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PostPosted: Tue Oct 12, 2010 6:08 am 
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Hallo allemaal,


Please have a look at this code:
Code:
      lda   #0
      pha      
      plp
      php
      pla

What value should A contain? I expected $20 but it appears to be $30. Running the ML in VICE shows that A contains $30 but the P register $20. Not sure if the monitor is too blame, I created this ML:
Code:
      lda   #1
      sta   $0400
      sta   $0401
      sta   $0402

      sei

      lda   #0
      pha      
      plp
      php
      pla
      sta   $0401

      cli
      rts

Running the ML the second 'A' turns into a Zero, confirming A contains $30.

The big question: WHY ???

Many thanks for an explanation!

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PostPosted: Tue Oct 12, 2010 6:43 am 
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The PHP always pushes a '1' BRK bit (bit 4, value $10). The only way to see if and ISR was entered by a BRK instruction is to pull the stacked record of P that was put there by the interrupt itself. This was covered in this topic.


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PostPosted: Tue Oct 12, 2010 11:01 am 
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GARTHWILSON wrote:
The PHP always pushes a '1' BRK bit (bit 4, value $10). The only way to see if and ISR was entered by a BRK instruction is to pull the stacked record of P that was put there by the interrupt itself. This was covered in this topic.

Thank you!

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PostPosted: Tue Oct 12, 2010 5:44 pm 
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Just for the record: you have to pull the saved P into A using PLA (or load it into a register by other means) - you can't use PLP because P as a register only has 6 useful bits. (The value saved by an interrupt has 7 useful bits, but the transistors just aren't there in the P register itself.)


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PostPosted: Wed Oct 13, 2010 5:02 am 
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Also note that the W65C816S has a different behavior when operation in native mode. In this case, the value pushed to the stack by PHP and subsequently retrieved by PLA (PLX, or PLY) does not change. Hence:
Code:
SEP #%00110000
LDA #0
PHA
PLP
PHP
PLA

returns $00 in .A.

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PostPosted: Tue Nov 30, 2010 9:11 am 
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I think a clear way to understand this is to realize that the B flag is not a flag at all but only the logical OR of the I flag and the /IRQ pin. The bit pulled from the stack into the P register is just discarded.
I was suspecting this, and after digging in the 6502 schematic from http://impulzus.sch.bme.hu/6502/letolt.php3, I found it is true. I also found that this signal can clear the Instruction Register: In fact, fetching a BRK op-code instead of the byte present on the data bus when an interrupt is accepted. This can also explain why the BRK instruction is ignored if an interrupt is accepted at the same time (a well known bug of the NMOS 6502)


GARTHWILSON wrote:
The PHP always pushes a '1' BRK bit (bit 4, value $10). The only way to see if and ISR was entered by a BRK instruction is to pull the stacked record of P that was put there by the interrupt itself. This was covered in this topic.
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