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@@ -0,0 +1,25 @@
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|||||||
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# Contributing
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||||||
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|
||||||
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## Code of Conduct
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||||||
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Be nice, we are all just doing this to have fun
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||||||
|
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||||||
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## General rules
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||||||
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- All text (names, comments, etc.) has to be in English
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||||||
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- You are responsible for ensuring that you have the rights for us to use the code you contribute to the project
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||||||
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- follow the guidelines, for code, documentation, etc.
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||||||
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- all code has to work with the standard symphony ISA
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||||||
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||||||
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## Documenting Functions
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||||||
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All functions in the standard library should follow the following outline:
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||||||
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```
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||||||
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; <description>
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||||||
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; Arguments: <which register contains what argument>
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||||||
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; Result: <what is the result, and where is it stored>
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||||||
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; Clobbers: <list of registers that are clobbered>
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||||||
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<label>: <;SHOULD BE INLINED>
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||||||
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<CODE>
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||||||
|
|
||||||
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```
|
||||||
|
|
||||||
|
Functions should be in the appropriate asm file, if you are unsure where functionality fits make a seperate file and ask in the pull request
|
||||||
|
Functions that are provided for convenience/reference but should be inlined in production code should be marked with `;SHOULD BE INLINED` after their label
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||||||
@@ -0,0 +1,100 @@
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@0x10000 ; Example address until we get a proper memory map for this
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; Shift conversion table
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; It stores the mapping from value 32-127 of the ASCII table to their shifted equivalents (both ways) in the standard US keyboard layout
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; e.g. 1 -> !
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U8 32 ; Space -> Space
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U8 49 ; ! -> 1
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U8 39 ; " -> '
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U8 51 ; # -> 3
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U8 52 ; $ -> 4
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U8 53 ; % -> 5
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U8 55 ; & -> 7
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U8 34 ; ' -> "
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U8 57 ; ( -> 9
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U8 48 ; ) -> 0
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U8 56 ; * -> 8
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U8 61 ; + -> =
|
||||||
|
U8 60 ; , -> <
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|
U8 95 ; - -> _
|
||||||
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U8 62 ; . -> >
|
||||||
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U8 63 ; / -> ?
|
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U8 41 ; 0 -> )
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U8 33 ; 1 -> !
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||||||
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U8 64 ; 2 -> @
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U8 35 ; 3 -> #
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U8 36 ; 4 -> $
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U8 37 ; 5 -> %
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U8 94 ; 6 -> ^
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U8 38 ; 7 -> &
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U8 42 ; 8 -> *
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U8 40 ; 9 -> (
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||||||
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U8 59 ; : -> ;
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||||||
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U8 58 ; ; -> :
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||||||
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U8 44 ; < -> ,
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U8 43 ; = -> +
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||||||
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U8 46 ; > -> .
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U8 47 ; ? -> /
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U8 50 ; @ -> 2
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U8 97 ; A -> a
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U8 98 ; B -> b
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U8 99 ; C -> c
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U8 100; D -> d
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U8 101; E -> e
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U8 102; F -> f
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U8 103; G -> g
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U8 104; H -> h
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U8 105; I -> i
