Source code for abydos.distance._digby

# -*- coding: utf-8 -*-

# Copyright 2018-2019 by Christopher C. Little.
# This file is part of Abydos.
#
# Abydos is free software: you can redistribute it and/or modify
# it under the terms of the GNU General Public License as published by
# the Free Software Foundation, either version 3 of the License, or
# (at your option) any later version.
#
# Abydos is distributed in the hope that it will be useful,
# but WITHOUT ANY WARRANTY; without even the implied warranty of
# MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
# GNU General Public License for more details.
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# You should have received a copy of the GNU General Public License
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"""abydos.distance._digby.

Digby correlation
"""

from __future__ import (
    absolute_import,
    division,
    print_function,
    unicode_literals,
)

from ._token_distance import _TokenDistance

__all__ = ['Digby']


[docs]class Digby(_TokenDistance): r"""Digby correlation. For two sets X and Y and a population N, Digby's approximation of the tetrachoric correlation coefficient :cite:`Digby:1983` is .. math:: corr_{Digby}(X, Y) = \frac{(|X \cap Y| \cdot |(N \setminus X) \setminus Y|)^\frac{3}{4}- (|X \setminus Y| \cdot |Y \setminus X|)^\frac{3}{4}} {(|X \cap Y| \cdot |(N \setminus X) \setminus Y|)^\frac{3}{4} + (|X \setminus Y| \cdot |Y \setminus X|)^\frac{3}{4}} In :ref:`2x2 confusion table terms <confusion_table>`, where a+b+c+d=n, this is .. math:: corr_{Digby} = \frac{ad^\frac{3}{4}-bc^\frac{3}{4}}{ad^\frac{3}{4}+bc^\frac{3}{4}} .. versionadded:: 0.4.0 """ def __init__( self, alphabet=None, tokenizer=None, intersection_type='crisp', **kwargs ): """Initialize Digby instance. Parameters ---------- alphabet : Counter, collection, int, or None This represents the alphabet of possible tokens. See :ref:`alphabet <alphabet>` description in :py:class:`_TokenDistance` for details. tokenizer : _Tokenizer A tokenizer instance from the :py:mod:`abydos.tokenizer` package intersection_type : str Specifies the intersection type, and set type as a result: See :ref:`intersection_type <intersection_type>` description in :py:class:`_TokenDistance` for details. **kwargs Arbitrary keyword arguments Other Parameters ---------------- qval : int The length of each q-gram. Using this parameter and tokenizer=None will cause the instance to use the QGram tokenizer with this q value. metric : _Distance A string distance measure class for use in the ``soft`` and ``fuzzy`` variants. threshold : float A threshold value, similarities above which are counted as members of the intersection for the ``fuzzy`` variant. .. versionadded:: 0.4.0 """ super(Digby, self).__init__( alphabet=alphabet, tokenizer=tokenizer, intersection_type=intersection_type, **kwargs )
[docs] def corr(self, src, tar): """Return the Digby correlation of two strings. Parameters ---------- src : str Source string (or QGrams/Counter objects) for comparison tar : str Target string (or QGrams/Counter objects) for comparison Returns ------- float Digby correlation Examples -------- >>> cmp = Digby() >>> cmp.corr('cat', 'hat') 0.9774244829419212 >>> cmp.corr('Niall', 'Neil') 0.9491281473458171 >>> cmp.corr('aluminum', 'Catalan') 0.7541039303781305 >>> cmp.corr('ATCG', 'TAGC') -1.0 .. versionadded:: 0.4.0 """ if src == tar: return 1.0 if not src or not tar: return -1.0 self._tokenize(src, tar) a = self._intersection_card() b = self._src_only_card() c = self._tar_only_card() d = self._total_complement_card() num = (a * d) ** 0.75 - (b * c) ** 0.75 if num: return num / ((a * d) ** 0.75 + (b * c) ** 0.75) return 0.0
[docs] def sim(self, src, tar): """Return the Digby similarity of two strings. Parameters ---------- src : str Source string (or QGrams/Counter objects) for comparison tar : str Target string (or QGrams/Counter objects) for comparison Returns ------- float Digby similarity Examples -------- >>> cmp = Digby() >>> cmp.sim('cat', 'hat') 0.9887122414709606 >>> cmp.sim('Niall', 'Neil') 0.9745640736729085 >>> cmp.sim('aluminum', 'Catalan') 0.8770519651890653 >>> cmp.sim('ATCG', 'TAGC') 0.0 .. versionadded:: 0.4.0 """ return (1 + self.corr(src, tar)) / 2
if __name__ == '__main__': import doctest doctest.testmod()