def get_pred(invoice_id):
    # 1. lms_limits
    # 2. Cibil

    db = db_init()

    # scf invoice get business_id for that invoice
    scf_invoice = db['scf_invoice']
    data = scf_invoice.find({
        "invoice_id": invoice_id
    }, no_cursor_timeout=True).sort("_id", pymongo.DESCENDING).limit(1)
    for i, row in enumerate(data):
        business_id = str(row['business_id'])
        print("business_id : " + str(business_id))

    lms_loan = db['lms_limits_master']
    data = lms_loan.find({
        "business_id": business_id
    }, no_cursor_timeout=True).sort("_id", pymongo.DESCENDING).limit(1)

    for i, row in enumerate(data):
        id = str(row['_id'])
        for col in lms_limits_cols:
            if col in row:
                if str(row[col]) == "nan":
                    data_df.loc[0, col] = "0"
                else:
                    data_df.loc[0, col] = str(row[col])
            else:
                data_df.loc[0, col] = "0"
                print(col + " :: " + "0")

    return cibil_flat_data_func(business_id)
Exemplo n.º 2
0
def predict_default(business_id):
    db = db_init()

    # scf invoice get business_id for that invoice
    cas_business = db['cas_business']
    data = cas_business.find({"business_id": business_id}, no_cursor_timeout=True).sort("_id",
                                                                                        pymongo.DESCENDING).limit(1)
    for i, row in enumerate(data):
        date_of_birth = str(row['business_partners'][0]['date_of_birth'])
        print("date_of_birth : " + str(date_of_birth))
        latest_cibil_score = row['latest_cibil_score']

    date_of_birth = parse(date_of_birth)
    print(date_of_birth)
    now = datetime.datetime.now()
    print(now)

    age = now - date_of_birth
    print(age.days)
    from datetime import date, timedelta

    age = age.days / 365.2425
    print(int(age))

    # 1. get age from 0th business partner - cas business
    # 2. latest_cibil_score - cas business
    print(latest_cibil_score)
    cibil_score_group = group_cibil_score(latest_cibil_score)

    # scf invoice get business_id for that invoice
    lms_limits_master = db['lms_limits_master']
    data = lms_limits_master.find({"business_id": business_id}, no_cursor_timeout=True).sort("_id",
                                                                                             pymongo.DESCENDING).limit(
        1)
    for i, row in enumerate(data):
        limit_amount_sanctioned = str(row['limit_amount_sanctioned'])
        no_credit_bounces = row['no_credit_bounces']
        no_credit_bounces_last_6_months = row['no_credit_bounces_last_6_months']
        no_credit_bounces_last_3_months = row['no_credit_bounces_last_3_months']
        back_to_back_bounces_last_3_months = row['back_to_back_bounces_last_3_months']

    lms_limit_master = ["limit_amount_sanctioned",
                        "no_credit_bounces",
                        "no_credit_bounces_last_6_months",
                        "no_credit_bounces_last_3_months",
                        "back_to_back_bounces_last_3_months"]

    cas_business = ["age", "latest_cibil_score"]

    cols = lms_limit_master.append(cas_business)
    all_data_df = pd.DataFrame(columns=cols)

    all_data_df.loc[0, 'cibil_score_group'] = cibil_score_group
    all_data_df.loc[0, 'age'] = age
    all_data_df.loc[0, 'limit_amount_sanctioned'] = limit_amount_sanctioned
    all_data_df.loc[0, 'no_credit_bounces'] = no_credit_bounces
    all_data_df.loc[0, 'no_credit_bounces_last_6_months'] = no_credit_bounces_last_6_months
    all_data_df.loc[0, 'no_credit_bounces_last_3_months'] = no_credit_bounces_last_3_months
    all_data_df.loc[0, 'back_to_back_bounces_last_3_months'] = back_to_back_bounces_last_3_months

    all_data_df = pd.concat(
        [all_data_df, pd.get_dummies(all_data_df['cibil_score_group'], prefix='category', dummy_na=True)], axis=1).drop(
        ['cibil_score_group'], axis=1)

