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| """Pass A parser: one ORCA 6.0 calculation (orca.out + orca.engrad) -> a plain-python record. | |
| Design notes | |
| ------------ | |
| * Single forward scan over orca.out. The file can be 600 MB, so nothing is loaded whole: the FOCK | |
| block is consumed straight from the line iterator into its final numpy array. | |
| * The scanner is a pushback iterator, so a sub-parser that reads one line too far can hand it back; | |
| otherwise a section's terminating line (often the *next* section's header) would be swallowed. | |
| * Every section is optional. Datasets differ (NBO on/off, RHF/UHF, ECPs, linear dependencies), so a | |
| missing section leaves its fields as None rather than raising. | |
| * The Fock matrix is returned as an int32 upper triangle in micro-Hartree, which is the storage | |
| encoding and is lossless with respect to ORCA's 6-decimal print. | |
| * Reduced orbital populations are aggregated to shell totals (s, p, d, f, g) per atom; the | |
| individual components (pz, dxy, ...) are voluminous and low value, so they are skipped. | |
| Returns a dict with keys grouped as: meta / system / atoms / pairs / orbitals / fock. | |
| """ | |
| from __future__ import annotations | |
| import io, os, re, subprocess, tarfile | |
| import numpy as np | |
| SHELLS = ("s", "p", "d", "f", "g") | |
| EH_TO_UEH = 1e6 | |
| _COLHDR = re.compile(r"^\s+0(\s+\d+)+\s*$") | |
| _BOND = re.compile(r"B\(\s*(\d+)-\s*(\w+)\s*,\s*(\d+)-\s*(\w+)\s*\)\s*:\s*(-?\d+\.\d+)") | |
| class _PB: | |
| """Line iterator with one-line pushback.""" | |
| def __init__(self, it): | |
| self._it = iter(it) | |
| self._buf = [] | |
| def __iter__(self): | |
| return self | |
| def __next__(self): | |
| if self._buf: | |
| return self._buf.pop() | |
| return next(self._it) | |
| def next(self, default=""): | |
| try: | |
| return self.__next__() | |
| except StopIteration: | |
| return default | |
| def push(self, line): | |
| self._buf.append(line) | |
| def _f(tok): | |
| try: | |
| return float(tok) | |
| except (TypeError, ValueError): | |
| return None | |
| def _after(line, sep): | |
| _, _, rest = line.partition(sep) | |
| return rest.strip() | |
| def _num_after_colon(line): | |
| return _f(line.split(":")[-1].split()[0]) if ":" in line else None | |
| def _is_rule(t): | |
| return bool(t) and set(t) <= set("-=*") | |
| # ----------------------------------------------------------------------------- Fock block | |
| def _read_matrix(pb, nbas, hdr): | |
| """Read one nbas x nbas matrix printed in column blocks, given its first header line.""" | |
| F = np.zeros((nbas, nbas), dtype=np.float64) | |
| done = 0 | |
| while done < nbas: | |
| while hdr.strip() == "": | |
| hdr = next(pb) | |
| ncol = len(hdr.split()) | |
| rows = [next(pb) for _ in range(nbas)] | |
| blk = np.fromstring(" ".join(rows), sep=" ", dtype=np.float64) | |
| blk = blk.reshape(nbas, ncol + 1)[:, 1:] | |
| F[:, done:done + ncol] = blk | |
| done += ncol | |
| if done < nbas: | |
| hdr = next(pb) | |
| return F | |
| def _tri_u_eh(F): | |
| iu = np.triu_indices(F.shape[0]) | |
