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For my honours project, I'm researching ways of processing the very large quantities of data produced by a mass spectrometer (MS) within the University's Life Sciences department.

I've been reading MapReduce Design Patterns & Hadoop: The Definitive Guide, and I'm trying to connect the data I have to a particular map & reduce pattern.

The first step is to find the weighted peak for each curve. Performing a calculation to reduce the 6 or 7 points (rows) to a single point with info like max/min, average.

  • The data is in ~8GB CSV files that look like this:

  • Each row is essentially a single point on a graph, with X & Y coords.

  • The points are grouped into curves by one of the columns. So I know for each record, which curve it belongs to.

  • The number of points in each curve varies, it's usually around 4 - 8 points.

My problem is most of the example seem to deal with problems line by line, e.g. Word Count. I need to process N rows at a time, although I'm not sure if this is the right way to go about solving this.


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1 Answer 1

up vote 3 down vote accepted

In your case it should be sufficient to process the file line by line and for each line output <curve, point> in your mapper. The reducer will receive all points, which belong to a single curve: <curve, {point1, point2, ... }> as input. Thus you can calculate the max/min/avg based on the points of a curve in the reducer and output <curve, max/min/avg> as the final result.

PS. For processing exactly N rows of the input file in each mapper you could use the NLineInputFormat.

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Yeah I thought trying to pass the mapper multiple rows wasn't the right thing to do. Thanks for the N rows tip though! I'm now using the mapper to bundle single point data into a custom Writable class, then performing the calculations in the reducer as you suggest and it works very well, thanks for your help. –  mbaird Feb 23 '13 at 15:48

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