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python - How do I use multiple conditions with pyspark.sql.functions.when()?

I have a dataframe with a few columns. Now I want to derive a new column from 2 other columns:

from pyspark.sql import functions as F
new_df = df.withColumn("new_col", F.when(df["col-1"] > 0.0 & df["col-2"] > 0.0, 1).otherwise(0))

With this I only get an exception:

py4j.Py4JException: Method and([class java.lang.Double]) does not exist

It works with just one condition like this:

new_df = df.withColumn("new_col", F.when(df["col-1"] > 0.0, 1).otherwise(0))

Does anyone know to use multiple conditions?

I'm using Spark 1.4.

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Use parentheses to enforce the desired operator precedence:

F.when( (df["col-1"]>0.0) & (df["col-2"]>0.0), 1).otherwise(0)

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