| return np.rint(F[iu] * EH_TO_UEH).astype(np.int32) | |
| def _next_matrix_header(pb, max_skip=6): | |
| """Look for a column header, skipping blank and rule lines ('----', '****'). | |
| Anything else is pushed back and None is returned.""" | |
| for _ in range(max_skip + 1): | |
| line = pb.next(None) | |
| if line is None: | |
| return None | |
| t = line.strip() | |
| if t == "" or _is_rule(t): | |
| continue | |
| if _COLHDR.match(line): | |
| return line | |
| pb.push(line) | |
| return None | |
| return None | |
| # ----------------------------------------------------------------------------- sub-parsers | |
| def _atom_charges(pb): | |
| """' 0 Xe: 1.277884 [spin]' rows. Returns (charge, spin|None).""" | |
| q, sp = [], [] | |
| for l2 in pb: | |
| t = l2.strip() | |
| if _is_rule(t): | |
| continue | |
| if not t: | |
| if q: | |
| break | |
| continue | |
| if ":" not in t: | |
| pb.push(l2) | |
| break | |
| head, _, rest = l2.partition(":") | |
| hp = head.split() | |
| if not hp or not hp[0].isdigit(): | |
| pb.push(l2) | |
| break | |
| vals = rest.split() | |
| if not vals: | |
| break | |
| q.append(float(vals[0])) | |
| if len(vals) > 1: | |
| sp.append(float(vals[1])) | |
| return (np.array(q) if q else None, np.array(sp) if sp else None) | |
| def _reduced_shells(pb, natm): | |
| """Per-atom shell totals from a REDUCED ORBITAL CHARGES block. Returns (charge, spin|None), | |
| each (natm, len(SHELLS)) or None.""" | |
| if not natm: | |
| return None, None | |
| charge = np.zeros((natm, len(SHELLS))) | |
| spin = None | |
| target = charge | |
| atom = -1 | |
| for l2 in pb: | |
| t = l2.strip() | |
| if not t or _is_rule(t): | |
| continue | |
| if t == "CHARGE": | |
| target = charge | |
| continue | |
| if t == "SPIN": | |
| spin = np.zeros((natm, len(SHELLS))) | |
| target = spin | |
| continue | |
| if ":" not in t: # next section banner | |
| pb.push(l2) | |
| break | |
| parts = l2.split(":") | |
| head = parts[0].split() | |
| if head and head[0].isdigit(): | |
| atom = int(head[0]) | |
| if len(parts) >= 3 and 0 <= atom < natm: | |
| tail = parts[1].split() | |
| if tail and tail[-1] in SHELLS: | |
| v = _f(parts[2].split()[0]) | |
| if v is not None: | |
| target[atom, SHELLS.index(tail[-1])] = v | |
| return charge, spin | |
| def _bond_list(pb): | |
| """'B( 0-Xe, 1-Cl) : 0.1834' three per line, ending at a blank line.""" | |
| out = [] | |
| for l2 in pb: | |
| t = l2.strip() | |
| if _is_rule(t): | |
| continue | |
| if not t: | |
| if out: | |
| break | |
| continue | |
| found = _BOND.findall(l2) | |
| if not found: | |
| pb.push(l2) | |
| break | |
| for i, _, j, _, v in found: | |
| out.append((int(i), int(j), float(v))) | |
| return out | |
| def _mayer_table(pb): | |
| cols = {k: [] for k in ("NA", "ZA", "QA", "VA", "BVA", "FA")} | |
| for l2 in pb: | |
| p = l2.split() | |
| if len(p) != 8 or not p[0].isdigit(): | |
| pb.push(l2) | |
| break | |
| for k, v in zip(("NA", "ZA", "QA", "VA", "BVA", "FA"), p[2:]): | |
| cols[k].append(float(v)) | |
| return {k: (np.array(v) if v else None) for k, v in cols.items()} | |
| def _npa_summary(pb, r, natm): | |