    # print(all_data_df)

    # load and predict
    all_cols = ["limit_amount_sanctioned",
                "no_credit_bounces",
                "age",
                "no_credit_bounces_last_6_months",
                "category_8.0",
                "no_credit_bounces_last_3_months",
                "category_-1.0",
                "back_to_back_bounces_last_3_months",
                "category_6.0"]

    if cibil_score_group == 8:
        all_data_df['category_6.0'] = 0
        all_data_df['category_-1.0'] = 0

    elif cibil_score_group == -1:

        all_data_df['category_6.0'] = 0
        all_data_df['category_8.0'] = 0

    elif cibil_score_group == 6:

        all_data_df['category_8.0'] = 0
        all_data_df['category_-1.0'] = 0
    else:
        all_data_df['category_8.0'] = 0
        all_data_df['category_6.0'] = 0
        all_data_df['category_-1.0'] = 0

    predict_df = all_data_df[all_cols]
    print(predict_df)

    import pickle

    filename = 'service_api_proba/proba_8_cols.sav'
    loaded_model = pickle.load(open(filename, 'rb'))

    result = loaded_model.predict_proba(predict_df)
    print(result)
    print("Probablity of giving : " + str(result[0][1]))
    response = str(result[0][1])
    return response
def cibil_flat_data_func(business_id):
    db = db_init()
    cas_bus_partner_cibil_analysis = db['cas_bus_partner_cibil_analysis']
    data = cas_bus_partner_cibil_analysis.find({
        "business_id": business_id
    }).sort("_id", pymongo.DESCENDING).limit(1)

    df = pd.DataFrame(list(data))

    print(df.columns)
    # print(df.dtypes)

    # print(df['Account'])

    df3 = df.drop_duplicates('business_id')

    accounts_column_names = [
        "business_id", "cibil_pull_date", "last_account_opened_months",
        "monthly_emi_for_active_accounts",
        "sanctioned_amt_for_active_accounts",
        "no_of_loans_opened_last_3_months",
        "value_of_loans_opened_last_12_months", "total_number_of_accounts",
        "no_of_loans_paid_off_successfully",
        "value_of_loans_opened_last_3_months", "number_of_active_accounts",
        "total_value_of_accounts", "account_type",
        "no_of_loans_opened_last_12_months", "latest_disbursed_date",
        "value_of_loans_paid_off_successfully",
        "current_bal_for_active_accounts",
        "amt_written_off_total_liabilities_ratio",
        "no_acs_written_off_total_liabilities_ratio", "amt_bl_paid_off",
        "last_loan_drawn_in_months", "no_acs_overdue_total_accounts_ratio",
        "no_of_bl_paid_off", "credit_card_usage_total_limits_ratio",
        "no_of_running_bl_pl", "no_of_enquiries_last_3_months",
        "no_of_enquiries_last_12_months"
    ]

    cols_scoring = [
        "amt_written_off_total_liabilities_ratio",
        "no_acs_written_off_total_liabilities_ratio", "amt_bl_paid_off",
        "last_loan_drawn_in_months", "no_acs_overdue_total_accounts_ratio",
        "no_of_bl_paid_off", "credit_card_usage_total_limits_ratio",
        "no_of_running_bl_pl"
    ]

    enquiry = [
        "no_of_enquiries_last_3_months", "no_of_enquiries_last_12_months"
    ]

    df_mongo_buckets = pd.DataFrame(columns=accounts_column_names)

    i = 0
    print(df3.dtypes)

    print(df3)

    # df3['business_id'] = df3['business_id'].astype(str)
    print(df3.dtypes)

    for row in df3.iterrows():
        account = row[1]['Account']

        id = row[1]['_id']
        if 'cibil_pull_date' in row[1]:
            cibil_pull_date = row[1]['cibil_pull_date']
            if not str(cibil_pull_date) == "nan":
                if "$date" in cibil_pull_date:
                    cibil_pull_date = cibil_pull_date['$date']

        if 'business_id' in row[1]:
            business_id = str(row[1]['business_id'])
        else:
            business_id = str(0)

        print(business_id)

        if 'business_pan' in row[1]:
            business_pan = row[1]['business_pan']
        else:
            business_pan = 0

        for data in account:
            # print(data)

