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import os
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import sys
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import string
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from tqdm import tqdm
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from collections import defaultdict
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from typing import List, Tuple, Dict
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def read_lines(fname: str) -> List[str]:
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"""
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Reads all lines from an input file and returns them as a list of strings.
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Args:
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fname (str): path to the input file to read
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Returns:
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List[str]: a list of strings, where each string is a line from the file
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and returns an empty list if the file does not exist.
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"""
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if not os.path.exists(fname):
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return []
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with open(fname, "r") as f:
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lines = f.readlines()
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return lines
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def create_txt(out_file: str, lines: List[str]):
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"""
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Creates a text file and writes the given list of lines to file.
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Args:
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out_file (str): path to the output file to be created.
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lines (List[str]): a list of strings to be written to the output file.
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"""
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add_newline = not "\n" in lines[0]
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outfile = open("{}".format(out_file), "w", encoding="utf-8")
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for line in lines:
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if add_newline:
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outfile.write(line + "\n")
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else:
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outfile.write(line)
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outfile.close()
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def pair_dedup_lists(src_list: List[str], tgt_list: List[str]) -> Tuple[List[str], List[str]]:
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"""
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Removes duplicates from two lists by pairing their elements and removing duplicates from the pairs.
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Args:
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src_list (List[str]): a list of strings from source language data.
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tgt_list (List[str]): a list of strings from target language data.
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Returns:
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Tuple[List[str], List[str]]: a tuple of deduplicated version of "`(src_list, tgt_list)`".
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"""
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src_tgt = list(set(zip(src_list, tgt_list)))
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src_deduped, tgt_deduped = zip(*src_tgt)
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return src_deduped, tgt_deduped
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def pair_dedup_files(src_file: str, tgt_file: str):
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"""
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Removes duplicates from two files by pairing their lines and removing duplicates from the pairs.
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Args:
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src_file (str): path to the source language file to deduplicate.
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tgt_file (str): path to the target language file to deduplicate.
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"""
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src_lines = read_lines(src_file)
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tgt_lines = read_lines(tgt_file)
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len_before = len(src_lines)
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src_dedupped, tgt_dedupped = pair_dedup_lists(src_lines, tgt_lines)
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len_after = len(src_dedupped)
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num_duplicates = len_before - len_after
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print(f"Dropped duplicate pairs in {src_file} Num duplicates -> {num_duplicates}")
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create_txt(src_file, src_dedupped)
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create_txt(tgt_file, tgt_dedupped)
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def strip_and_normalize(line: str) -> str:
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"""
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Strips and normalizes a string by lowercasing it, removing spaces and punctuation.
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Args:
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line (str): string to strip and normalize.
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Returns:
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str: stripped and normalized version of the input string.
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"""
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exclist = string.punctuation + "\u0964"
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table_ = str.maketrans("", "", exclist)
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line = line.replace(" ", "").lower()
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line = line.translate(table_)
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return line
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def expand_tupled_list(list_of_tuples: List[Tuple[str, str]]) -> Tuple[List[str], List[str]]:
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"""
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Expands a list of tuples into two lists by extracting the first and second elements of the tuples.
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Args:
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list_of_tuples (List[Tuple[str, str]]): a list of tuples, where each tuple contains two strings.
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Returns:
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Tuple[List[str], List[str]]: a tuple containing two lists, the first being the first elements of the
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tuples in `list_of_tuples` and the second being the second elements.
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"""
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list_a, list_b = map(list, zip(*list_of_tuples))
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return list_a, list_b
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def normalize_and_gather_all_benchmarks(devtest_dir: str) -> Dict[str, Dict[str, List[str]]]:
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"""
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Normalizes and gathers all benchmark datasets from a directory into a dictionary.
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Args:
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devtest_dir (str): path to the directory containing the subdirectories named after the benchmark datasets, \
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where each subdirectory is named in the format "`src_lang-tgt_lang`" and contain four files: `dev.src_lang`, \
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`dev.tgt_lang`, `test.src_lang`, and `test.tgt_lang` representing the development and test sets for the language pair.
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Returns:
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Dict[str, Dict[str, List[str]]]: a dictionary mapping language pairs (in the format "`src_lang-tgt_lang`") \
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to dictionaries containing two lists, the first being the normalized source language lines and the \
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second being the normalized target language lines for all benchmark datasets.