| """RHF rows have 7 fields (El, No, Charge, Core, Valence, Rydberg, Total); UHF rows have an | |
| eighth, the natural spin density.""" | |
| if not natm: | |
| return | |
| q = np.full(natm, np.nan) | |
| core = np.full(natm, np.nan) | |
| val = np.full(natm, np.nan) | |
| ryd = np.full(natm, np.nan) | |
| spin = np.full(natm, np.nan) | |
| for l2 in pb: | |
| t = l2.strip() | |
| if not t or _is_rule(t): | |
| continue | |
| p = t.split() | |
| if t.startswith("* Total *"): | |
| if len(p) >= 7: | |
| r["npa_core"], r["npa_valence"], r["npa_rydberg"] = ( | |
| float(p[4]), float(p[5]), float(p[6])) | |
| break | |
| if len(p) in (7, 8) and p[1].isdigit() and _f(p[2]) is not None: | |
| i = int(p[1]) - 1 | |
| if 0 <= i < natm: | |
| q[i], core[i], val[i], ryd[i] = (float(p[2]), float(p[3]), | |
| float(p[4]), float(p[5])) | |
| if len(p) == 8: | |
| spin[i] = float(p[7]) | |
| continue | |
| if not np.isnan(q).all(): | |
| pb.push(l2) | |
| break | |
| if not np.isnan(q).all(): | |
| r["npa_q"], r["npa_atom_core"] = q, core | |
| r["npa_atom_val"], r["npa_atom_ryd"] = val, ryd | |
| if not np.isnan(spin).all(): | |
| r["npa_spin"] = spin | |
| _CONFIG_SHELL = re.compile(r"(\d)([spdfg])\(\s*([\d.]+)\)") | |
| def _natural_config(pb, natm): | |
| """'Xe 1 [core]5s( 2.00)5p( 4.39)4f( 0.02)5d( 0.15)' -> per-atom occupancy by l.""" | |
| if not natm: | |
| return None | |
| out = np.zeros((natm, len(SHELLS))) | |
| seen = False | |
| for l2 in pb: | |
| t = l2.strip() | |
| if not t or _is_rule(t): | |
| continue | |
| p = t.split() | |
| if len(p) >= 3 and p[1].isdigit() and ("[core]" in t or _CONFIG_SHELL.search(t)): | |
| i = int(p[1]) - 1 | |
| if 0 <= i < natm: | |
| for _, l, v in _CONFIG_SHELL.findall(t): | |
| out[i, SHELLS.index(l)] += float(v) | |
| seen = True | |
| continue | |
| if seen: | |
| pb.push(l2) | |
| break | |
| return out if seen else None | |
| def _orbital_energies(pb): | |
| """Returns (eps_a, occ_a, eps_b, occ_b); the beta pair is None for RHF.""" | |
| eps_a = occ_a = eps_b = occ_b = None | |
| eps, occ = [], [] | |
| spin = 0 | |
| for l2 in pb: | |
| t = l2.strip() | |
| if not t or _is_rule(t): | |
| continue | |
| if "SPIN UP" in t: | |
| spin = 0 | |
| continue | |
| if "SPIN DOWN" in t: | |
| eps_a, occ_a = np.array(eps), np.array(occ) | |
| eps, occ = [], [] | |
| spin = 1 | |
| continue | |
| if t.startswith("NO") and "OCC" in t: | |
| continue | |
| p = t.split() | |
| if len(p) == 4: | |
| o, e = _f(p[1]), _f(p[2]) | |
| if o is not None and e is not None: | |
| occ.append(o) | |
| eps.append(e) | |
| continue | |
| pb.push(l2) | |
| break | |
| if spin == 0: | |
| eps_a, occ_a = np.array(eps), np.array(occ) | |
| else: | |
| eps_b, occ_b = np.array(eps), np.array(occ) | |
| return eps_a, occ_a, eps_b, occ_b | |
| def _dipole(pb, r): | |
| for l2 in pb: | |
| t = l2.strip() | |
| if t.startswith("Electronic contribution"): | |
| r["dipole_elec"] = [float(x) for x in t.split(":")[1].split()] | |
| elif t.startswith("Nuclear contribution"): | |
| r["dipole_nuc"] = [float(x) for x in t.split(":")[1].split()] | |
| elif t.startswith("Total Dipole Moment"): | |
