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@@ -54,7 +54,7 @@ for current_k in range(k, 0, -1):
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challenges.append(challenge)
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a = [a[i] + challenge^-1 * a[half + i] for i in range(half)]
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- G = [int(challenge^-1) * G[i] + int(challenge) * G[half + i] for i in range(half)]
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+ G = [G[i] + int(challenge) * G[half + i] for i in range(half)]
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assert len(a) == len(G) == half
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# Last iteration
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@@ -67,6 +67,26 @@ for current_k in range(k, 0, -1):
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assert len(challenges) == k
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+# G_3 = [G1, G2, G3, G4, G5, G6, G7, G8]
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+# G_2 = [
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+# G1 + x G5,
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+# G2 + x G6,
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+# G3 + x G7,
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+# G4 + x G8
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+# ]
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+# G_1 = [
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+# G_2_1 + x G_2_3,
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+# G_2_2 + x G_2_4
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+# ] = [
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+# (G1 + x G5) + x (G3 + x G7) = G1 + x G3 + x G5 + x^2 G7,
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+# (G2 + x G6) + x (G4 + x G8) = G2 + x G4 + x G6 + x^2 G8
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+# ]
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+#
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+# We end up with a single remaining value
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+#
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+# G_0 = G_1_1 + x G_1_2
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+# = G1 + x G2 + x G3 + x^2 G4 + x G5 + x^2 G6 + x^2 G7 + x^3 G8
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+
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def get_jth_bit(value, idx):
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digits = bin(value)[2:]
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# Add zero padding
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@@ -81,7 +101,7 @@ for i in range(1, n + 1):
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if get_jth_bit(i - 1, j):
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b = 1
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else:
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- b = -1
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+ b = 0
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s *= challenges[j]^b
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counters.append(s)
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