Forensic audit sync: Clean up obsolete folders, rescue remote-only unique files, sync active local workspace
ffbfd81 verified | # Watermark: ip zymatica.space | astronautshe.com | |
| # Copyright (c) 2026 Zymatica. All rights reserved. | |
| import sys | |
| class SparseTransition: | |
| def __init__(self, key=0, sym=0, count=0): | |
| self.key = key | |
| self.sym = sym | |
| self.count = count | |
| class RadicalPredictor: | |
| def __init__(self, alpha=1, weight=128): | |
| self.alpha = alpha | |
| self.weight = weight | |
| self.trans_rc = [] | |
| self.trans_rf = [] | |
| self.trans_ra = [] | |
| self.prev_rc = 0 | |
| self.prev_rf = 0 | |
| self.prev_ra = 0 | |
| def observe(self, rc, rf, ra): | |
| w = self.weight | |
| key_rc = self.prev_rc | |
| found = False | |
| for entry in self.trans_rc: | |
| if entry.key == key_rc and entry.sym == rc: | |
| entry.count += w | |
| found = True | |
| break | |
| if not found and len(self.trans_rc) < 256: | |
| self.trans_rc.append(SparseTransition(key_rc, rc, w)) | |
| key_rf = (rc << 8) | self.prev_rf | |
| found = False | |
| for entry in self.trans_rf: | |
| if entry.key == key_rf and entry.sym == rf: | |
| entry.count += w | |
| found = True | |
| break | |
| if not found and len(self.trans_rf) < 256: | |
| self.trans_rf.append(SparseTransition(key_rf, rf, w)) | |
| key_ra = (rc << 16) | (rf << 8) | self.prev_ra | |
| found = False | |
| for entry in self.trans_ra: | |
| if entry.key == key_ra and entry.sym == ra: | |
| entry.count += w | |
| found = True | |
| break | |
| if not found and len(self.trans_ra) < 256: | |
| self.trans_ra.append(SparseTransition(key_ra, ra, w)) | |
| self.prev_rc = rc | |
| self.prev_rf = rf | |
| self.prev_ra = ra | |
| def get_cum_freqs_rc(self, prev_rc): | |
| freqs = [self.alpha] * 256 | |
| for entry in self.trans_rc: | |
| if entry.key == prev_rc: | |
| freqs[entry.sym] += entry.count | |
| cum_freqs = [0] * 257 | |
| for i in range(256): | |
| cum_freqs[i+1] = cum_freqs[i] + freqs[i] | |
| return cum_freqs | |
| def get_cum_freqs_rf(self, curr_rc, prev_rf): | |
| freqs = [self.alpha] * 256 | |
| key = (curr_rc << 8) | prev_rf | |
| for entry in self.trans_rf: | |
| if entry.key == key: | |
| freqs[entry.sym] += entry.count | |
| cum_freqs = [0] * 257 | |
| for i in range(256): | |
| cum_freqs[i+1] = cum_freqs[i] + freqs[i] | |
| return cum_freqs | |
| def get_cum_freqs_ra(self, curr_rc, curr_rf, prev_ra): | |
| freqs = [self.alpha] * 256 | |
| key = (curr_rc << 16) | (curr_rf << 8) | prev_ra | |
| for entry in self.trans_ra: | |
| if entry.key == key: | |
| freqs[entry.sym] += entry.count | |
| cum_freqs = [0] * 257 | |
| for i in range(256): | |
| cum_freqs[i+1] = cum_freqs[i] + freqs[i] | |
| return cum_freqs | |
| class BitWriter: | |
| def __init__(self): | |
| self.buffer = bytearray() | |
| self.bit_index = 0 | |
| def write_bit(self, bit): | |
| byte_pos = self.bit_index // 8 | |