| r["dipole_total"] = [float(x) for x in t.split(":")[1].split()] | |
| elif t.startswith("Magnitude (a.u.)"): | |
| r["dipole_au"] = _num_after_colon(t) | |
| elif t.startswith("Magnitude (Debye)"): | |
| r["dipole_debye"] = _num_after_colon(t) | |
| return | |
| def _quadrupole(pb, r): | |
| for l2 in pb: | |
| t = l2.strip() | |
| p = t.split() | |
| if t.startswith("NUC") and len(p) >= 7: | |
| r["quad_nuc"] = [float(x) for x in p[1:7]] | |
| elif t.startswith("EL") and len(p) >= 7: | |
| r["quad_elec"] = [float(x) for x in p[1:7]] | |
| elif t.startswith("TOT") and len(p) >= 7: | |
| r["quad_total"] = [float(x) for x in p[1:7]] | |
| elif t.startswith("diagonalized tensor"): | |
| nxt = next(pb).split() | |
| if len(nxt) >= 3: | |
| r["quad_diag"] = [float(x) for x in nxt[:3]] | |
| elif t.startswith("Isotropic quadrupole"): | |
| r["quad_iso"] = _num_after_colon(t) | |
| return | |
| # ----------------------------------------------------------------------------- main parser | |
| def _blank_record(): | |
| return { | |
| "version": None, "hftyp": None, "charge": None, "mult": None, "nelec": None, | |
| "nbas": None, "naux": None, "smallest_ovlp_eig": None, "n_lindep": None, | |
| "e_total": None, "e_nuc_rep": None, "e_one_elec": None, "e_two_elec": None, | |
| "e_kinetic": None, "virial_ratio": None, "e_xc": None, "e_nl": None, "e_exchange": None, | |
| "n_alpha_int": None, "n_beta_int": None, | |
| "s2": None, "s2_ideal": None, "s2_dev": None, | |
| "scf_converged": False, "scf_cycles": None, | |
| "conv_denergy": None, "conv_maxdp": None, "conv_rmsdp": None, "conv_diiserr": None, | |
| "dipole_elec": None, "dipole_nuc": None, "dipole_total": None, | |
| "dipole_au": None, "dipole_debye": None, | |
| "quad_nuc": None, "quad_elec": None, "quad_total": None, "quad_diag": None, | |
| "quad_iso": None, "rot_const_cm": None, "rot_const_mhz": None, | |
| "grad_norm": None, "grad_rms": None, "grad_max": None, | |
| "run_time_s": None, "terminated_normally": False, | |
| "nbo_available": False, "npa_available": False, | |
| "npa_core": None, "npa_valence": None, "npa_rydberg": None, | |
| "nbo_lewis": None, "nbo_nonlewis": None, | |
| "elements": [], "coords": None, "ecp_ncore": {}, | |
| "mulliken_q": None, "mulliken_s": None, "loewdin_q": None, "loewdin_s": None, | |
| "mayer_NA": None, "mayer_ZA": None, "mayer_QA": None, | |
| "mayer_VA": None, "mayer_BVA": None, "mayer_FA": None, | |
| "npa_q": None, "npa_atom_core": None, "npa_atom_val": None, "npa_atom_ryd": None, | |
| "npa_spin": None, "natural_config": None, | |
| "mulliken_shell_q": None, "loewdin_shell_q": None, | |
| "mulliken_shell_s": None, "loewdin_shell_s": None, | |
| "mayer_bo": [], "loewdin_bo": [], "mulliken_ovlp": [], | |
| "eps_a": None, "occ_a": None, "eps_b": None, "occ_b": None, | |
| "fock_a": None, "fock_b": None, | |
| } | |
| def parse_orca_out(fh): | |
| r = _blank_record() | |
| pb = _PB(fh) | |
| coords = [] | |
| for line in pb: | |
| s = line.strip() | |
| # ---------------- header / settings | |
| if r["version"] is None and "Program Version" in line: | |
| r["version"] = line.split("Program Version")[1].split()[0] | |
