Optimized lookup table placement and trailing zero words stripping
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+5
-5
@@ -12,9 +12,9 @@
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.inc stdlib.nrjasm
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.var x 12EF ; .var defines a label for a particular memory location
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.var y 12F0 ; define another variable at 0x12F0
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.set @x 33EE ; .set sets a memory location to a particular hex constant at the build time, @ dereferences a label into the address
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.var x 2EF ; .var defines a label for a particular memory location
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.var y 2F0 ; define another variable at 0x2F0
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.set @x 'm ; .set sets a memory location to a particular hex constant at the build time, @ dereferences a label into the address
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.set @y 'M ; ' dereferences a character into a whole word with its ASCII code
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; we CANNOT use dereferencing operators with .var, only with .set or directly
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@@ -28,13 +28,13 @@
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; for the lookup table and CUR/NXT macros to work correctly, the code must start at an address divisible by 3
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; note that FREE doesn't intelligently detect the available cells, it only takes the next one after the maximum address used
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; so in our case, the first FREE instance will be substituted with 12F1, the next with 12F2 and so on
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; so in our case, the first FREE instance will be substituted with 2F1, the next with 2F2 and so on
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; now, lets output a character by transferring the y value to the output cell 1
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; in an endless loop
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.lbl myloop
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MOV 1 @x
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MOV 1 @y @myloop ; output the character and jump to the beginning
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; we don't have to explicitly zero out the cell 1 as it is done by the I/O logic
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@@ -5,6 +5,7 @@
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import sys
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import array
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from os.path import realpath
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from numpy import trim_zeros
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# some constants to redefine more easily in case of major breaking changes
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@@ -154,7 +155,11 @@ def start_assembly(srcfname, dstfname): # main assembly method
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# the NXT macro will be replaced with a cell in the lookup table that points to the next instruction
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# and the lookup table will also take some memory in the machine
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ltoffset = memsize >> 1 # in the worst case scenario, the code will take half of all memory and lookup table will take the other half
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# now, try to detect the optimal offset for our lookup table
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if maxvar > 0: # we have some variables defined, so place the lookup table after them
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ltoffset = maxvar + 1
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else: # in the worst case scenario, the code will take half of all memory and lookup table will take the other half
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ltoffset = memsize >> 1
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targetmem[ltoffset] = haltaddr # the first lookup table entry is always the halting address
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codepos = 0
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ltpos = 1
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@@ -199,6 +204,10 @@ def start_assembly(srcfname, dstfname): # main assembly method
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for v in line:
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codepos += 1
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# looking for a more optimal solution than to import numpy just for this:
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targetmem = trim_zeros(targetmem, 'b') # only strip trailing zero values
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# now, we have assembled our target memory snapshot, let's write the output file
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outf = open(dstfname, "wb")
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