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U8 106; J -> j
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||||||
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U8 107; K -> k
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||||||
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U8 108; L -> l
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||||||
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U8 109; M -> m
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U8 110; N -> n
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||||||
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U8 111; O -> o
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||||||
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U8 112; P -> p
|
||||||
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U8 113; Q -> q
|
||||||
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U8 114; R -> r
|
||||||
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U8 115; S -> s
|
||||||
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U8 116; T -> t
|
||||||
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U8 117; U -> u
|
||||||
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U8 118; V -> v
|
||||||
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U8 119; W -> w
|
||||||
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U8 120; X -> x
|
||||||
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U8 121; Y -> y
|
||||||
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U8 122; Z -> z
|
||||||
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U8 123; [ -> {
|
||||||
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U8 124; \ -> |
|
||||||
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U8 125; ] -> }
|
||||||
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U8 125; ^ -> 6
|
||||||
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U8 45 ; _ -> -
|
||||||
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U8 126; ` -> ~
|
||||||
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U8 65 ; a -> A
|
||||||
|
U8 66 ; b -> B
|
||||||
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U8 67 ; c -> C
|
||||||
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U8 68 ; d -> D
|
||||||
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U8 69 ; e -> E
|
||||||
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U8 70 ; f -> F
|
||||||
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U8 71 ; g -> G
|
||||||
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U8 72 ; h -> H
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||||||
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U8 73 ; i -> I
|
||||||
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U8 74 ; j -> J
|
||||||
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U8 75 ; k -> K
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||||||
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U8 76 ; l -> L
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||||||
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U8 77 ; m -> M
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||||||
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U8 78 ; n -> N
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||||||
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U8 79 ; o -> O
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||||||
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U8 80 ; p -> P
|
||||||
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U8 81 ; q -> Q
|
||||||
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U8 82 ; r -> R
|
||||||
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U8 83 ; s -> S
|
||||||
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U8 84 ; t -> T
|
||||||
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U8 85 ; u -> U
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||||||
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U8 86 ; v -> V
|
||||||
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U8 87 ; w -> W
|
||||||
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U8 88 ; x -> X
|
||||||
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U8 89 ; y -> Y
|
||||||
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U8 90 ; z -> Z
|
||||||
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U8 91 ; { -> [
|
||||||
|
U8 92 ; | -> \
|
||||||
|
U8 93 ; } -> ]
|
||||||
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U8 96 ; ~ -> `
|
||||||
@@ -1,3 +1,46 @@
|
|||||||
# symphony_stdlib
|
# Symphony Stdlib
|
||||||
|
|
||||||
standard library for symphony
|
This is a standard library for symphony.
|
||||||
|
It is both intended as a practical toolkit to develop more complex software as well as a teaching resource.
|
||||||
|
|
||||||
|
If you just want to use the standard library [[stdlib.asm]] is your main header, include it after your code.
|
||||||
|
|
||||||
|
If you are using it as a learning resource have a look at the [teaching folder](teaching).
|
||||||
|
|
||||||
|
If you are intersted in contributing have a look at [[CONTRIBUTING.md]]
|
||||||
|
|
||||||
|
---
|
||||||
|
|
||||||
|
## ABI
|
||||||
|
|
||||||
|
### Calling Convention
|
||||||
|
| class | registers |
|
||||||
|
| ----- | --------- |
|
||||||
|
| n.a. | zr |
|
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| preserved | sp, r8 - r12 |
|
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| scratch | flags, r1 - r7 |
|
||||||
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| arguments | r1 - r7 |
|
||||||
|
| result | r1-r7 |
|
||||||
|
| return address | r13 |
|
||||||
|
|
||||||
|
Arguments not fitting into the 7 registers should be passed on the top of the stack, meaning they should be the last values pushed before the function call.
|
||||||
|
Arguments are passed in reverse order with the stack so:
|
||||||
|
lowest address = 1st stack arg
|
||||||
|
highest address = last stack arg
|
||||||
|
|
||||||
|
Should a function return more values than fit into the 7 registers, the caller has to allocate space on the stack for them, and pass the pointer to that space in the next free argument register.
|
||||||
|
This reduces the amount of argument registers to 6 and all arguments above that shall go on the stack, the pointer to the result stack shall **always** be passed in an argument register.
|
||||||
|
This register points at the highest available address for results, with the 8th result being stored there, the 9th below it and so on.
|
||||||
|
|
||||||
|
### Stack
|
||||||
|
Grows downwards from 0xXXFE_0000 (so top of memory -0x1_0000).
|
||||||
|
|
||||||
|
### Types
|
||||||
|
|
||||||
|
#### String
|
||||||
|
Strings are stored in memory as null terminated sequences of bytes encoding ascii characters.
|
||||||
|
They should be passed by reference.
|
||||||
|
|
||||||
|
#### Array
|
||||||
|
Arrays are stored in memory with a reference to them being the tuple (pointer, length) stored in a register pair.
