Source code for pyspark.mllib.stat.KernelDensity
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import sys
if sys.version > '3':
    xrange = range
import numpy as np
from pyspark.mllib.common import callMLlibFunc
from pyspark.rdd import RDD
[docs]class KernelDensity(object):
    """
    Estimate probability density at required points given an RDD of samples
    from the population.
    >>> kd = KernelDensity()
    >>> sample = sc.parallelize([0.0, 1.0])
    >>> kd.setSample(sample)
    >>> kd.estimate([0.0, 1.0])
    array([ 0.12938758,  0.12938758])
    """
    def __init__(self):
        self._bandwidth = 1.0
        self._sample = None
[docs]    def setBandwidth(self, bandwidth):
        """Set bandwidth of each sample. Defaults to 1.0"""
        self._bandwidth = bandwidth 
[docs]    def setSample(self, sample):
        """Set sample points from the population. Should be a RDD"""
        if not isinstance(sample, RDD):
            raise TypeError("samples should be a RDD, received %s" % type(sample))
        self._sample = sample 
[docs]    def estimate(self, points):
        """Estimate the probability density at points"""
        points = list(points)
        densities = callMLlibFunc(
            "estimateKernelDensity", self._sample, self._bandwidth, points)
        return np.asarray(densities)