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"""
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devtest_pairs_normalized = defaultdict(lambda: defaultdict(list))
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for benchmark in os.listdir(devtest_dir):
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print(f"{devtest_dir}/{benchmark}")
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for pair in tqdm(os.listdir(f"{devtest_dir}/{benchmark}")):
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src_lang, tgt_lang = pair.split("-")
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src_dev = read_lines(f"{devtest_dir}/{benchmark}/{pair}/dev.{src_lang}")
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tgt_dev = read_lines(f"{devtest_dir}/{benchmark}/{pair}/dev.{tgt_lang}")
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src_test = read_lines(f"{devtest_dir}/{benchmark}/{pair}/test.{src_lang}")
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tgt_test = read_lines(f"{devtest_dir}/{benchmark}/{pair}/test.{tgt_lang}")
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if tgt_test == [] or tgt_dev == []:
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print(f"{benchmark} does not have {src_lang}-{tgt_lang} data")
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continue
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src_devtest = src_dev + src_test
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tgt_devtest = tgt_dev + tgt_test
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src_devtest = [strip_and_normalize(line) for line in src_devtest]
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tgt_devtest = [strip_and_normalize(line) for line in tgt_devtest]
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devtest_pairs_normalized[pair]["src"].extend(src_devtest)
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devtest_pairs_normalized[pair]["tgt"].extend(tgt_devtest)
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for pair in devtest_pairs_normalized:
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src_devtest = devtest_pairs_normalized[pair]["src"]
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tgt_devtest = devtest_pairs_normalized[pair]["tgt"]
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src_devtest, tgt_devtest = pair_dedup_lists(src_devtest, tgt_devtest)
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devtest_pairs_normalized[pair]["src"] = src_devtest
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devtest_pairs_normalized[pair]["tgt"] = tgt_devtest
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return devtest_pairs_normalized
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def remove_train_devtest_overlaps(train_dir: str, devtest_dir: str):
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"""
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Removes overlapping data between the training and dev/test (benchmark)
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datasets for all language pairs.
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Args:
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train_dir (str): path of the directory containing the training data.
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devtest_dir (str): path of the directory containing the dev/test data.
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"""
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devtest_pairs_normalized = normalize_and_gather_all_benchmarks(devtest_dir)
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all_src_sentences_normalized = []
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for key in devtest_pairs_normalized:
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all_src_sentences_normalized.extend(devtest_pairs_normalized[key]["src"])
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all_src_sentences_normalized = list(set(all_src_sentences_normalized))
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src_overlaps = []
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tgt_overlaps = []
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pairs = os.listdir(train_dir)
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for pair in pairs:
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src_lang, tgt_lang = pair.split("-")
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new_src_train, new_tgt_train = [], []
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src_train = read_lines(f"{train_dir}/{pair}/train.{src_lang}")
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tgt_train = read_lines(f"{train_dir}/{pair}/train.{tgt_lang}")
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len_before = len(src_train)
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if len_before == 0:
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continue
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src_train_normalized = [strip_and_normalize(line) for line in src_train]
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tgt_train_normalized = [strip_and_normalize(line) for line in tgt_train]
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src_devtest_normalized = all_src_sentences_normalized
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tgt_devtest_normalized = devtest_pairs_normalized[pair]["tgt"]
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overlaps = set(src_train_normalized) & set(src_devtest_normalized)
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src_overlaps.extend(list(overlaps))
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overlaps = set(tgt_train_normalized) & set(tgt_devtest_normalized)
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tgt_overlaps.extend(list(overlaps))
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src_overlaps_dict, tgt_overlaps_dict = {}, {}
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for line in src_overlaps:
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src_overlaps_dict[line] = 1
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for line in tgt_overlaps:
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tgt_overlaps_dict[line] = 1
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idx = 0
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for src_line_norm, tgt_line_norm in tqdm(
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zip(src_train_normalized, tgt_train_normalized), total=len_before
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):
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if src_overlaps_dict.get(src_line_norm, None):
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continue
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if tgt_overlaps_dict.get(tgt_line_norm, None):
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continue
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new_src_train.append(src_train[idx])
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new_tgt_train.append(tgt_train[idx])
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idx += 1
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len_after = len(new_src_train)
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print(
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f"Detected overlaps between train and devetest for {pair} is {len_before - len_after}"
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)
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print(f"saving new files at {train_dir}/{pair}/")
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create_txt(f"{train_dir}/{pair}/train.{src_lang}", new_src_train)
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create_txt(f"{train_dir}/{pair}/train.{tgt_lang}", new_tgt_train)
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if __name__ == "__main__":
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train_data_dir = sys.argv[1]
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devtest_data_dir = sys.argv[2]
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remove_train_devtest_overlaps(train_data_dir, devtest_data_dir)
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