| elif "Hartree-Fock type" in line: | |
| r["hftyp"] = _after(line, "....") | |
| elif "Total Charge" in line and "...." in line: | |
| r["charge"] = int(float(_after(line, "...."))) | |
| elif s.startswith("Multiplicity") and "Mult " in line: | |
| r["mult"] = int(float(_after(line, "...."))) | |
| elif "Number of Electrons" in line and "...." in line: | |
| r["nelec"] = int(float(_after(line, "...."))) | |
| elif line.startswith("Number of basis functions") and r["nbas"] is None: | |
| r["nbas"] = int(_after(line, "...")) | |
| elif "# of basis functions in Aux-J" in line: | |
| r["naux"] = int(_after(line, "...")) | |
| elif "Smallest eigenvalue" in line and r["smallest_ovlp_eig"] is None: | |
| r["smallest_ovlp_eig"] = _f(_after(line, "...")) | |
| elif "Number of eigenvalues below threshold" in line: | |
| r["n_lindep"] = int(_after(line, "...")) | |
| elif "ECP" in line and "replacing" in line and "core electrons" in line: | |
| m = re.search(r"Type\s+(\S+)\s+ECP.*replacing\s+(\d+)\s+core electrons", line) | |
| if m: | |
| r["ecp_ncore"][m.group(1)] = int(m.group(2)) | |
| # ---------------- geometry | |
| elif s == "CARTESIAN COORDINATES (ANGSTROEM)" and not r["elements"]: | |
| next(pb) | |
| for l2 in pb: | |
| p = l2.split() | |
| if len(p) != 4: | |
| pb.push(l2) | |
| break | |
| r["elements"].append(p[0]) | |
| coords.append([float(p[1]), float(p[2]), float(p[3])]) | |
| # ---------------- energies | |
| elif s.startswith("Total Energy") and ":" in line and r["e_total"] is None: | |
| r["e_total"] = _num_after_colon(line) | |
| elif s.startswith("Nuclear Repulsion") and ":" in line: | |
| r["e_nuc_rep"] = _num_after_colon(line) | |
| elif s.startswith("One Electron Energy"): | |
| r["e_one_elec"] = _num_after_colon(line) | |
| elif s.startswith("Two Electron Energy"): | |
| r["e_two_elec"] = _num_after_colon(line) | |
| elif s.startswith("Kinetic Energy"): | |
| r["e_kinetic"] = _num_after_colon(line) | |
| elif s.startswith("Virial Ratio"): | |
| r["virial_ratio"] = _num_after_colon(line) | |
| elif s.startswith("E(XC)"): | |
| r["e_xc"] = _num_after_colon(line) | |
| elif s.startswith("NL Energy, E(C,NL)"): | |
| r["e_nl"] = _num_after_colon(line) | |
| elif s.startswith("New exchange energy"): | |
| r["e_exchange"] = _num_after_colon(line) | |
| elif s.startswith("N(Alpha)"): | |
| r["n_alpha_int"] = _num_after_colon(line) | |
| elif s.startswith("N(Beta)"): | |
| r["n_beta_int"] = _num_after_colon(line) | |
| elif s.startswith("FINAL SINGLE POINT ENERGY") and r["e_total"] is None: | |
| r["e_total"] = _f(s.split()[-1]) | |
| # ---------------- SCF convergence | |
| elif "SCF CONVERGED AFTER" in line: | |
| r["scf_converged"] = True | |
| m = re.search(r"AFTER\s+(\d+)\s+CYCLES", line) | |
| if m: | |
| r["scf_cycles"] = int(m.group(1)) | |
| elif s.startswith("Last Energy change"): | |
| r["conv_denergy"] = _f(_after(line, "...").split()[0]) | |
| elif s.startswith("Last MAX-Density change"): | |
| r["conv_maxdp"] = _f(_after(line, "...").split()[0]) | |
| elif s.startswith("Last RMS-Density change"): | |
| r["conv_rmsdp"] = _f(_after(line, "...").split()[0]) | |
| elif s.startswith("Last DIIS Error"): | |
