add more info in readme
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README.md
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README.md
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@ -202,6 +202,44 @@ As `0x1b02` is called from the main BSL code as part of the "mass-erase FRAM"
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command, it most likely implements this functionality, and hardly anything
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else.
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### Raspberry Pico NMI signal generator
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To generate the well-timed `NMI` signals, a Raspberry Pico is used. From a
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trigger signal from P1.4 to GP14, it will wait a specific amount of time, then
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lower GP15, which should be connected to NMI/#RST, for a few microseconds. This
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delay between the trigger and NMI is configured over a UART interface on P6.0
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and GP17. P1.5/GP16 is used as an "ack" signal from the Pico to the MSP430 to
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signal that the serial command has been received and processed. This is done to
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avoid having the MSP430 start sending a trigger signal before a new delay
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setting has been applied properly.
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Some other pins are used as handshaking: GP19 is connected to P3.2 to have the
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MSP430 wait until this pin is high to start tracing, which is needed because
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the NMI pin is also shared between the actual NMI signal, and the Spy-Bi-Wire
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debugging interface, which is used to upload new code. Using a switch to select
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which line (SBWTDIO or NMI/GP15) is connected to the NMI/#RESET pin, this can
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be mitigated. However, then P3.2 needs to be also pulled low for as long as the
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NMI/#RST pin is connected to SBWTDIO. For this, another switch can be used to
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have it toggle between GND and GP19/3V3.
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The Raspberry Pico code can be found in the `nmigen/` folder (not to be
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confused with the HDL language that had this name in the past).
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Full connection table:
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| MSP430 pin | Intermediate pin | Raspberry Pico pin |
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|:---------- |:---------------- |:------------------ |
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| GND | | GND |
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| P1.4 | | GP14 |
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| P1.5 | | GP16 |
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| | SW1.LEFT | GP19 or 3V3 |
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| P3.2 | SW1.MID | |
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| GND | SW1.RIGHT | GND |
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| P6.0 | | GP17 |
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| | SW2.LEFT | GP15 |
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| NMI/#RST | SW2.MID | |
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| SBWTDIO (from eZ-FET) | SW2.RIGHT | |
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## Proof of concept
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The code in `src/main.c` will dump the content of the BSL to `eUSCI_A0` in UART
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