Hey Joe, 

I am just testing a simple flow of reading the file from local file system
and inserting into a kafka topic.

The flow is

GetFile -> SplitText (with 20000 line split) -> SplitText(1 line split)
-> putkafka 


So total there are 220K events processed in 1 min 44 sec. Which I think is
pretty good so far.

I¹ve Nifi running on a single m4.4xlarge EC2 instance, I¹ve not changed
any other Nifi settings. Is there anything else which needs to be modified
for flow file, content, provenance repos?


Thanks,
Naveen

On 11/11/15, 12:31 PM, "Joe Witt" <[email protected]> wrote:

>Naveen,
>
>For throughput can you state what the desired events/sec/node would be
>for you and can you describe how the flowfile vs content vs prov repo
>is setup on the machine it is running on?
>
>Thanks
>Joe
>
>On Wed, Nov 11, 2015 at 1:21 PM, Madhire, Naveen
><[email protected]> wrote:
>> Thanks Mark. The workaround to have intermediate split text to split few
>> lines works well, as you said, the throughput is not quite there. I
>>think it
>> serves our purpose as of now.
>>
>>
>>
>> From: Mark Payne <[email protected]>
>> Reply-To: "[email protected]" <[email protected]>
>> Date: Tuesday, November 10, 2015 at 7:12 PM
>> To: "[email protected]" <[email protected]>
>> Subject: Re: Memory Issues on Split Text
>>
>> Naveen,
>>
>> There is a ticket [1] that will make this work more cleanly so that we
>>can
>> use SplitText to split a large
>> file into millions of FlowFiles. Right now, as you noted you will end up
>> running out of memory. There are
>> a few possible solutions that you can use.
>>
>> If you need to split each line into a separate FlowFile, the easiest
>>way is
>> to use two SplitText processors.
>> The first would be configured with a Line Split Count of say 10,000.
>>Then,
>> the "splits" relationship is routed
>> to a second SplitText processor with the Line Split Count set to 1. This
>> prevents the processor from holding
>> those millions of FlowFiles in memory. The only downside here is that
>>if you
>> create a FlowFile for every single
>> message, your throughput will not be quite as good.
>>
>> The next approach is to just send the entire 2 GB FlowFile to PutKafka
>>and
>> set the Message Delimiter to "\n".
>> This will send each line in the FlowFile to Kafka as a separate
>>message. The
>> down side here is that if you have
>> sent say 1 million messages to Kafka and then NiFi is restarted, it
>>doesn't
>> know that those 1 million messages have
>> been sent, so you will end up sending all of the data again and will
>> duplicate a lot of the messages.
>>
>> The third approach is a hybrid of the two. You can use SplitText to
>>split
>> the FlowFile into 10,000 lines each. Then,
>> instead of sending to another SplitText, you can send the "splits"
>> relationship to PutKafka with a Message Delimiter
>> of "\n". This way, you will still get great throughput by not splitting
>>each
>> FlowFile into millions of FlowFiles, but you will
>> avoid duplicating millions of messages (you'll duplicate at the very
>>most
>> 10,000 messages in this example).
>>
>> So you can use any of these approaches. You just have to consider the
>>pro's
>> and con's of each and decide which
>> trade-offs you want to make.
>>
>> Thanks
>> -Mark
>>
>>
>> [1] https://issues.apache.org/jira/browse/NIFI-1008
>>
>>
>>
>>
>>
>> On Nov 10, 2015, at 5:28 PM, Madhire, Naveen
>><[email protected]>
>> wrote:
>>
>> Hi,
>>
>> I am reading a 2 GB file from local and putting the data into a Kafka
>>topic.
>>
>> Since GetFile only creates one flow file per file, I am making use of
>> SplitText processor to split the file into one flow file per line before
>> inserting the data into a Kafka topic.
>> I am seeing a lot of ³GC Overhead limit exceeded errors² on SplitText
>> processor. I am running Nifi on a single linux server with 16 GB memory.
>>
>> Is this the right approach of reading and putting into Kafka?
>> Or there is any better approach?
>>
>> Thanks,
>> Naveen
>>
>>
>>
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