|
||||||
|
Array elements may only have a size of 8/16/32 bits
|
||||||
|
|||||||
+69
@@ -0,0 +1,69 @@
|
|||||||
|
; Reads a line from the keyboard and fills the specified buffer with it
|
||||||
|
; Does not support Shift or any other special keys
|
||||||
|
; Arguments:
|
||||||
|
; r1 - pointer to the buffer
|
||||||
|
; Result:
|
||||||
|
; r1 - pointer to the same buffer
|
||||||
|
; Clobbers: r2, r3, r4, r5, r6, r7
|
||||||
|
pub read_line:
|
||||||
|
mov r6, 1
|
||||||
|
lsl r6, r6, 16
|
||||||
|
sub r6, r6, 32 ; Calculating the address to the shift LUT
|
||||||
|
mov r2, 0 ; Storing the shift status here
|
||||||
|
mov r4, 0 ; Storing the last key here, so we don't repeat the same key
|
||||||
|
mov r3, r1 ; The pointer to after the last character
|
||||||
|
|
||||||
|
read_line_keyloop:
|
||||||
|
keyboard r5
|
||||||
|
|
||||||
|
cmp r5, r4
|
||||||
|
je read_line_keyloop ; If the current key is same as previous, we loop
|
||||||
|
mov r4, r5 ; Storing current key as previous
|
||||||
|
|
||||||
|
cmp r5, 0x120 ; Is the key renderable or special?
|
||||||
|
jb read_line_special ; If the key was special, we handle it separately
|
||||||
|
xor r5, r5, 0x100 ; Clearing the "down" bit
|
||||||
|
|
||||||
|
cmp r2, zr ; Checking for shift status
|
||||||
|
je read_line_store ; If shift is up, we skip conversion
|
||||||
|
|
||||||
|
;;; converting from shift-down to shift-up keys
|
||||||
|
add r7, r6, r5 ; Calculating the index of the shift conversion
|
||||||
|
load_8 r5, [r7] ; Loading the shifted value
|
||||||
|
;;;
|
||||||
|
|
||||||
|
read_line_store:
|
||||||
|
store_8 [r3], r5 ; Else, we store the key in the buffer
|
||||||
|
add r3, r3, 1 ; We advance forward
|
||||||
|
; TODO: Writeback
|
||||||
|
jmp read_line_keyloop
|
||||||
|
|
||||||
|
read_line_special:
|
||||||
|
cmp r5, 13 ; Was the key Backspace?
|
||||||
|
je read_line_backspace ; If yes we need to move one character back
|
||||||
|
|
||||||
|
cmp r5, 10 ; Was the key Enter?
|
||||||
|
je read_line_finished ; If so, we're finished
|
||||||
|
|
||||||
|
and r5, r5, 0x1FB ; Mask out the left/right shift direction bit
|
||||||
|
cmp r5, 0x110 ; Was the key Shift Down?
|
||||||
|
and flags, flags, 0x1 ; We care only about equality bit
|
||||||
|
or r2, r2, flags ; If shift was down before, it still is. If it was pressed now, it is down now
|
||||||
|
|
||||||
|
cmp r5, 0x010 ; Was the key Shift Up?
