161 FPU-130

161 : FPU-130

Design render

How it works

FPU-130 is an SPI-controlled arithmetic coprocessor for the 16-bit bfloat16 format. A bfloat16 value contains one sign bit, eight exponent bits, and seven fraction bits. It is also the upper 16 bits of an IEEE-754 single-precision value; for example, 1.0, 2.0, and 3.0 are encoded as 0x3f80, 0x4000, and 0x4040 respectively.

The supported operations are:

Opcode Operation Description
000 ADD A + B
001 SUB A - B
010 MUL A * B
011 DIV A / B
100 NEG -A
101 ABS abs(A)
110 SLT 1.0 when A < B, otherwise 0.0
111 NOP No arithmetic writeback

The SPI interface uses mode 0, active-low chip select, and MSB-first byte ordering. The command byte is arranged as follows:

Bits Field
[7:5] Opcode
[4] Accumulator enable
[3] Arity: 0 for unary, 1 for binary
[2:0] Three-bit request tag

A binary frame contains six bytes:

[command] [A high] [A low] [B high] [B low] [CRC-8]

A unary frame contains four bytes:

[command] [A high] [A low] [CRC-8]

The final byte is CRC-8/AUTOSAR, calculated over every preceding byte in the frame with polynomial 0x2f, initial value 0xff, and final XOR value 0xff.

The FPU response is 24 bits, MSB first:

[status] [result high] [result low]

The status byte contains the echoed tag in bits [7:5], CRC/SPI error in bit 4, a valid marker in bit 3, underflow in bit 2, overflow in bit 1, and NaN in bit 0. SPI is full duplex, but an operation cannot be computed until its full request has arrived. Consequently, the bytes received while sending a request belong to the previous result. Clock the completed result out in a following transaction, or pipeline it with the next command.

How to test

Select the design, provide its system clock, pulse rst_n low, and then leave rst_n high. Connect an SPI controller as follows:

Signal Tiny Tapeout pin Direction relative to FPU-130
CS (active low) uio[0] Input
MOSI uio[1] Input
MISO uio[2] Output
SCLK uio[3] Input

Use SPI mode 0 and start with a low SPI clock frequency for bring-up. The SPI signals pass through synchronizers clocked by the project clock, so the project clock must remain active and substantially faster than SCLK.

As a known-good test, add 1.0 to 2.0 with tag zero:

Request:  08 3f 80 40 00 34

Here 0x08 selects binary ADD, 0x3f80 is 1.0, 0x4000 is 2.0, and 0x34 is the frame CRC. After sending the request, deassert CS and allow the FPU time to finish. For initial testing, waiting at least 100 project-clock cycles is conservative. Assert CS again and provide 24 SCLK cycles. The expected response is:

Response: 08 40 40

0x08 is a clean status byte with its valid marker set, and 0x4040 is the bfloat16 representation of 3.0. The first transaction after reset does not return the result being submitted; it is produced only after that request has been received and processed.

External hardware

Testing requires a Tiny Tapeout carrier or compatible FPGA setup, an SPI controller like ESP32. Find the code for ESP32 on https://github.com/140oo041/FPU-micro-processor

Known Defects

Sometimes there may be a 2 bit offset using this interface. The best way to interface is to schedule operations together, and then send one big SPI transfer. After receveing the data, and CS goes down, reset the board.

IO

#InputOutputBidirectional
0CS SPI
1MOSI SPI
2MISO SPI
3SCK SPI
4
5
6
7

Chip location

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