            ################################

            print(row[1])

            df_mongo_buckets.loc[i, 'business_id'] = str(business_id)
            # df_mongo_buckets.loc[i, 'business_pan'] = business_pan
            df_mongo_buckets.loc[i, 'cibil_pull_date'] = cibil_pull_date

            # print(business_id)
            # print(business_pan)
            # print(id)
            # print(type(business_pan))
            # print(type(row[1]['Scoring']))

            scoring = str(row[1]['Scoring'])
            # print(type(scoring))
            if scoring != "nan":
                # print(scoring)

                # scoring = ast.literal_eval(scoring)
                if 'Scoring' in row[1]:
                    # print(row[1])
                    scoring = row[1]['Scoring']
                    if "amt_written_off_total_liabilities_ratio" in scoring:
                        df_mongo_buckets.loc[
                            i,
                            'amt_written_off_total_liabilities_ratio'] = scoring[
                                'amt_written_off_total_liabilities_ratio']

                    if "no_acs_written_off_total_liabilities_ratio" in scoring:
                        df_mongo_buckets.loc[
                            i,
                            'no_acs_written_off_total_liabilities_ratio'] = scoring[
                                'no_acs_written_off_total_liabilities_ratio']

                    if "amt_bl_paid_off" in scoring:
                        df_mongo_buckets.loc[
                            i, 'amt_bl_paid_off'] = scoring['amt_bl_paid_off']

                    if "last_loan_drawn_in_months" in scoring:
                        df_mongo_buckets.loc[
                            i, 'last_loan_drawn_in_months'] = scoring[
                                'last_loan_drawn_in_months']

                    if "no_acs_overdue_total_accounts_ratio" in scoring:
                        df_mongo_buckets.loc[
                            i,
                            'no_acs_overdue_total_accounts_ratio'] = scoring[
                                'no_acs_overdue_total_accounts_ratio']

                    if "no_of_bl_paid_off" in scoring:
                        df_mongo_buckets.loc[
                            i,
                            'no_of_bl_paid_off'] = scoring['no_of_bl_paid_off']

                    if "credit_card_usage_total_limits_ratio" in scoring:
                        df_mongo_buckets.loc[
                            i,
                            'credit_card_usage_total_limits_ratio'] = scoring[
                                'credit_card_usage_total_limits_ratio']

                    if "no_of_running_bl_pl" in scoring:
                        df_mongo_buckets.loc[i,
                                             'no_of_running_bl_pl'] = scoring[
                                                 'no_of_running_bl_pl']

            ###################
            enquiry = str(row[1]['Enquiry'])

            if enquiry != "nan":
                if 'Enquiry' in row[1]:
                    enquiry = ast.literal_eval(enquiry)

                    if "no_of_enquiries_last_3_months" in enquiry:
                        df_mongo_buckets.loc[
                            i, 'no_of_enquiries_last_3_months'] = enquiry[
                                'no_of_enquiries_last_3_months']

                    if "no_of_enquiries_last_12_months" in enquiry:
                        df_mongo_buckets.loc[
                            i, 'no_of_enquiries_last_12_months'] = enquiry[
                                'no_of_enquiries_last_12_months']

            #################################
            if "last_account_opened_months" in data:
                df_mongo_buckets.loc[i, 'last_account_opened_months'] = data[
                    'last_account_opened_months']

            if "monthly_emi_for_active_accounts" in data:
                df_mongo_buckets.loc[i,
                                     'monthly_emi_for_active_accounts'] = data[
                                         'monthly_emi_for_active_accounts']

            if "sanctioned_amt_for_active_accounts" in data:
                df_mongo_buckets.loc[
                    i, 'sanctioned_amt_for_active_accounts'] = data[
                        'sanctioned_amt_for_active_accounts']