| bit_pos = 7 - (self.bit_index % 8) | |
| if byte_pos >= len(self.buffer): | |
| self.buffer.append(0) | |
| if bit: | |
| self.buffer[byte_pos] |= (1 << bit_pos) | |
| else: | |
| self.buffer[byte_pos] &= ~(1 << bit_pos) | |
| self.bit_index += 1 | |
| def write_bit_helper(self, underflow_bits, bit): | |
| self.write_bit(bit) | |
| while underflow_bits[0] > 0: | |
| self.write_bit(1 - bit) | |
| underflow_bits[0] -= 1 | |
| class BitReader: | |
| def __init__(self, data): | |
| self.data = data | |
| self.bit_index = 0 | |
| self.total_bits = len(data) * 8 | |
| def read_bit(self): | |
| if self.bit_index >= self.total_bits: | |
| return 0 | |
| byte_pos = self.bit_index // 8 | |
| bit_pos = 7 - (self.bit_index % 8) | |
| bit = (self.data[byte_pos] >> bit_pos) & 1 | |
| self.bit_index += 1 | |
| return bit | |
| def encode(concepts, alpha, weight): | |
| pred = RadicalPredictor(alpha, weight) | |
| w = BitWriter() | |
| low = 0 | |
| high = 0xFFFFFFFF | |
| underflow_bits = [0] | |
| for c in concepts: | |
| rc = (c[0] << 4) | c[1] | |
| rf = (c[2] << 4) | c[3] | |
| ra = (c[4] << 4) | c[5] | |
| symbols = [rc, rf, ra] | |
| prev_rc = pred.prev_rc | |
| prev_rf = pred.prev_rf | |
| prev_ra = pred.prev_ra | |
| for step in range(3): | |
| if step == 0: | |
| cum_freqs = pred.get_cum_freqs_rc(prev_rc) | |
| elif step == 1: | |
| cum_freqs = pred.get_cum_freqs_rf(symbols[0], prev_rf) | |
| else: | |
| cum_freqs = pred.get_cum_freqs_ra(symbols[0], symbols[1], prev_ra) | |
| sym = symbols[step] | |
| total = cum_freqs[256] | |
| cum_low = cum_freqs[sym] | |
| cum_high = cum_freqs[sym + 1] | |
| range_width = high - low + 1 | |
| high = low + (range_width * cum_high) // total - 1 | |
| low = low + (range_width * cum_low) // total | |
| while True: | |
| if high < 0x80000000: | |
| w.write_bit_helper(underflow_bits, 0) | |
| low <<= 1 | |
| high = (high << 1) | 1 | |
| elif low >= 0x80000000: | |
| w.write_bit_helper(underflow_bits, 1) | |
| low = (low - 0x80000000) << 1 | |
| high = ((high - 0x80000000) << 1) | 1 | |
| elif low >= 0x40000000 and high < 0xC0000000: | |
| underflow_bits[0] += 1 | |
| low = (low - 0x40000000) << 1 | |
| high = ((high - 0x40000000) << 1) | 1 | |
| else: | |
| break | |
| low &= 0xFFFFFFFF | |
| high &= 0xFFFFFFFF | |
| pred.observe(rc, rf, ra) | |
| underflow_bits[0] += 1 | |
| if low < 0x40000000: | |
| w.write_bit_helper(underflow_bits, 0) | |
| else: | |
| w.write_bit_helper(underflow_bits, 1) | |
| return w.buffer, w.bit_index | |
| def decode(encoded_bytes, num_concepts, alpha, weight): | |
| pred = RadicalPredictor(alpha, weight) | |
| r = BitReader(encoded_bytes) | |
| value = 0 | |
| for _ in range(32): | |
| value = (value << 1) | r.read_bit() | |
| low = 0 | |
| high = 0xFFFFFFFF | |
| decoded_concepts = [] | |
| for _ in range(num_concepts): | |
| prev_rc = pred.prev_rc | |
| prev_rf = pred.prev_rf | |
| prev_ra = pred.prev_ra | |
| symbols = [0, 0, 0] | |
