+(n-1)k =n.k+(n-1)k =2nk-k =O(n).


2

def oneCount(n): n = str(n) # Here, you check if the entire string is '1'. # Not sure if you mean to check if a single digit is '1'. if n == '1': return 1 else: # If the entire string is not '1', you recur on all but the least significant digit. return 1 + oneCount(n[:-1]) print oneCount(1100) Walk: ...


2

The easies way would be creating second function: void mainFunction(vector<...> &v) { prepareVector(v); printVector(v); } void prepareVector(vector<...> &v) { //your recursive code here } Second option is adding some parameter for determining if this is first call or not: void recursiveFunction(vector<...> &v, ...


2

You can go through the elements using a RecursiveIteratorIterator: function listRolesRecursive($myArray) { $res = array(); $iterator = new RecursiveIteratorIterator(new RecursiveArrayIterator($myArray), RecursiveIteratorIterator::SELF_FIRST); foreach ($iterator as $k => $v) { if($k === "role_id") { $res[] = $v; } ...


2

Conversions from a floating-point type to an integer type round toward zero. If you have a floating point value that is very close to 123...but not quite, you'll lose all of that fractional value and end up with 122. That applies here. value += (str[0] - '0')*pow(10,count); Try making a very rudimentary integer version of pow for your function to use. ...


2

Yeah, your function has a slight issue with it: :-) You're recursing into threes instead of cubes. You're trying to call cons with one argument (it requires two). You're not changing the value of lst in the recursion, so, since the base case returns lst, you'll always get the initial lst value you passed in. Here's a fixed version: (defun cubes (dec ...



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