| r["conv_diiserr"] = _f(_after(line, "...").split()[0]) | |
| elif s.startswith("Expectation value of <S**2>"): | |
| r["s2"] = _num_after_colon(line) | |
| elif s.startswith("Ideal value S*(S+1)"): | |
| r["s2_ideal"] = _num_after_colon(line) | |
| elif s.startswith("Deviation") and r["s2"] is not None and r["s2_dev"] is None: | |
| r["s2_dev"] = _num_after_colon(line) | |
| # ---------------- orbitals and Fock | |
| elif s == "ORBITAL ENERGIES": | |
| ea, oa, eb, ob = _orbital_energies(pb) | |
| r["eps_a"], r["occ_a"] = ea, oa | |
| if eb is not None: | |
| r["eps_b"], r["occ_b"] = eb, ob | |
| elif s == "FOCK" and r["nbas"]: | |
| hdr = _next_matrix_header(pb, max_skip=6) | |
| if hdr is not None: | |
| F = _read_matrix(pb, r["nbas"], hdr) | |
| r["fock_a"] = _tri_u_eh(F) | |
| del F | |
| hdr_b = _next_matrix_header(pb, max_skip=6) | |
| if hdr_b is not None: | |
| Fb = _read_matrix(pb, r["nbas"], hdr_b) | |
| r["fock_b"] = _tri_u_eh(Fb) | |
| del Fb | |
| # ---------------- population analyses | |
| elif s.startswith("MULLIKEN ATOMIC CHARGES"): | |
| r["mulliken_q"], r["mulliken_s"] = _atom_charges(pb) | |
| elif s.startswith("LOEWDIN ATOMIC CHARGES"): | |
| r["loewdin_q"], r["loewdin_s"] = _atom_charges(pb) | |
| elif s.startswith("MULLIKEN REDUCED ORBITAL CHARGES"): | |
| r["mulliken_shell_q"], r["mulliken_shell_s"] = _reduced_shells(pb, len(r["elements"])) | |
| elif s.startswith("LOEWDIN REDUCED ORBITAL CHARGES"): | |
| r["loewdin_shell_q"], r["loewdin_shell_s"] = _reduced_shells(pb, len(r["elements"])) | |
| elif s.startswith("MULLIKEN OVERLAP CHARGES"): | |
| r["mulliken_ovlp"] = _bond_list(pb) | |
| elif s.startswith("LOEWDIN BOND ORDERS"): | |
| r["loewdin_bo"] = _bond_list(pb) | |
| elif s.startswith("ATOM") and "BVA" in s and "ZA" in s: | |
| for k, v in _mayer_table(pb).items(): | |
| r[f"mayer_{k}"] = v | |
| elif s.startswith("Mayer bond orders larger than"): | |
| r["mayer_bo"] = _bond_list(pb) | |
| # ---------------- NBO / NPA | |
| elif "Now starting NBO" in line: | |
| r["nbo_available"] = True | |
| elif s.startswith("Summary of Natural Population Analysis") and r["npa_q"] is None: | |
| r["npa_available"] = True | |
| _npa_summary(pb, r, len(r["elements"])) | |
| elif s.startswith("Atom No") and "Natural Electron Configuration" in s and r["natural_config"] is None: | |
| r["natural_config"] = _natural_config(pb, len(r["elements"])) | |
| elif s.startswith("Total Lewis") and r["nbo_lewis"] is None: | |
| p = s.split() | |
| if len(p) > 2: | |
| r["nbo_lewis"] = _f(p[2]) | |
| elif s.startswith("Total non-Lewis") and r["nbo_nonlewis"] is None: | |
| p = s.split() | |
| if len(p) > 2: | |
| r["nbo_nonlewis"] = _f(p[2]) | |
| # ---------------- properties | |
| elif s == "DIPOLE MOMENT" and r["dipole_total"] is None: | |
| _dipole(pb, r) | |
| elif s == "QUADRUPOLE MOMENT" and r["quad_total"] is None: | |
| _quadrupole(pb, r) | |
| elif s.startswith("Rotational constants in cm-1"): | |
| r["rot_const_cm"] = [float(x) for x in s.split(":")[1].split()] | |
| elif s.startswith("Rotational constants in MHz"): | |
| r["rot_const_mhz"] = [float(x) for x in s.split(":")[1].split()] | |
