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/// Withable is a simple protocol to make constructing | |
/// and modifying objects with multiple properties | |
/// more pleasant (functional, chainable, point-free) | |
public protocol Withable { | |
init() | |
} | |
public extension Withable { | |
/// Construct a new instance, setting an arbitrary subset of properties | |
init(with config: (inout Self) -> Void) { |
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extension UICollectionViewFlowLayout { | |
typealias DelegateMethod<Key, Value> = ((UICollectionView, UICollectionViewLayout, Key) -> Value) | |
private var delegate: UICollectionViewDelegateFlowLayout? { | |
return collectionView?.delegate as? UICollectionViewDelegateFlowLayout | |
} | |
func retrieve<Key, Value>( |
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#include <iostream> | |
#define guard(_condition) if (bool(_condition)){} | |
using namespace std; | |
// Example inside a function | |
template <typename Type> | |
Type biggestNumber(Type* numbers, const size_t& size) { | |
guard(numbers != nullptr) else { |
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# Implementation of a simple MLP network with one hidden layer. Tested on the iris data set. | |
# Requires: numpy, sklearn>=0.18.1, tensorflow>=1.0 | |
# NOTE: In order to make the code simple, we rewrite x * W_1 + b_1 = x' * W_1' | |
# where x' = [x | 1] and W_1' is the matrix W_1 appended with a new row with elements b_1's. | |
# Similarly, for h * W_2 + b_2 | |
import tensorflow as tf | |
import numpy as np | |
from sklearn import datasets | |
from sklearn.model_selection import train_test_split |
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/* | |
Distributed under The MIT License: | |
http://opensource.org/licenses/mit-license.php | |
Permission is hereby granted, free of charge, to any person obtaining | |
a copy of this software and associated documentation files (the | |
"Software"), to deal in the Software without restriction, including | |
without limitation the rights to use, copy, modify, merge, publish, | |
distribute, sublicense, and/or sell copies of the Software, and to |