|
||||||
|
and flags, flags, 0x1 ; We care only about equality bit
|
||||||
|
xor flags, flags, 0x1 ; We invert it, i.e. "if it's not up"
|
||||||
|
and r2, r2, flags ; The shift can be kept down if it's not currently up
|
||||||
|
|
||||||
|
jmp read_line_keyloop ; If no special handling, we loop back
|
||||||
|
|
||||||
|
read_line_backspace:
|
||||||
|
cmp r3, r1 ; Compare the current pointer to start of buffer
|
||||||
|
je read_line_keyloop ; If we are at the start, we loop
|
||||||
|
sub r3, r3, 1 ; We move back one character
|
||||||
|
; TODO: Writeback
|
||||||
|
jmp read_line_keyloop
|
||||||
|
|
||||||
|
read_line_finished:
|
||||||
|
store_8 [r3], zr ; We store null at the end so the string is finished
|
||||||
|
jmp r13
|
||||||
@@ -1,8 +1,15 @@
|
|||||||
|
; Multiplies r1 and r2, returning the lower part of the result
|
||||||
|
; Arguments:
|
||||||
|
; r1 - The first value
|
||||||
|
; r2 - The second value
|
||||||
|
; Result:
|
||||||
|
; r1 - The lower 32 bits of the result
|
||||||
|
; Clobbers: r2, r3, r4, r5
|
||||||
pub mul_low:
|
pub mul_low:
|
||||||
mov r3, 0 ; result
|
mov r3, 0 ; result
|
||||||
mov r4, 31 ; loop counter
|
mov r4, 31 ; loop counter
|
||||||
|
|
||||||
mull_loop:
|
mul_low_loop:
|
||||||
asr r5, r2, 31
|
asr r5, r2, 31
|
||||||
and r5, r5, r1
|
and r5, r5, r1
|
||||||
lsl r5, r5, r4
|
lsl r5, r5, r4
|
||||||
@@ -10,14 +17,18 @@ pub mul_low:
|
|||||||
lsl r2, r2, 1
|
lsl r2, r2, 1
|
||||||
sub r4, r4, 1
|
sub r4, r4, 1
|
||||||
cmp r4, 0
|
cmp r4, 0
|
||||||
jge mull_loop
|
jge mul_low_loop
|
||||||
mov r1, r3
|
mov r1, r3
|
||||||
|
|
||||||
jmp r13
|
jmp r13
|
||||||
|
|
||||||
; Calculates the absolute value of the value provided in the r1 register
|
; Calculates the absolute value of the value provided in the r1 register
|
||||||
; Based on Stanford's BitHacks
|
; Arguments:
|
||||||
; Clobbers r2
|
; r1 - The value for which we want the absolute value
|
||||||
|
; Result:
|
||||||
|
; r1 - The calculated absolute value
|
||||||
|
; Clobbers: r2
|
||||||
|
; Info: Based on Stanford's BitHacks
|
||||||
pub abs: ; SHOULD BE INLINED
|
pub abs: ; SHOULD BE INLINED
|
||||||
; mask = v >> 31
|
; mask = v >> 31
|
||||||
asr r2, r1, 31
|
asr r2, r1, 31
|
||||||
@@ -28,8 +39,13 @@ pub abs: ; SHOULD BE INLINED
|
|||||||
jmp r13
|
jmp r13
|
||||||
|
|
||||||
; Calculates the minimum value of the two values provided in the r1 and r2 registers
|
; Calculates the minimum value of the two values provided in the r1 and r2 registers
|
||||||
; Based on Stanford's BitHacks
|
; Arguments:
|
||||||
; Clobbers flags
|
; r1 - The first value
|
||||||
|
; r2 - The second value
|
||||||
|
; Result:
|
||||||
|
; r1 - The smaller value
|
||||||
|
; Clobbers: Nothing
|
||||||
|
; Info: Based on Stanford's BitHacks
|
||||||
pub min: ; SHOULD BE INLINED
|
pub min: ; SHOULD BE INLINED
|
||||||
; x < y
|
; x < y
|
||||||
cmp r1, r2
|
cmp r1, r2
|
||||||
@@ -45,8 +61,13 @@ pub min: ; SHOULD BE INLINED
|
|||||||
jmp r13
|
jmp r13
|
||||||
|
|
||||||
; Calculates the maximum value of the two values provided in the r1 and r2 registers
|
; Calculates the maximum value of the two values provided in the r1 and r2 registers
|
||||||
; Based on Stanford's BitHacks
|
; Arguments:
|
||||||
; Clobbers r2 and flags
|
; r1 - The first value
|
||||||
|
; r2 - The second value
|
||||||
|
; Result:
|
||||||
|
; r1 - The smaller value
|
||||||
|
; Clobbers: r2
|
||||||
|
; Info: Based on Stanford's BitHacks
|
||||||
pub max: ; SHOULD BE INLINED
|
pub max: ; SHOULD BE INLINED
|
||||||
; x < y
|
; x < y
|
||||||
cmp r1, r2
|
cmp r1, r2
|
||||||
|
|||||||
@@ -0,0 +1,174 @@
|
|||||||
|
; int compare(uint8_t* a, uint8_t* b, size_t count);
|
||||||
|
; Compares two memory segment of equal length lexicographically.
