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Compute the minimum or maximum values of a numeric array.
Null values are ignored by default. This can be changed through ScalarAggregateOptions.
Argument to compute function.
TrueWhether to skip (ignore) nulls in the input. If False, any null in the input forces the output to null.
int, default 1Minimum number of non-null values in the input. If the number of non-null values is below min_count, the output is null.
pyarrow.compute.ScalarAggregateOptions, optionalAlternative way of passing options.
pyarrow.MemoryPool, optionalIf not passed, will allocate memory from the default memory pool.
Examples
>>> import pyarrow as pa
>>> import pyarrow.compute as pc
>>> arr1 = pa.array([1, 1, 2, 2, 3, 2, 2, 2])
>>> pc.max(arr1)
<pyarrow.Int64Scalar: 3>
Using skip_nulls to handle null values.
>>> arr2 = pa.array([1.0, None, 2.0, 3.0])
>>> pc.max(arr2)
<pyarrow.DoubleScalar: 3.0>
>>> pc.max(arr2, skip_nulls=False)
<pyarrow.DoubleScalar: None>
Using ScalarAggregateOptions to control minimum number of non-null values.
>>> arr3 = pa.array([1.0, None, float("nan"), 3.0])
>>> pc.max(arr3)
<pyarrow.DoubleScalar: 3.0>
>>> pc.max(arr3, options=pc.ScalarAggregateOptions(min_count=3))
<pyarrow.DoubleScalar: 3.0>
>>> pc.max(arr3, options=pc.ScalarAggregateOptions(min_count=4))
<pyarrow.DoubleScalar: None>
This function also works with string values.
>>> arr4 = pa.array(["z", None, "y", "x"])
>>> pc.max(arr4)
<pyarrow.StringScalar: 'z'>
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