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Home Artificial Intelligence

The Thriller Behind the PyTorch Automated Combined Precision Library | by Mengliu Zhao | Sep, 2024

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September 17, 2024
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Knowledge Format Fundamentals — Single Precision (FP32) vs Half Precision (FP16)

Now, let’s take a more in-depth have a look at FP32 and FP16 codecs. The FP32 and FP16 are IEEE codecs that characterize floating numbers utilizing 32-bit binary storage and 16-bit binary storage. Each codecs comprise three components: a) an indication bit, b) exponent bits, and c) mantissa bits. The FP32 and FP16 differ within the variety of bits allotted to exponent and mantissa, which lead to completely different worth ranges and precisions.

Distinction between FP16 (IEEE customary), BF16 (Google Mind-standard), FP32 (IEEE-standard), and TF32 (Nvidia-standard). Picture supply: https://en.wikipedia.org/wiki/Bfloat16_floating-point_format

How do you change FP16 and FP32 to actual values? In line with IEEE-754 requirements, the decimal worth for FP32 = (-1)^(signal) × 2^(decimal exponent —127 ) × (implicit main 1 + decimal mantissa), the place 127 is the biased exponent worth. For FP16, the components turns into (-1)^(signal) × 2^(decimal exponent — 15) × (implicit main 1 + decimal mantissa), the place 15 is the corresponding biased exponent worth. See additional particulars of the biased exponent worth right here.

On this sense, the worth vary for FP32 is roughly [-2¹²⁷, 2¹²⁷] ~[-1.7*1e38, 1.7*1e38], and the worth vary for FP16 is roughly [-2¹⁵, 2¹⁵]=[-32768, 32768]. Word that the decimal exponent for FP32 is between 0 and 255, and we’re excluding the most important worth 0xFF because it represents NAN. That’s why the most important decimal exponent is 254–127 = 127. An identical rule applies to FP16.

For the precision, notice that each the exponent and mantissa contributes to the precision limits (which can be referred to as denormalization, see detailed dialogue right here), so FP32 can characterize precision as much as 2^(-23)*2^(-126)=2^(-149), and FP16 can characterize precision as much as 2^(10)*2^(-14)=2^(-24).

The distinction between FP32 and FP16 representations brings the important thing considerations of combined precision coaching, as completely different layers/operations of deep studying fashions are both insensitive or delicate to worth ranges and precision and have to be addressed individually.

Tags: AutomaticLibraryMengliuMixedMysteryPrecisionPyTorchSepZhao

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