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  2. First-order inductive learner - Wikipedia

    en.wikipedia.org/wiki/First-order_inductive_learner

    Like the ID3 algorithm, FOIL hill climbs using a metric based on information theory to construct a rule that covers the data. Unlike ID3, however, FOIL uses a separate-and-conquer method rather than divide-and-conquer, focusing on creating one rule at a time and collecting uncovered examples for the next iteration of the algorithm. [citation ...

  3. FOIL method - Wikipedia

    en.wikipedia.org/wiki/FOIL_method

    The FOIL method is a special case of a more general method for multiplying algebraic expressions using the distributive law. The word FOIL was originally intended solely as a mnemonic for high-school students learning algebra. The term appears in William Betz's 1929 text Algebra for Today, where he states: [2]

  4. Foil - Wikipedia

    en.wikipedia.org/wiki/Foil

    First-order inductive learner – a rule-based learning algorithm; The FOIL method, a mnemonic in algebra, to expand the product of two first-degree polynomials ("linear factors") FOIL (programming language), either of two now-defunct computer programming languages; Forum of Indian Leftists, a political group of Indian intellectuals

  5. Inductive logic programming - Wikipedia

    en.wikipedia.org/wiki/Inductive_logic_programming

    Inductive logic programming has adopted several different learning settings, the most common of which are learning from entailment and learning from interpretations. [16] In both cases, the input is provided in the form of background knowledge B, a logical theory (commonly in the form of clauses used in logic programming), as well as positive and negative examples, denoted + and respectively.

  6. Ross Quinlan - Wikipedia

    en.wikipedia.org/wiki/Ross_Quinlan

    C5.0, which Quinlan is commercially selling (single-threaded version is distributed under the terms of the GNU General Public License), is an improvement on C4.5.The advantages are speed (several orders of magnitude faster), memory efficiency, smaller decision trees, boosting (more accuracy), ability to weight different attributes, and winnowing (reducing noise).

  7. Error tolerance (PAC learning) - Wikipedia

    en.wikipedia.org/wiki/Error_Tolerance_(PAC_learning)

    Statistical Query Learning [8] is a kind of active learning problem in which the learning algorithm can decide if to request information about the likelihood () that a function correctly labels example , and receives an answer accurate within a tolerance .

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  9. Rules extraction system family - Wikipedia

    en.wikipedia.org/wiki/Rules_extraction_system_family

    Covering algorithms, in general, can be applied to any machine learning application field, as long as it supports its data type. Witten, Frank and Hall [20] identified six main fielded applications that are actively used as ML applications, including sales and marketing, judgment decisions, image screening, load forecasting, diagnosis, and web ...