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I'm looking at the Java Thread Affinity lib (link below) and in an example the affinity is set using 1 << 3. Does anyone know why this is?

AffinitySupport.setAffinity(1 << 3);

I would have thought it would be set to 1 or 2 for example on a 2 core machine as to say stay on core 1 or 2. I'm obviously missing something here.

Link: https://github.com/peter-lawrey/Java-Thread-Affinity

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2 Answers 2

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The argument to AffinitySupport.setAffinity() is a bit mask.

Setting the affinity to 1 << 3 allows the the thread to run on the logical CPU #3.

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but the resulting value is 8 not 3. How does this map to CPU#3? thanks –  CodingQuant Mar 23 '13 at 16:49
    
@CodingQuant: Again, it's a bit mask. Bit 0 is for CPU#0, but 1 for CPU#1 and so on. A thread could be allowed to run on any of a set of CPUs. –  NPE Mar 23 '13 at 16:50
    
but the method parameter is a long. So eight get passed. –  CodingQuant Mar 23 '13 at 16:53

This syntax uses the left shift operator : http://processing.org/reference/leftshift.html So basically 1 << 3 means 1000 in binary so this is 8 in decimal.

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but why use this instead of 8? –  CodingQuant Mar 23 '13 at 16:46

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