Unusual amount of data pulled into the driver when calling dataframe.collect in Spark











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In my spark code, I am collecting a small object on the driver from a Dataframe. I see the following error message on the console. I am calling dataframe.take(1) in my program.



Total size of serialized results of 13 tasks (1827.6 MB) is bigger than spark.driver.maxResultSize (1024.0 MB)


This know that this can be resolved by setting spark.driver.maxResultSize param. But my question is, Why is so much of data being pulled into the driver when the object that I am collecting is less than an MB in size. Is it the case that all the objects are first serialized and pulled into the driver and then the driver selects one of them (take(1)) for the output.










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    up vote
    0
    down vote

    favorite












    In my spark code, I am collecting a small object on the driver from a Dataframe. I see the following error message on the console. I am calling dataframe.take(1) in my program.



    Total size of serialized results of 13 tasks (1827.6 MB) is bigger than spark.driver.maxResultSize (1024.0 MB)


    This know that this can be resolved by setting spark.driver.maxResultSize param. But my question is, Why is so much of data being pulled into the driver when the object that I am collecting is less than an MB in size. Is it the case that all the objects are first serialized and pulled into the driver and then the driver selects one of them (take(1)) for the output.










    share|improve this question


























      up vote
      0
      down vote

      favorite









      up vote
      0
      down vote

      favorite











      In my spark code, I am collecting a small object on the driver from a Dataframe. I see the following error message on the console. I am calling dataframe.take(1) in my program.



      Total size of serialized results of 13 tasks (1827.6 MB) is bigger than spark.driver.maxResultSize (1024.0 MB)


      This know that this can be resolved by setting spark.driver.maxResultSize param. But my question is, Why is so much of data being pulled into the driver when the object that I am collecting is less than an MB in size. Is it the case that all the objects are first serialized and pulled into the driver and then the driver selects one of them (take(1)) for the output.










      share|improve this question















      In my spark code, I am collecting a small object on the driver from a Dataframe. I see the following error message on the console. I am calling dataframe.take(1) in my program.



      Total size of serialized results of 13 tasks (1827.6 MB) is bigger than spark.driver.maxResultSize (1024.0 MB)


      This know that this can be resolved by setting spark.driver.maxResultSize param. But my question is, Why is so much of data being pulled into the driver when the object that I am collecting is less than an MB in size. Is it the case that all the objects are first serialized and pulled into the driver and then the driver selects one of them (take(1)) for the output.







      apache-spark apache-spark-sql






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      edited Nov 20 at 15:11

























      asked Nov 20 at 2:04









      devj

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      241315
























          1 Answer
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          From the above question it seems like you would like to take 1 row from your dataframe which can be acheived using below code.



          df.take(1)


          However, When you will perform df.take(1).collect() in that case collect will be applied on the result of take(1) which is another collection in scala or python (depending on which language you are using.)



          Also, why you would like to perform collect on take(1)?



          Regards,



          Neeraj






          share|improve this answer





















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            1 Answer
            1






            active

            oldest

            votes








            1 Answer
            1






            active

            oldest

            votes









            active

            oldest

            votes






            active

            oldest

            votes








            up vote
            -2
            down vote













            From the above question it seems like you would like to take 1 row from your dataframe which can be acheived using below code.



            df.take(1)


            However, When you will perform df.take(1).collect() in that case collect will be applied on the result of take(1) which is another collection in scala or python (depending on which language you are using.)



            Also, why you would like to perform collect on take(1)?



            Regards,



            Neeraj






            share|improve this answer

























              up vote
              -2
              down vote













              From the above question it seems like you would like to take 1 row from your dataframe which can be acheived using below code.



              df.take(1)


              However, When you will perform df.take(1).collect() in that case collect will be applied on the result of take(1) which is another collection in scala or python (depending on which language you are using.)



              Also, why you would like to perform collect on take(1)?



              Regards,



              Neeraj






              share|improve this answer























                up vote
                -2
                down vote










                up vote
                -2
                down vote









                From the above question it seems like you would like to take 1 row from your dataframe which can be acheived using below code.



                df.take(1)


                However, When you will perform df.take(1).collect() in that case collect will be applied on the result of take(1) which is another collection in scala or python (depending on which language you are using.)



                Also, why you would like to perform collect on take(1)?



                Regards,



                Neeraj






                share|improve this answer












                From the above question it seems like you would like to take 1 row from your dataframe which can be acheived using below code.



                df.take(1)


                However, When you will perform df.take(1).collect() in that case collect will be applied on the result of take(1) which is another collection in scala or python (depending on which language you are using.)



                Also, why you would like to perform collect on take(1)?



                Regards,



                Neeraj







                share|improve this answer












                share|improve this answer



                share|improve this answer










                answered Nov 20 at 11:02









                neeraj bhadani

                664210




                664210






























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