fips205-slhdsa-verified/verification/Proofs/WotsSpec.lean

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/- Proofs/WotsSpec.lean — WOTS+ public-key recomputation (Algorithm 8), the
chain loop.
THEOREM wots_loop1_eq: the extracted WOTS+ chain loop
(wots_pk_from_sig_free_loop1) equals the explicit fold that, at each index
i in [0, LEN), sets the chain address to i and runs `chain_free` on
sig[i] starting at digit msg[i] for W1msg[i] steps, updating tmp[i].
This is the layer above chain: it consumes `chain_free` and pins that the
LEN chains are run with the RIGHT start indices, step counts, and slots —
the WOTS+ verification recomputation. Cone stays the three kernel axioms +
the single hash oracle (chain's F).
The proof mirrors ChainSpec exactly: usize increment (usize_succ /
fwd_succ_usize), the StepUsize iterator step (hnext_usize), the loop body
as a clean do-block (hbody1), one loop step = one fold step
(wots_loop1_step), and the induction (wots_loop1_eq) threading the IH under
the opaque binds with bind_congr. It reuses the generic loop_unfold_bind
from ChainSpec.
-/
import Proofs.ChainSpec
open Aeneas Aeneas.Std Result ControlFlow
open fips205
set_option maxHeartbeats 4000000
namespace fips205
theorem usize_succ {start : Std.Usize} (hb : start.val + 1 < 2 ^ System.Platform.numBits) :
∃ w : Std.Usize, start + 1#usize = ok w ∧ w.val = start.val + 1 := by
have he := Std.UScalar.add_equiv start (1#usize)
cases hc : start + 1#usize with
| ok w =>
refine ⟨w, rfl, ?_⟩
rw [hc] at he
have : (1#usize : Std.Usize).val = 1 := by rfl
omega
| fail e =>
exfalso; rw [hc] at he; simp [Std.UScalar.inBounds] at he
have : (1#usize : Std.Usize).val = 1 := by rfl
omega
| div => rw [hc] at he; simp at he
-- StepUsize forward step, when start+1 succeeds.
theorem fwd_succ_usize {start w : Std.Usize} (hw : start + 1#usize = ok w) :
core.iter.range.StepUsize.forward_checked start 1#usize = ok (some w) := by
unfold core.iter.range.StepUsize.forward_checked Std.Usize.checked_add core.num.checked_add_UScalar Option.ofResult
rw [hw]
-- the usize range iterator step on a non-empty range.
theorem hnext_usize {start stop w : Std.Usize}
(hd : decide (start.val < stop.val) = true) (hwok : start + 1#usize = ok w) :
core.iter.range.IteratorRange.next core.iter.range.StepUsize { start := start, «end» := stop }
= ok (some start, { start := w, «end» := stop }) := by
unfold core.iter.range.IteratorRange.next
simp only [core.iter.range.StepUsize, core.cmp.impls.PartialOrdUsize.lt, hd, decide_true,
if_true, bind_tc_ok, bind_ok, core.clone.impls.CloneUsize.clone, fwd_succ_usize hwok]
theorem hbody1 {LEN N : Std.Usize} (sig : types.WotsSig LEN N) (pk_seed : Slice Std.U8)
(msg : Array Std.U32 LEN) (start stop w : Std.Usize) (adrs : types.Adrs)
(tmp : Array (Array Std.U8 N) LEN)
(hd : decide (start.val < stop.val) = true) (hwok : start + 1#usize = ok w) :
verify_mono.wots_pk_from_sig_free_loop1.body sig pk_seed msg
{ start := start, «end» := stop } adrs tmp
= (do
let i1 ← lift (Std.UScalar.cast .U32 start)
let adrs1 ← helpers.Adrs.set_chain_address adrs i1
let a ← Array.index_usize sig.data start
let i2 ← Array.index_usize msg start
let i3 ← W - 1#u32
let i4 ← i3 - i2
let a1 ← verify_mono.chain_free a i2 i4 pk_seed adrs1
let a2 ← Array.update tmp start a1
ok (cont (({ start := w, «end» := stop } : core.ops.range.Range Std.Usize), adrs1, a2))) := by
unfold verify_mono.wots_pk_from_sig_free_loop1.body
