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7

You can't. Once the exception happens, the state of the source enumerator is screwed up. If you can't get into the source enumerator to "fix" its state, you can't make it keep producing values. You can, however, make the whole process "stop" after the exception, but you'll have to go a level below and work with IEnumerator<T>: let takeUntilError (sq: ...


7

You can use indexWhere (see ScalaDoc) as follows: (as zip bs).indexWhere{case (x,y) => x != y} Example: scala> val as = List(1,2,3,4) scala> val bs = List(1,2,4,4) scala> (as zip bs).indexWhere{case (x,y) => x != y} res0: Int = 2 However, note that all solutions based on zip may report no differences if one Seq is longer than the other ...


4

If I understand the problem correctly, what you basically try to do is grouping the numbers such that the sum is 4 and you give priority to adding numbers in the queue first. You can do this using a dynamic programming approach. I'm here using a int[] and an int as sum, but the problem can be generalized to work with most datastructures. First you must ...


4

If applying your original formula for n-1 F(n -1) = F(n-2) - F(n -3) Than if I replace F(n-1) in the original F(n) expression F(n) = F(n-2) - F(n -3) - F(n-2) = -F(n - 3) F(n) = - F(n-3) Since the later also is valid if I replace n with n-3 F(n - 3) = - F(n -6) Combining the last two F(n) = -(-F(n-6)) = F(n-6) Thus sequence is cyclical with the ...


3

Another way to approach this problem. Note that F(n) = F(n - 1) - F(n - 2) is the same as F(n) - F(n - 1) + F(n - 2) = 0 which makes it a linear difference equation. Such equations have fundamental solutions a^n where a is a root of a polynomial: suppose F(n) = a^n, then a^n - a^(n - 1) + a^(n - 2) = (a^2 - a + 1)*a^(n - 2) = 0, so a^2 - a + 1 = 0 which has ...


3

This is a little better: (as zip bs).zipWithIndex.collectFirst { case ((a,b),i) if a!=b => i } See: def firstDiff[A,B](as: Seq[A], bs: Seq[B]) = (as zip bs).zipWithIndex.collectFirst { case ((a,b),i) if a!=b => i } firstDiff(Seq(1,2,3,4), Seq(1,2,9,4)) // res1: Option[Int] = Some(2) If you want a and b in the output: (as zip ...


3

The correct answer to this question depends a lot on how you define your priorities. Should we always pick the first group in the line if possible or is the optimal solution to have as many people from the front of the queue? I.e. given 1, 2, 2, 3, 3, 4, 2, 2, 3, 1 is the optimal solution 1, 2, 1 or 1, 3 To get you started, here's a recursive ...


3

You can use the recursion to do the same thing , printStar(int x) { if(x > 0) { System.out.print("*"); printStar(x-1); } } And Call printStar(6) to print it 6 times


2

select BILLER_ONBOARDING_ID_SEQ.NEXTVAL from dual; It might be possible that the dual table is empty. With SYSDB privilege, you could delete/truncate the SYS.DUAL table. However, you will still get the sequence.nextval value even if dual doesn't return any row. The optimizer is somehow sure to always fetch a row from the dual table. SQL> conn ...


2

Try this, select BILLER_ONBOARDING_ID_SEQ.NEXTVAL from SYS.dual; You have a custom table DUAL in your database. And hence, the private synonym might point your version of table, instead of SYS.DUAL. So, Querying DUAL with the schema name SYS, will solve tht. SELECT OWNER,TABLE_NAME FROM ALL_TABLES WHERE TABLE_NAME = 'DUAL'; This query would list a ...


2

For example, the input sequence 1 2 2 3 1 1 1 4 4 is converted into 1 2 3 1 4. It looks like the idea is to remove duplicate numbers that occur adjacent to each other when creating the output. You can do that by just keeping a state variable recording what the previous value was. When you get a new value, compare it to the state value. If it's the ...


2

We could use data.table. Convert the 'data.frame' to 'data.table' (setDT(d1)), convert the 'start' and 'end' to POSIXct class, expand the dataset by getting the seq of 'start' and 'end' columns grouped by 'sth', join with the seq of first and last last observation of 'time', and change the NA elements to ''. library(data.table) res <- ...


2

For a one time skip, SELECT nextval('sequence_name'); This will burn an id and increment the sequence. For doing evens only, CREATE SEQUENCE sequence_name INCREMENT BY 2;


2

GeneratorOf<T>.generate() returns a copy of itself, and in your code, every copy of it shares the same reference to one i So, when you do countDownGen2 = countDownGen.generate() after countDownGen is exhausted, countDownGen2 is also already exhausted. What you should do is something like: func countDown(start: Int) -> SequenceOf<Int> { ...