|
||||||
|
;
|
||||||
|
; Arguments:
|
||||||
|
; - `r1`: A pointer to the first memory segment.
|
||||||
|
; - `r2`: A pointer to the second memory segment.
|
||||||
|
; - `r3`: The size of both memory segments.
|
||||||
|
; Results:
|
||||||
|
; - `r1`:
|
||||||
|
; - `0` if both segments are equal.
|
||||||
|
; - `<0` if the first segment is less than the second segment.
|
||||||
|
; - `>0` if the first segment is greater than the second segment.
|
||||||
|
;
|
||||||
|
pub compare:
|
||||||
|
; Exclusive end point of the first segment.
|
||||||
|
add r3, r3, r1
|
||||||
|
sub r3, r3, 4
|
||||||
|
_compare__loop:
|
||||||
|
load_32 r4, [r1]
|
||||||
|
add r1, r1, 4
|
||||||
|
load_32 r5, [r2]
|
||||||
|
add r2, r2, 4
|
||||||
|
; Comparing two sequences of 4 bytes lexicographically is equivalent to
|
||||||
|
; comparing the corresponding big endian 32 bit words.
|
||||||
|
cmp r4, r5
|
||||||
|
jne _compare__break
|
||||||
|
; Check if there are enough bytes left to continue with the vectorized loop.
|
||||||
|
cmp r1, r3
|
||||||
|
jbe _compare__loop
|
||||||
|
; `r3 + 4 - r1 = <remaining byte count> = r3 - r1 mod 4`
|
||||||
|
sub flags, r3, r1
|
||||||
|
; Check if one of the lowest 2 bits is non-zero
|
||||||
|
jbe _compare__rem
|
||||||
|
; If not, we are done. Both segments are equal.
|
||||||
|
mov r1, 0
|
||||||
|
jmp r13
|
||||||
|
_compare__break:
|
||||||
|
; `flags` is the comparison result in the format of `cmp`. Convert it to the desired format.
|
||||||
|
; 00 => 0x40000000 > 0
|
||||||
|
; 01 => 0x00000000 = 0
|
||||||
|
; 10 => 0xC0000000 < 0
|
||||||
|
xor r1, flags, 1
|
||||||
|
lsl r1, r1, 30
|
||||||
|
jmp r13
|
||||||
|
_compare__rem:
|
||||||
|
; Compute `S = 8*(4 - <remaining byte count>)` and
|
||||||
|
; [r1] >> S, [r2] >> S
|
||||||
|
mov r3, 8
|
||||||
|
load_32 r4, [r1]
|
||||||
|
sub r3, r3, flags
|
||||||
|
load_32 r5, [r2]
|
||||||
|
lsl r3, r3, 3
|
||||||
|
lsr r4, r4, r3
|
||||||
|
lsr r5, r5, r3
|
||||||
|
; Compare both values, now with garbage bytes removed.
|
||||||
|
cmp r4, r5
|
||||||
|
jmp _compare__break
|
||||||
|
|
||||||
|
|
||||||
|
; void copy(void* src, void* dest, size_t count);
|
||||||
|
; Copies `count` bytes from `src` to `dest`. The two memory segments must not overlap.
|
||||||
|
;
|
||||||
|
; Arguments:
|
||||||
|
; - `r1`: Pointer to the memory segment to be copied.
|
||||||
|
; - `r2`: Pointer to the memory segment to be copied into.
|
||||||
|
; - `r3`: Byte size of both the `src` and `dest` segments.
|
||||||
|
;
|
||||||
|
pub copy:
|
||||||
|
; Exclusive end point of the source segment.
