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Setting the baudrate for usart in stm32f103rb.

Muzahir Hussain
Associate III
Posted on January 16, 2018 at 18:27

Why do we need to calculate the baudrate using this formula,

baud = fCK / (16*USARTDIV)

I mean, why can't we write 9600 or any other desired baudrate value directly in USART_BRR register? Why do we need to perform this calculation first. What are we calculating here anyway?

This might be a dumb question to ask, but I am really confused here. Please help.

Thanks in advance!

#uart #uart-ft-serial-communications #stm32f103rb #usart
3 REPLIES 3
Posted on January 16, 2018 at 18:38

You want the register to be simple and the logic in silicon to be uncomplicated.

A counter is simple, you count clock pulses and you create a divider.

Doing immediate division with logic is complicated, the ALU already has logic to do this, and the synchronous design uses clocks, these clocks may be different from implementation to implementation. ie you might run the CPU at 72 MHz, others may need it to run at 64 MHz, or slow down to 8 MHz

The design will therefore focused on things that make it simple for the machine, not those that make it convenient for the human.

The BRR uses a fractional form, it clocks at a higher rate, and then a clock tap is taken out at the fourth bit, achieving a DIV16, ie 4 -bits can represent 16 states (0000..1111)

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Posted on January 16, 2018 at 20:40

What is the reason of multiplying

USARTDIV 

by 16 in the formula?
Posted on January 16, 2018 at 21:58

Because the USART is sampling at 16 times the baud rate, and the synchronizer tries to align the data sample point for the BIT in the centre of the bit time. If this is confusing please review classical documentation related to UART implementations, ie something like an 8250, 16550 or 6580, or course note on computer peripheral design/function.

And for the same reason as

frequency = 1 / period

and

period = 1 / frequency

The USART doesn't think of things in terms of baud rate, but rather in clock ticks of the bus clock. The part doesn't 'know' what frequency it is clocking at, it just sees the clock signal going up and down, and the flip-flops change at the rising edge of the clock.

brr = (APBCLK / 16) / baud  // what you're actually computing, ie the reverse of pulling the baud rate by knowing the brr and input clock source

brr = (72,000,000 / 16) / 9600

brr = 468.75      // the rate in a fractional sense in OVER16 mode

USART->BRR = (unsigned)(468.75 * 16.0);  // fixed point 12.4 representation of fractional rate

USART->BRR = 7500

Or a more trivial computation

USART->BRR = APBCLK / baud;

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