rw [hnext_usize hd hwok]
simp
noncomputable def wotsChainFold {LEN N : Std.Usize} (sig : types.WotsSig LEN N)
(pk_seed : Slice Std.U8) (msg : Array Std.U32 LEN) :
types.Adrs → Array (Array Std.U8 N) LEN → Std.Usize → Nat →
Result (types.Adrs × Array (Array Std.U8 N) LEN)
| adrs, tmp, _, 0 => ok (adrs, tmp)
| adrs, tmp, i, (k+1) => do
let i1 ← lift (Std.UScalar.cast .U32 i)
let adrs1 ← helpers.Adrs.set_chain_address adrs i1
let a ← Array.index_usize sig.data i
let i2 ← Array.index_usize msg i
let i3 ← W - 1#u32
let i4 ← i3 - i2
let a1 ← verify_mono.chain_free a i2 i4 pk_seed adrs1
let a2 ← Array.update tmp i a1
let i' ← i + 1#usize
wotsChainFold sig pk_seed msg adrs1 a2 i' k
theorem wots_loop1_step {LEN N : Std.Usize} (sig : types.WotsSig LEN N)
(pk_seed : Slice Std.U8) (msg : Array Std.U32 LEN) (start stop : Std.Usize)
(adrs : types.Adrs) (tmp : Array (Array Std.U8 N) LEN)
(hlt : start.val < stop.val) (hb : start.val + 1 < 2 ^ System.Platform.numBits) :
verify_mono.wots_pk_from_sig_free_loop1 { start := start, «end» := stop } sig pk_seed adrs tmp msg
= (do
let i1 ← lift (Std.UScalar.cast .U32 start)
let adrs1 ← helpers.Adrs.set_chain_address adrs i1
let a ← Array.index_usize sig.data start
let i2 ← Array.index_usize msg start
let i3 ← W - 1#u32
let i4 ← i3 - i2
let a1 ← verify_mono.chain_free a i2 i4 pk_seed adrs1
let a2 ← Array.update tmp start a1
let i' ← start + 1#usize
verify_mono.wots_pk_from_sig_free_loop1 { start := i', «end» := stop } sig pk_seed adrs1 a2 msg) := by
obtain ⟨w, hwok, _⟩ := usize_succ hb
have hd : decide (start.val < stop.val) = true := by simp [hlt]
conv_lhs => rw [verify_mono.wots_pk_from_sig_free_loop1, loop_unfold_bind]
dsimp only
rw [hbody1 sig pk_seed msg start stop w adrs tmp hd hwok]
simp only [bind_assoc, bind_ok]
conv_rhs => rw [show (start + 1#usize) = ok w from hwok]
simp only [bind_tc_ok, bind_ok]
rfl
theorem wots_loop1_eq {LEN N : Std.Usize} (sig : types.WotsSig LEN N)
(pk_seed : Slice Std.U8) (msg : Array Std.U32 LEN) (s : Nat) :
∀ (start : Std.Usize) (adrs : types.Adrs) (tmp : Array (Array Std.U8 N) LEN),
start.val + s < 2 ^ System.Platform.numBits →
∀ (stop : Std.Usize), stop.val = start.val + s →
verify_mono.wots_pk_from_sig_free_loop1 { start := start, «end» := stop } sig pk_seed adrs tmp msg
= wotsChainFold sig pk_seed msg adrs tmp start s := by
induction s with
| zero =>
intro start adrs tmp _ stop hstop
have hse : start = stop := by apply Std.UScalar.eq_of_val_eq; omega
subst hse
unfold verify_mono.wots_pk_from_sig_free_loop1 wotsChainFold
rw [loop.eq_1]
unfold verify_mono.wots_pk_from_sig_free_loop1.body core.iter.range.IteratorRange.next
simp [core.iter.range.StepUsize, core.cmp.impls.PartialOrdUsize.lt]
| succ k ih =>
intro start adrs tmp hb stop hstop
have hlt : start.val < stop.val := by omega
have hb1 : start.val + 1 < 2 ^ System.Platform.numBits := by scalar_tac
obtain ⟨w, hwok, hwv⟩ := usize_succ hb1
rw [wots_loop1_step sig pk_seed msg start stop adrs tmp hlt hb1]
unfold wotsChainFold
rw [hwok]
simp only [bind_tc_ok, bind_ok]
have hbound : w.val + k < 2 ^ System.Platform.numBits := by scalar_tac
have hstop' : stop.val = w.val + k := by omega
apply bind_congr; intro i1
apply bind_congr; intro adrs1
apply bind_congr; intro a
apply bind_congr; intro i2
apply bind_congr; intro i3
apply bind_congr; intro i4
apply bind_congr; intro a1
apply bind_congr; intro a2
exact ih w adrs1 a2 hbound stop hstop'
end fips205