1

The idea would be to generate two sequences: The ascending items with row numbers 1, 3, 5, ... The descending items with row numbers 2, 4, 6, ... Then, we simply need to UNION ALL the sequences and sort them. with ascItems as ( select *, row_number() over (order by someCol ASC) r * 2 - 1 as r from T ) , descItems as ( select *, row_number() over ...


1

Rails ActiveRecord is supposed to update the object automatically with its new id when it is created. This normally works fine when the sequence and the column are created at the same time, e.g. using the SERIAL type. Merely setting the default value of a column to nextval(sequence_name) is not enough to "bind" the sequence to the column. The solution would ...


1

No, it's not possible: sequence, which is a database object from which multiple users may generate unique integers See this article


1

You just need to use: SUBSTR function concatenation operator || . For example, SQL> CREATE SEQUENCE s; Sequence created. SQL> SQL> SELECT substr(ename, 1, 2)||s.nextval custom_seq FROM emp; CUSTOM_SEQ ------------------------------------------ SM1 AL2 WA3 JO4 MA5 BL6 CL7 SC8 KI9 TU10 AD11 JA12 FO13 MI14 14 rows selected. SQL>


1

I think the representation of code/codon has to be explicit, then protein(annexin,[phe,leu,gly]). code(phe, ['UUU','UUC']). code(leu, ['UUA','UUG']). code(gly, ['GGC','GGU']). rna(X, R) :- protein(X, LC), maplist(code_p, LC, R). code_p(C, R) :- code(C, L), member(R, L). yields ?- rna(annexin, C). C = ['UUU', 'UUA', 'GGC'] ; C = ['UUU', 'UUA', 'GGU'] ; C ...


1

There is a simple programming solution, the key is to use recursion. Firstly determine the minimal k that the length of s_k is more than n, so that n-th digit exists in s_k. According to a definition, s_k can be split into 4 equal-length parts. You can easily determine into which part the n-th symbol falls, and what is the number of this n-th symbol within ...


1

Suppose you define d_ij as the value of the ith digit in s_j. Note that for a fixed i, d_ij is defined only for large enough values of j (at first, s_j is not large enough). Now you should be able to prove to yourself the two following things: once d_ij is defined for some j, it will never change as j increases (hint: induction). For a fixed i, d_ij is ...


1

The digits up to 4^k are used to determine the digts up to 4^(k+1). This suggests writing n in base 4. Consider the binary expansion of n where we pair digits together, or equivalently the base 4 expansion where we write 0=(00), 1=(01), 2=(10), and 3=(11). Let f(n) = +1 if the nth digit is 1, and -1 if the nth digit is 2, where the sequence starts at ...


1

You can loop through the list and add in order until it is larger than the value you are looking for. Code: public static int addListValues(int[] list, int num){//Returns number which can not be added by anything else in the list to be <= num. boolean b[] = new boolean[list.length];//List of numbers already taken care of. True for not, false for ...


1

You will have problems in your createDB() method, if any of your SQL statements generate an error (for example if a table doesn't exist and you try to drop it). At that point your code will jump into the catch block and none of your database objects will be created. You need to wrap each DROP statement in a try/catch block so that any error can be caught ...


1

StringUtils has some methods like below link Commons Lang StringUtils.repeat() The code example is given below String star = "*"; String repeatStar = StringUtils.repeat(star, 6);


1

Try with the Below Code : <?php $i = 0; $sql= mysql_query ("SELECT * FROM employee INNER JOIN cash ON employee.emp_id = cash.emp_id WHERE cash_status='Pending'"); echo "<table id='dataTable' width='850' border='1' align='center'>"; echo "<tr> <th height='50'>No</th> <th height='50'>Employee Number</th> ...


1

You can use Format-Preserving Encryption to encrypt a counter. Pick a symmetric cipher that is crafted to encrypt the numbers up to N. (You can use the proposed scheme of AES-FFX) Then generate a random key with high entropy and start to encrypt the numbers 0, 1, 2, ... upwards. Since the encryption ensures a 1:1 mapping and a good encryption looks random, ...


1

You'll want to go through each entry and put them in a dictionary mapping species names to a list, like species_dict = {} for p in proteins: grab the species name grab the sequence if not species name in species_dict: species_dict[species name] = [sequence] else: if not sequence in species_dict[species name]: ...


1

Is it possible to set the min value = 1, and next val to be 1, after the reset is done? You could do it in two steps: increment_by value one less than the current value of the sequence. reset increment_by back to 1. The logic is that, you shouldn't decrement the sequence back to zero, since the minvalue you want is 1, so, the nextval cannot be less ...



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