REGULARIZING - translation to αραβικά
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REGULARIZING - translation to αραβικά

TECHNIQUE IN MATHEMATICS, STATISTICS, AND COMPUTER SCIENCE TO MAKE A MODEL MORE GENERALIZABLE AND TRANSFERABLE
Regularization (machine learning); Model regularization; Regularizing function; Regularizers for sparsity; Regularizers for multitask learning
  • The green and blue functions both incur zero loss on the given data points. A learned model can be induced to prefer the green function, which may generalize better to more points drawn from the underlying unknown distribution, by adjusting <math>\lambda</math>, the weight of the regularization term.
  • Elastic net regularization
  • A comparison between the L1 ball and the L2 ball in two dimensions gives an intuition on how L1 regularization achieves sparsity.

REGULARIZING      

ألاسم

جُنْدِيٌّ نِظَامِيّ

الصفة

مُتَّسِق ; مُتَجَاوِب ; مُتَسَاوِق ; مُتَنَاسِق ; مُتَنَاغِم ; مُرَتَّب ; مُسْتَوٍ ; مُطَّرِد ; مُنْتَظِم ; مُنْسَجِم ; مُنَضَّد ; مُنَظَّم ; مَنْظُوم ; نَضِيد ; نِظَامِيّ

جعله نظاميا      
regularize
جعل طبقاً للأصول      

regularization

Βικιπαίδεια

Regularization (mathematics)

In mathematics, statistics, finance, computer science, particularly in machine learning and inverse problems, regularization is a process that changes the result answer to be "simpler". It is often used to obtain results for ill-posed problems or to prevent overfitting.

Although regularization procedures can be divided in many ways, the following delineation is particularly helpful:

  • Explicit regularization is regularization whenever one explicitly adds a term to the optimization problem. These terms could be priors, penalties, or constraints. Explicit regularization is commonly employed with ill-posed optimization problems. The regularization term, or penalty, imposes a cost on the optimization function to make the optimal solution unique.
  • Implicit regularization is all other forms of regularization. This includes, for example, early stopping, using a robust loss function, and discarding outliers. Implicit regularization is essentially ubiquitous in modern machine learning approaches, including stochastic gradient descent for training deep neural networks, and ensemble methods (such as random forests and gradient boosted trees).

In explicit regularization, independent of the problem or model, there is always a data term, that corresponds to a likelihood of the measurement and a regularization term that corresponds to a prior. By combining both using Bayesian statistics, one can compute a posterior, that includes both information sources and therefore stabilizes the estimation process. By trading off both objectives, one chooses to be more addictive to the data or to enforce generalization (to prevent overfitting). There is a whole research branch dealing with all possible regularizations. In practice, one usually tries a specific regularization and then figures out the probability density that corresponds to that regularization to justify the choice. It can also be physically motivated by common sense or intuition.

In machine learning, the data term corresponds to the training data and the regularization is either the choice of the model or modifications to the algorithm. It is always intended to reduce the generalization error, i.e. the error score with the trained model on the evaluation set and not the training data.

One of the earliest uses of regularization is Tikhonov regularization, related to the method of least squares.

Παραδείγματα από το σώμα κειμένου για REGULARIZING
1. Abdul Rahman Al–Tuwaijri, acting chairman of the Capital Market Authority, will open a forum on April 17 on regularizing financial and banking companies.
2. It was set by a statute that passed Congress in 1845, regularizing what had been various voting days in different states." And why Tuesday?
3. "I do think it will help if something can be done about the humanitarian situation in Gaza, including about regularizing in some fashion the Rafah crossing," she said.
4. "Of course this will have a negative effect on business, particularly because it prevents companies from regularizing the work status of employees," Somers said.
5. Perhaps now, both parties will agree to reform the nominating system once again: abolishing caucuses, regularizing a rigorous system of national debates, closing open primaries, grabbing power back from the media and so on.