full train results
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dev-0/out.tsv
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dev-0/out.tsv
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dev-1/out.tsv
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dev-1/out.tsv
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retroc.ipynb
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retroc.ipynb
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{
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"metadata": {
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"language_info": {
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"codemirror_mode": {
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"name": "ipython",
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"version": 3
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},
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"file_extension": ".py",
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"mimetype": "text/x-python",
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"name": "python",
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"nbconvert_exporter": "python",
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"pygments_lexer": "ipython3",
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"version": "3.8.3"
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"kernelspec": {
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"name": "python38332bit715560a51b8a44948ee59d26a58cf272",
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"display_name": "Python 3.8.3 32-bit"
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},
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"metadata": {
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"interpreter": {
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"hash": "d4bdc0d8028da516e3b937f3ab23da3f18f7264589053952c883afefa2219368"
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}
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}
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},
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"nbformat": 4,
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"nbformat_minor": 2,
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"cells": [
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{
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"cell_type": "code",
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"execution_count": null,
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"execution_count": 1,
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"metadata": {},
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"outputs": [],
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"source": [
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"import pandas as pd\n",
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"import csv\n",
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"from sklearn.linear_model import LinearRegression\n",
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"from stop_words import get_stop_words\n",
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"from sklearn.feature_extraction.text import TfidfVectorizer"
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},
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{
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"cell_type": "code",
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"execution_count": null,
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"execution_count": 2,
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"metadata": {},
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"outputs": [],
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"outputs": [
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{
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"data": {
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"text/plain": [
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"LinearRegression()"
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]
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},
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"execution_count": 2,
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"metadata": {},
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"output_type": "execute_result"
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}
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],
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"source": [
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"#trening\n",
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"\n",
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"#dane treningowe\n",
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"train_data = pd.read_csv('train/train.tsv.xz', compression='xz', sep='\\t')\n",
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"train_data = pd.read_csv('train/train.tsv.xz', compression='xz', header=None, sep='\\t')\n",
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"\n",
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"#regresja liniowa\n",
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"LR = LinearRegression()\n",
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"#vectorizer\n",
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"VEC = TfidfVectorizer(stop_words=get_stop_words('polish'))\n",
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"#wektoryzacja danych treningowych\n",
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"train_x = VEC.fit_transform(train_data[2])\n",
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"train_x = VEC.fit_transform(train_data[4])\n",
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"#średnia dat\n",
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"dm = mean([train_data[0],train_data[1]])\n",
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"dm = (train_data[0] + train_data[1])/2\n",
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"#trening\n",
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"LR.fit(train_x, dm)"
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]
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},
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{
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"cell_type": "code",
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"execution_count": null,
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"execution_count": 15,
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"metadata": {},
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"outputs": [],
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"source": [
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"#dev-0 predict\n",
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"\n",
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"#dane treningowe\n",
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"dev0_data = pd.read_csv('dev-0/in.tsv', sep='\\t')\n",
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"dev0_data = pd.read_csv('dev-0/in.tsv', header=None, error_bad_lines=False, quoting=csv.QUOTE_NONE, sep='\\t')\n",
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"\n",
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"#wektoryzacja danych treningowych\n",
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"dev0_x = VEC.transform(dev0_data[0])\n",
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},
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{
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"cell_type": "code",
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"execution_count": null,
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"execution_count": 16,
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"metadata": {
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"tags": []
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},
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"#dev-1 predict\n",
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"\n",
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"#dane treningowe\n",
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"dev1_data = pd.read_csv('dev-1/in.tsv', sep='\\t')\n",
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"dev1_data = pd.read_csv('dev-1/in.tsv', header=None, error_bad_lines=False, quoting=csv.QUOTE_NONE, sep='\\t')\n",
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"\n",
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"#wektoryzacja danych treningowych\n",
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"dev1_x = VEC.transform(dev1_data[0])\n",
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},
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{
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"cell_type": "code",
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"execution_count": null,
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"execution_count": 17,
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"metadata": {},
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"outputs": [],
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"source": [
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"#test-A predict\n",
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"\n",
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"#dane treningowe\n",
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"testA_data = pd.read_csv('testA/in.tsv', sep='\\t')\n",
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"testA_data = pd.read_csv('test-A/in.tsv', header=None, error_bad_lines=False, quoting=csv.QUOTE_NONE, sep='\\t')\n",
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"\n",
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"#wektoryzacja danych treningowych\n",
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"testA_x = VEC.transform(testA_data[0])\n",
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"#predykcja\n",
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"testA_y = LR.predict(testA_x)\n",
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"#zapis wyników\n",
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"testA_y.tofile('testA/out.tsv', sep='\\n')"
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"testA_y.tofile('test-A/out.tsv', sep='\\n')"
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]
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}
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]
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}
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],
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"metadata": {
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"kernelspec": {
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"display_name": "Python 3",
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"language": "python",
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"name": "python3"
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},
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"language_info": {
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"codemirror_mode": {
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"name": "ipython",
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"version": 3
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},
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"file_extension": ".py",
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"mimetype": "text/x-python",
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"name": "python",
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"nbconvert_exporter": "python",
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"pygments_lexer": "ipython3",
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"version": "3.8.0"
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},
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"metadata": {
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"interpreter": {
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"hash": "d4bdc0d8028da516e3b937f3ab23da3f18f7264589053952c883afefa2219368"
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}
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}
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},
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"nbformat": 4,
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"nbformat_minor": 2
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}
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14220
test-A/out.tsv
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test-A/out.tsv
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