|
||||||
|
add r3, r1, r3
|
||||||
|
; Last index from where we can safely copy 8 bytes per loop iteration.
|
||||||
|
sub r3, r3, 8
|
||||||
|
jmp _copy__loop_entry
|
||||||
|
_copy__loop:
|
||||||
|
; Copy 8 bytes from `src` to `dest`.
|
||||||
|
load_32 flags, [r1]
|
||||||
|
add r1, r1, 4
|
||||||
|
store_32 [r2], flags
|
||||||
|
add r2, r2, 4
|
||||||
|
load_32 flags, [r1]
|
||||||
|
add r1, r1, 4
|
||||||
|
store_32 [r2], flags
|
||||||
|
add r2, r2, 4
|
||||||
|
_copy__loop_entry:
|
||||||
|
; Check if we can process more data in the vectorized loop.
|
||||||
|
cmp r1, r3
|
||||||
|
jbe _copy__loop
|
||||||
|
; The remaining amount of bytes `R` is `R = r3 + 8 - r1 = r3 - r1 mod 8`.
|
||||||
|
sub flags, r3, r1
|
||||||
|
; Test if `R` is not a multiple of `4`, i.e. the lowest 2 bits are non-zero.
|
||||||
|
jbe _copy__rem
|
||||||
|
; `R` is a multiple of `4`. Special case this.
|
||||||
|
; Check if `R` is `0`, i.e. the third bit is also 0. In that case, we are already done.
|
||||||
|
; There are no conditional indirect jumps, so we can't return immediately.
|
||||||
|
jge _copy__ret
|
||||||
|
; `R = 4`. No need to update `r1` or `r2`, we don't need them anymore.
|
||||||
|
load_32 flags, [r1]
|
||||||
|
store_32 [r2], flags
|
||||||
|
_copy__ret:
|
||||||
|
; Return
|
||||||
|
jmp r13
|
||||||
|
_copy__rem:
|
||||||
|
; Optimize the remaining cases for code size.
|
||||||
|
; End point of the source segment.
|
||||||
|
add r3, r3, 8
|
||||||
|
; We already handled the case `R = 0` earlier,
|
||||||
|
; so no bounds check needed for the first iteration.
|
||||||
|
_copy__rem_loop:
|
||||||
|
; Copy 1 byte.
|
||||||
|
load_8 flags, [r1]
|
||||||
|
add r1, r1, 1
|
||||||
|
store_8 [r2], flags
|
||||||
|
add r2, r2, 1
|
||||||
|
; Check if we are still within the bounds.
|
||||||
|
cmp r1, r3
|
||||||
|
jb _copy__rem_loop
|
||||||
|
jmp r13
|
||||||
|
|
||||||
|
; void fill32(uint8_t* dest, size_t count, uint32_t value);
|
||||||
|
; Fills `count` bytes in `dest` with `value`. If `count` is not a multiple of 4,
|
||||||
|
; the least significant bytes of `value` are cut off for the last entry.
|
||||||
|
;
|
||||||
|
; Arguments:
|
||||||
|
; - `r1`: A pointer to the destination segment.
|
||||||
|
; - `r2`: The size of the destination segment.
|
||||||
|
; - `r3`: The 32 bit value that the segment is filled with.
|
||||||
|
;
|
||||||
|
pub fill32:
|
||||||
|
; Exclusive end point of the destination segment.
|
||||||
|
add r2, r1, r2
|
||||||
|
; Last index from where we can safely write 8 bytes per loop iteration.
|
||||||
|
sub r2, r2, 8
|
||||||
|
jmp _fill32__entry
|
||||||
|
_fill32__loop:
|
||||||
|
; Set 8 bytes per loop iteraion.
|
||||||
|
store_32 [r1], r3
|
||||||
|
add r1, r1, 4
|
||||||
|
store_32 [r1], r3
|
||||||
|
add r1, r1, 4
|
||||||
|
_fill32__entry:
|
||||||
|
; Check if we can process more data in the vectorized loop.
