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kandi X-RAY | DOMinate Summary
A DOM building utility and Template engine build upon JsonML with syntax sugar.
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QUESTION
I'm trying to make a string that will write itself letter by letter until completing the sentence, and the speed of appearing each letter is based on an input that varies from 1 to 10. At the end of the string, it will blink for 5 seconds until that an alien will appear. My idea was to create a setInterval to add the letters and when the counter added the array size it would return the final animation of the loop with the new setInterval call, and before it was called again it had already been cleared, and called again in a recursion by setTimout callback to maintain the infinite loop. But it's not reaching setTimout, why?
//script.js
...ANSWER
Answered 2021-Jun-14 at 23:37The issue is that in the else
statement, you are returning a function that is never called.
QUESTION
I would like a function bool dominates(const std::tuple& t1, const std::tuple& t2)
which returns true
iff tuple t1
dominates tuple t2
, i.e. for all i
, t1[i] <= t2[i]
, in contrast with the default <=
operator which uses a lexicographic comparison.
I've tried to adapt the answer from this question, but without success. It fails at compilation.
...ANSWER
Answered 2021-May-16 at 17:22I was able to make it work in C++11, but only by manually reinventing C++14's std::integer_sequence
, and losing constexpr
-ability:
QUESTION
I need help understanding whats wrong here.
I will try to explain this as best I can, but Im a bit new to PythonAnywhere. I get this error:
...ANSWER
Answered 2021-Apr-08 at 08:14Check if your web app on PythonAnywhere is set up to be run by Python 2.7 -- I see you're using pip install
outside of a virtual environment which by default will use pip for Python 2.7 as you can see in the output (btw. it won't work on PythonAnywhere, you need to provide --user
option). If you want to install packages outside of virtual environment for different version of Python, use pipX.X install --user ...
(where X.X
should be replaced by required Python version). Also, remember to reload the web app every time the setup is changed. And if you're really stuck, maybe try contacting PythonAnywhere support (support@pythonanywhere.com) or use their forums?
QUESTION
I'm having an ONNX model, which I can successfully convert to TF with TF 2.4.1. But when it comes to the conversion of that saved model to TFLite an error happens.
The code:
...ANSWER
Answered 2021-Apr-24 at 07:48Is it possible to share your the saved model directory to me? I can help debugging.
The general advise is that, there are two possibilities that
(1) TF Lite converter may not handle the saved model correctly.
(2) onnx conversion tool may not create a valid TF saved model.
Using the recent TF version (2.5 or tf-nightly) might help resolve this problem in the (1) case but it's not guaranteed.
I confirmed that the tf-nightly version could convert the attached saved model without any issue:
QUESTION
I would like to create a function, that for a given 1d
-tensor outputs the mask, where on the places, corresponding to the top k
values there are 1
and 0
elsewhere.
Namely, I have for example:
ANSWER
Answered 2021-Apr-20 at 15:59I'd go for finding the top K value, following by a size comparison
QUESTION
I was following this Python course held by MIT (6.0001 Fall 2016) and during one of his lectures, the professor described the function which returns True
if an element (e) is in a list (L), False
otherwise:
ANSWER
Answered 2021-Apr-03 at 10:45Taking a list slice has the cost O(m) where m is the size of the slice. This is because it has to create a new list of size m and populate its entries.
On the first call, the slice is of size n/2. Inside the first recursive call, the slice taken is now of size n/4. And it continues to be reduced by 1/2 on each recursive call.The total cost of taking slices is therefore: O(n/2 + n/4 + n/8 + ...) = O(n) (by taking the sum of the geometric series).
QUESTION
I have to carry out a challenge that involves the elaboration of an algorithm to compute the Pareto (set) boundary. The statement is basically:
Given a set S of n points in the square [0,1] x [0,1], make an algorithm to determine the subset P contained in S, formed by the non-dominated points of S.
It is also said that it is easy to elaborate an algorithm of the order n*n point comparisons that accomplish this purpose. Well I came up with an algorithm by researching here and there. The challenge is still to implement an algorithm of the order n*log(n). How do I get the order of these algorithms?
Thanks in advance!
...ANSWER
Answered 2021-Mar-30 at 02:21The intuition behind the efficient greedy solution to this problem lies in the fact that a point i
is dominated by point j
iff x[i] > x[j]
and y[i] > y[j]
, which implies that j
must come before i
when the points are ordered by either coordinate. Hence, if we traverse the points in increasing order of their x-coordinates, then the point j
(if any) that dominates point i
must have been traversed before point i
is traversed. In other words, it is impossible for the dominating point j
to come after the dominated point i
in this ordering.
Thus, with this traversal order the domination problem (i.e. checking if a point is dominated by some other point) boils down to checking if we have already seen a point with a lower y-coordinate as the traversal order already enforces the x-coordinate condition. This can easily be done by checking each point's y-coordinate to the lowest (minimum) y-coordinate we have seen so far -- if the minimum y-coordinate is less than the current point i
's y-coordinate then the point j
with the minimum y-coordinate dominates i
as x[j] < x[i]
because j
was seen before i
.
Sorting by the x-coordinate takes O(n log n)
time and checking each point (while maintaining the partial minimum y-coordinate) takes O(n)
time, making the entire algorithm take O(n log n)
time.
QUESTION
Edit 2: Updated to take care of the problems from the dput output.
I don't know why the dput output is not working, so here is a roundabout way of sharing the data.
A simple zip file of the data can be downloaded from here: link to zip file
The following code should then represent the data I was trying to share. Note that you will need to replace the path name for the downloaded zip file, and that the parse_file function will create a temporary directory:
...ANSWER
Answered 2021-Mar-28 at 01:10Use map
in parse_text
function so that you get lists separately.
QUESTION
I am trying to understand why transformers use multiple attention heads. I found the following quote:
Instead of using a single attention function where the attention can be dominated by the actual word itself, transformers use multiple attention heads.
What is meant by "the attention being dominated by the word itself" and how does the use of multiple heads address that?
...ANSWER
Answered 2021-Feb-18 at 12:18Multi-headed attention was introduced due to the observation that different words relate to each other in different ways. For a given word, the other words in the sentence could act as moderating or negating the meaning, but they could also express relations like inheritance (is a kind of), possession (belongs to), etc.
I found this online lecture to be very helpful, which came up with this example:
"The restaurant was not too terrible."
Note that the meaning of the word 'terrible' is distorted by the two words 'too' and 'not' (too: moderation, not: inversion) and 'terrible' also relates to 'restaurant', as it expresses a property.
QUESTION
I have implemented Papadimitriou's Algorithmn to solve the two-satisfiability problem in Scala. In order to increase the speed of my algorithm I do a reduction step first which eliminates all clauses where one of the values in the clause only appears either (xor) negated or non-negated throughout the entire clause set.
The algorithm is a local search algorithm that requires a random initial state to be set every loop. Rather than being completely random, I know the state of certain bits from the reduction step. So my code generates an array buffer of the initial state, with its inputs being the total length of the bit set, and a list of the constraints calculated from the reduction step.
Initially my implementation just used the list to check whether a constrain existed for a specific bit, or whether I need to randomly generate the bit:
...ANSWER
Answered 2021-Mar-09 at 22:37The correct answer is in the comments, but an esthete in me can't refrain from noting how much nicer this would look in a actual idiomatic scala :)
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