| elif s.startswith("Norm of the Cartesian gradient"): | |
| r["grad_norm"] = _f(_after(line, "...")) | |
| elif s.startswith("RMS gradient"): | |
| r["grad_rms"] = _f(_after(line, "...")) | |
| elif s.startswith("MAX gradient"): | |
| r["grad_max"] = _f(_after(line, "...")) | |
| elif "ORCA TERMINATED NORMALLY" in line: | |
| r["terminated_normally"] = True | |
| elif s.startswith("TOTAL RUN TIME"): | |
| m = re.search(r"(\d+) days (\d+) hours (\d+) minutes (\d+) seconds (\d+) msec", s) | |
| if m: | |
| d, h, mi, sec, ms = (int(x) for x in m.groups()) | |
| r["run_time_s"] = d * 86400 + h * 3600 + mi * 60 + sec + ms / 1000 | |
| r["coords"] = np.array(coords, dtype=np.float64) if coords else None | |
| return r | |
| # ----------------------------------------------------------------------------- engrad | |
| def parse_engrad(fh): | |
| """Returns (n_atoms, energy, gradient (n,3) Eh/bohr, Z (n,), coords_bohr (n,3)).""" | |
| lines = [l for l in fh if not l.lstrip().startswith("#") and l.strip()] | |
| it = iter(lines) | |
| n = int(next(it).split()[0]) | |
| energy = float(next(it).split()[0]) | |
| vals = [float(next(it).split()[0]) for _ in range(3 * n)] | |
| zs, xyz = [], [] | |
| for _ in range(n): | |
| p = next(it).split() | |
| zs.append(int(p[0])) | |
| xyz.append([float(x) for x in p[1:4]]) | |
| return n, energy, np.array(vals).reshape(n, 3), np.array(zs), np.array(xyz) | |
| def iter_lines(fb, encoding="utf-8", chunk=1 << 20): | |
| """Yield decoded lines from a binary stream. tarfile's stream mode ('r|') hands back objects | |
| that TextIOWrapper rejects (no seekable()), so decoding is done here.""" | |
| buf = b"" | |
| while True: | |
| data = fb.read(chunk) | |
| if not data: | |
| break | |
| buf += data | |
| parts = buf.split(b"\n") | |
| buf = parts.pop() | |
| for part in parts: | |
| yield part.decode(encoding, "replace") | |
| if buf: | |
| yield buf.decode(encoding, "replace") | |
| # ----------------------------------------------------------------------------- archive entry | |
| def parse_archive(tar_path): | |
| """Stream an orca.tar.zst and parse the members we need. Never writes to disk.""" | |
| proc = subprocess.Popen(["zstd", "-dc", tar_path], stdout=subprocess.PIPE, | |
| stderr=subprocess.DEVNULL) | |
| rec, grad = None, None | |
| try: | |
| with tarfile.open(fileobj=proc.stdout, mode="r|") as tf: | |
| for member in tf: | |
| name = os.path.basename(member.name) | |
| if name == "orca.out": | |
| rec = parse_orca_out(iter_lines(tf.extractfile(member))) | |
| elif name == "orca.engrad": | |
| grad = parse_engrad(iter_lines(tf.extractfile(member))) | |
| finally: | |
| if proc.stdout: | |
| proc.stdout.close() | |
| proc.wait() | |
| if rec is None: | |
| raise ValueError(f"no orca.out in {tar_path}") | |
| if grad is not None: | |
| n, e_grad, g, z, xyz_bohr = grad | |
| rec["forces"] = -g | |
| rec["atomic_numbers"] = z | |
| rec["coords_bohr"] = xyz_bohr | |
| rec["e_total_engrad"] = e_grad | |
| else: | |
| rec["forces"] = rec["atomic_numbers"] = None | |
| rec["coords_bohr"] = rec["e_total_engrad"] = None | |
| return rec | |