|
||||||
|
cmp r1, r2
|
||||||
|
jbe _fill32__loop
|
||||||
|
; The remaining amount of bytes `R` is `R = r2 + 8 - r1 = r2 - r1 mod 8`.
|
||||||
|
sub flags, r2, r1
|
||||||
|
; Check if the third bit of the remainder is cleared.
|
||||||
|
jge _fill32__r4
|
||||||
|
; Otherwise set 4 bytes.
|
||||||
|
store_32 [r1], r3
|
||||||
|
add r1, r1, 4
|
||||||
|
_fill32__r4:
|
||||||
|
; Check if the two least significant bits of the remainder are zero.
|
||||||
|
ja _fill32__ret
|
||||||
|
; Handle the remaining bytes `R` individually, in reverse order.
|
||||||
|
add r2, r2, 4
|
||||||
|
; `r1 + 4 - r2 = 4 - R`.
|
||||||
|
sub flags, r1, r2
|
||||||
|
; Exclusive end point of the destination segment.
|
||||||
|
add r2, r2, 4
|
||||||
|
; Shift out the least significant `8*(4 - R)` bits of the value.
|
||||||
|
lsl flags, flags, 3
|
||||||
|
lsr r3, r3, flags
|
||||||
|
jmp _fill32__loop2_entry
|
||||||
|
_fill32__loop2:
|
||||||
|
sub r2, r2, 1
|
||||||
|
; Write the least significant byte of the value...
|
||||||
|
store_8 [r2], r3
|
||||||
|
; and then shift it out.
|
||||||
|
lsr r3, r3, 8
|
||||||
|
_fill32__loop2_entry:
|
||||||
|
cmp r1, r2
|
||||||
|
jb _fill32__loop2
|
||||||
|
_fill32__ret:
|
||||||
|
jmp r13
|
||||||
+6
-24
@@ -1,25 +1,7 @@
|
|||||||
; ===== INTRODUCTION =====
|
|
||||||
; This is supposed to provide some standard library functionality for stock symphony.
|
|
||||||
; In particular its supposed to work with an unmodified ISA, that means some choices are not
|
|
||||||
; optimal (RA being stored in flags for example)
|
|
||||||
|
|
||||||
; ===== ABI =====
|
|
||||||
|
|
||||||
; ----- CALLING CONVENTION -----
|
|
||||||
; n.a. zr
|
|
||||||
; preserved: sp, r8 - r12
|
|
||||||
; scratch: flags, r1 - r7
|
|
||||||
; arguments: r1 - r7 (r1 = 1st argument, r6 = 6th arg/stack args, r7 = 7th arg/stack res)
|
|
||||||
; result: r1, r2 (r1 = low word, r2 = high word)
|
|
||||||
; return address: r13
|
|
||||||
|
|
||||||
; ----- STACK -----
|
|
||||||
; grows downwards from top of memory
|
|
||||||
; arguments are passed in reverse order with the stack so:
|
|
||||||
; lowest address = 1st stack arg
|
|
||||||
; highest address = last stack arg
|
|
||||||
|
|
||||||
; ===== TYPES =====
|
|
||||||
|
|
||||||
pub include bit
|
pub include bit
|
||||||
pub include imath
|
pub include imath
|
||||||
|
pub include mem
|
||||||
|
pub include console
|
||||||
|
|
||||||
|
; Needs to be last!
|
||||||
|
pub include LUTs
|
||||||
|
|||||||
@@ -0,0 +1,5 @@
|
|||||||
|
# Teaching
|
||||||
|
|
||||||
|
This is a collection of teaching advice regarding the stdlib.
|
||||||
|
|
||||||
|
**WIP**
|
||||||
+75
@@ -0,0 +1,75 @@
|
|||||||
|
; int memcmp(uint8_t* a, uint8_t* b, size_t count);
|
||||||
|
; Compares two memory segment of equal length lexicographically.
|
||||||
|
; Temporarily modifies the byte at address `a + count`.
|
||||||
|
;
|
||||||
|
; Arguments:
|
||||||
|
; - `r1`: A pointer to the first memory segment.