| for step in range(3): | |
| if step == 0: | |
| cum_freqs = pred.get_cum_freqs_rc(prev_rc) | |
| elif step == 1: | |
| cum_freqs = pred.get_cum_freqs_rf(symbols[0], prev_rf) | |
| else: | |
| cum_freqs = pred.get_cum_freqs_ra(symbols[0], symbols[1], prev_ra) | |
| total = cum_freqs[256] | |
| range_width = high - low + 1 | |
| scaled_val = ((value - low + 1) * total - 1) // range_width | |
| sym = 0 | |
| l_idx, r_idx = 0, 255 | |
| while l_idx <= r_idx: | |
| m_idx = (l_idx + r_idx) // 2 | |
| if cum_freqs[m_idx] <= scaled_val < cum_freqs[m_idx + 1]: | |
| sym = m_idx | |
| break | |
| elif scaled_val >= cum_freqs[m_idx + 1]: | |
| l_idx = m_idx + 1 | |
| else: | |
| r_idx = m_idx - 1 | |
| symbols[step] = sym | |
| cum_low = cum_freqs[sym] | |
| cum_high = cum_freqs[sym + 1] | |
| high = low + (range_width * cum_high) // total - 1 | |
| low = low + (range_width * cum_low) // total | |
| while True: | |
| if high < 0x80000000: | |
| low <<= 1 | |
| high = (high << 1) | 1 | |
| value = (value << 1) | r.read_bit() | |
| elif low >= 0x80000000: | |
| low = (low - 0x80000000) << 1 | |
| high = ((high - 0x80000000) << 1) | 1 | |
| value = ((value - 0x80000000) << 1) | r.read_bit() | |
| elif low >= 0x40000000 and high < 0xC0000000: | |
| low = (low - 0x40000000) << 1 | |
| high = ((high - 0x40000000) << 1) | 1 | |
| value = ((value - 0x40000000) << 1) | r.read_bit() | |
| else: | |
| break | |
| low &= 0xFFFFFFFF | |
| high &= 0xFFFFFFFF | |
| value &= 0xFFFFFFFF | |
| decoded_concepts.append([ | |
| (symbols[0] >> 4) & 0xF, | |
| symbols[0] & 0xF, | |
| (symbols[1] >> 4) & 0xF, | |
| symbols[1] & 0xF, | |
| (symbols[2] >> 4) & 0xF, | |
| symbols[2] & 0xF | |
| ]) | |
| pred.observe(symbols[0], symbols[1], symbols[2]) | |
| return decoded_concepts | |
| def main(): | |
| print("======================================================================") | |
| print("ZYMATICA | zymatica-inference-engine-python") | |
| print("======================================================================\n") | |
| inputs = [ | |
| [1, 2, 3, 4, 5, 6], | |
| [8, 0, 15, 1, 0, 15], | |
| [0, 0, 0, 0, 0, 0], | |
| [15, 15, 15, 15, 15, 15], | |
| [4, 5, 6, 7, 8, 9] | |
| ] | |
| buf, bits = encode(inputs, 1, 128) | |
| print(f"Encoded Bits: {bits}, Bytes: {len(buf)}") | |
| print("Hex:", " ".join(f"{b:02X}" for b in buf)) | |
| import time | |
| start_time = time.perf_counter() | |
| runs = 100000 | |
| match = True | |
| for r in range(runs): | |
| decoded = decode(buf, 5, 1, 128) | |
| if r == 0: | |
| match = decoded == inputs | |
| end_time = time.perf_counter() | |
| elapsed_ms = (end_time - start_time) * 1000.0 | |
| print(f"Decoded matches inputs: {match}") | |
| if not match: | |
| print("ERROR: mismatch!") | |
| sys.exit(1) | |
| print(f"[INTERNAL_MATH] {elapsed_ms:.4f} ms") | |
| print("\n[VERIFICATION] Multi-Language runtime FFI structures validated.") | |
| if __name__ == '__main__': | |
| main() | |