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Editing brain floating-point format

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The motivation behind the reduced mantissa is derived from Google's experiments that showed that it is fine to reduce the mantissa so long it's still possible to represent tiny values closer to zero as part of the summation of small differences during training. Smaller mantissa brings a number of other advantages such as reducing the multiplier power and physical silicon area.
 
The motivation behind the reduced mantissa is derived from Google's experiments that showed that it is fine to reduce the mantissa so long it's still possible to represent tiny values closer to zero as part of the summation of small differences during training. Smaller mantissa brings a number of other advantages such as reducing the multiplier power and physical silicon area.
  
* float32: 24<sup>2</sup>=576 (100%)
+
* float32: 23<sup>2</sup>=529
* float16: 11<sup>2</sup>=121 (21%)
+
* float16: 10<sup>2</sup>=100
* bfloat16: 8<sup>2</sup>=64 (11%)
+
* bfloat16: 7<sup>2</sup>=49
  
 
From the above, it can be seen that there is a factor of two and a factor of ten in terms of the number of bits that will flip (or components). From an efficiency standpoint, the gain was worth it for Google and their {{google|TPU}} implementation. At the system level, the benefits in memory capacity saving and bandwidth can also be realized if desired.
 
From the above, it can be seen that there is a factor of two and a factor of ten in terms of the number of bits that will flip (or components). From an efficiency standpoint, the gain was worth it for Google and their {{google|TPU}} implementation. At the system level, the benefits in memory capacity saving and bandwidth can also be realized if desired.

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