Created
June 29, 2023 21:14
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Experiment to implement distance based clumps
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"""Prototype of distance based clumping.""" | |
import pyspark.sql.functions as f | |
from pyspark.sql import Column, SparkSession, Window | |
spark = SparkSession.builder.getOrCreate() | |
data = [ | |
("s1", "chr1", 3, 2.0, False), | |
("s1", "chr1", 4, 3.0, False), | |
("s1", "chr1", 5, 4.0, True), | |
("s1", "chr1", 6, 2.0, False), | |
("s1", "chr1", 7, 3.0, False), | |
("s1", "chr1", 8, 4.0, False), | |
("s1", "chr1", 9, 4.5, False), | |
("s1", "chr1", 10, 6.0, True), | |
("s1", "chr1", 11, 5.0, False), | |
("s1", "chr1", 12, 3.0, False), | |
("s1", "chr1", 14, 2.0, True), | |
("s1", "chr1", 16, 2.5, False), | |
("s1", "chr1", 18, 3.0, True), | |
("s1", "chr1", 20, 1.5, False), | |
] | |
df = spark.createDataFrame( | |
data, ["studyId", "chromosome", "position", "negLogPValue", "isSemiIndex"] | |
).persist() | |
window_length = 3 | |
def window_based_clump_rank( | |
chromosome: Column, | |
position_col: Column, | |
neglogpvalue_col: Column, | |
window_length: int, | |
) -> Column: | |
"""Distance based clumping. | |
SNPs are clumped if they are within a range distance of a more significant SNP. | |
Args: | |
chromosome: Chromosome column | |
position_col: Position column | |
neglogpvalue_col: P-value column | |
window_length: Window length | |
Returns: | |
Column containing clump rank | |
""" | |
return neglogpvalue_col == f.reverse( | |
f.array_sort( | |
f.collect_list(neglogpvalue_col).over( | |
Window.partitionBy(chromosome) | |
.orderBy(position_col) | |
.rangeBetween(-window_length, window_length) | |
) | |
) | |
).getItem(0) | |
df.withColumn( | |
"test", | |
window_based_clump_rank( | |
f.col("chromosome"), f.col("position"), f.col("negLogPValue"), window_length | |
), | |
).show(100, False) |
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