|
||||||
|
; - `r2`: A pointer to the second memory segment.
|
||||||
|
; - `r3`: The size of both memory segments.
|
||||||
|
; Results:
|
||||||
|
; - `r1`:
|
||||||
|
; - `0` if both segments are equal.
|
||||||
|
; - `<0` if the first segment is less than the second segment.
|
||||||
|
; - `>0` if the first segment is greater than the second segment.
|
||||||
|
pub fn_memcmp:
|
||||||
|
; Exclusive end point of the second segment.
|
||||||
|
add r4, r3, r2
|
||||||
|
; Exclusive end point of the first segment.
|
||||||
|
add r3, r3, r1
|
||||||
|
load_8 r6, [r3]
|
||||||
|
load_8 flags, [r4]
|
||||||
|
; Check if the first bytes behind the sequences are equal.
|
||||||
|
cmp flags, r6
|
||||||
|
jne _memcmp__loop
|
||||||
|
; Change the byte directly behind the first segment.
|
||||||
|
xor r4, r6, 1
|
||||||
|
; This would be problematic if someone calls memcmp with a first segment
|
||||||
|
; whose end point overlaps the program memory of this function.
|
||||||
|
store_8 [r3], r4
|
||||||
|
_memcmp__loop:
|
||||||
|
load_32 r4, [r1]
|
||||||
|
add r1, r1, 4
|
||||||
|
load_32 r5, [r2]
|
||||||
|
add r2, r2, 4
|
||||||
|
; Comparing two sequences of 4 bytes lexicographically is equivalent to
|
||||||
|
; comparing the corresponding big endian 32 bit words.
|
||||||
|
cmp r4, r5
|
||||||
|
je _memcmp__loop
|
||||||
|
; We overshot in the loop; decrement r1 again. (Only by 2, we backtrack the rest if necessary later)
|
||||||
|
sub r1, r1, 2
|
||||||
|
; Restore the byte we changed.
|
||||||
|
store_8 [r3], r6
|
||||||
|
; We encountered two different words. Figure out what byte they differ on.
|
||||||
|
xor r4, r4, r5
|
||||||
|
; Store the flags for later, to figure out the return value.
|
||||||
|
mov r5, flags
|
||||||
|
; Check if at least one of the two most significant bytes is not 0.
|
||||||
|
cmp r4, 0xffff
|
||||||
|
jbe _memcmp__low2
|
||||||
|
; If it is, backtrack the remaining 2 indices.
|
||||||
|
; Shift the most significant bytes to the least significant ones.
|
||||||
|
sub r1, r1, 2
|
||||||
|
lsr r4, r4, 16
|
||||||
|
_memcmp__low2:
|
||||||
|
; r1 now points to a non-zero 16 bit value.
|
||||||
|
; If the 16 bit value at r1-2 is in-bounds, then it is 0.
|
||||||
|
; Check if the most significant byte of the 16 bit value is 0.
|
||||||
|
cmp r4, 0xff
|
||||||
|
ja _memcmp__low1
|
||||||
|
; If it is, our target is the least significant byte.
|
||||||
|
add r1, r1, 1
|
||||||
|
_memcmp__low1:
|
||||||
|
; Otherwise, the target is that non-zero byte.
|
||||||
|
; Check if the target is out of bounds, i.e. the loop terminated through the "bounds check".
|
||||||
|
cmp r1, r3
|
||||||
|
jae _memcmp__oob
|
||||||
|
; r5 is the comparison result in the format of `cmp`. Convert it to the desired format.
|
||||||
|
; 00 => 0x40000000 > 0
|
||||||
|
; 01 => 0x00000000 = 0
|
||||||
|
; 10 => 0xC0000000 < 0
|
||||||
|
xor r1, r5, 1
|
||||||
|
lsl r1, r1, 30
|
||||||
|
jmp r13
|
||||||
|
_memcmp__oob:
|
||||||
|
mov r1, 0
|
||||||
|
jmp r13
|
||||||
Reference in New Issue
Block a user