            if "no_of_loans_opened_last_3_months" in data:
                df_mongo_buckets.loc[
                    i, 'no_of_loans_opened_last_3_months'] = data[
                        'no_of_loans_opened_last_3_months']

            if "total_number_of_accounts" in data:
                df_mongo_buckets.loc[i, 'total_number_of_accounts'] = data[
                    'total_number_of_accounts']

            if "no_of_loans_paid_off_successfully" in data:
                df_mongo_buckets.loc[
                    i, 'no_of_loans_paid_off_successfully'] = data[
                        'no_of_loans_paid_off_successfully']

            if "value_of_loans_opened_last_3_months" in data:
                df_mongo_buckets.loc[
                    i, 'value_of_loans_opened_last_3_months'] = data[
                        'value_of_loans_opened_last_3_months']

            if "value_of_loans_opened_last_12_months" in data:
                df_mongo_buckets.loc[
                    i, 'value_of_loans_opened_last_12_months'] = data[
                        'value_of_loans_opened_last_12_months']

            if "number_of_active_accounts" in data:
                df_mongo_buckets.loc[i, 'number_of_active_accounts'] = data[
                    'number_of_active_accounts']

            if "total_value_of_accounts" in data:
                df_mongo_buckets.loc[i, 'total_value_of_accounts'] = data[
                    'total_value_of_accounts']

            if "total_number_of_accounts" in data:
                df_mongo_buckets.loc[i, 'total_number_of_accounts'] = data[
                    'total_number_of_accounts']

            if "no_of_loans_opened_last_12_months" in data:
                df_mongo_buckets.loc[
                    i, 'no_of_loans_opened_last_12_months'] = data[
                        'no_of_loans_opened_last_12_months']

            if "account_type" in data:
                df_mongo_buckets.loc[i, 'account_type'] = data['account_type']

            if "latest_disbursed_date" in data:
                df_mongo_buckets.loc[
                    i, 'latest_disbursed_date'] = data['latest_disbursed_date']

            if "value_of_loans_paid_off_successfully" in data:
                df_mongo_buckets.loc[
                    i, 'value_of_loans_paid_off_successfully'] = data[
                        'value_of_loans_paid_off_successfully']

            if "current_bal_for_active_accounts" in data:
                df_mongo_buckets.loc[i,
                                     'current_bal_for_active_accounts'] = data[
                                         'current_bal_for_active_accounts']

            i += 1

    # df_mongo_buckets.to_csv(
    #     'api_cibil_group_data3.csv')
    #
    # df = pd.read_csv(
    #     'api_cibil_group_data3.csv')

    # all columns
    all_cols = [
        'last_account_opened_months', 'monthly_emi_for_active_accounts',
        'sanctioned_amt_for_active_accounts',
        'no_of_loans_opened_last_3_months',
        'value_of_loans_opened_last_12_months', 'total_number_of_accounts',
        'no_of_loans_paid_off_successfully',
        'value_of_loans_opened_last_3_months', 'number_of_active_accounts',
        'total_value_of_accounts', 'no_of_loans_opened_last_12_months',
        'latest_disbursed_date', 'value_of_loans_paid_off_successfully',
        'current_bal_for_active_accounts',
        'amt_written_off_total_liabilities_ratio',
        'no_acs_written_off_total_liabilities_ratio', 'amt_bl_paid_off',
        'last_loan_drawn_in_months', 'no_acs_overdue_total_accounts_ratio',
        'no_of_bl_paid_off', 'credit_card_usage_total_limits_ratio',
        'no_of_running_bl_pl', 'no_of_enquiries_last_3_months',
        'no_of_enquiries_last_12_months'
    ]

    unique_account_type = [
        '5', '51', '10', '13', '2', '0', '6', '7', '9', '1', '17', '61', '52',
        '39', '34', '32', '3', '53', '12', '4', '8', '59', '15', '33', '54',
        '40', '55', '36', '14', '50', '43', 'None', 'blank', '41'
    ]

    generate_all_cols = []
    for rows in unique_account_type:
        for col in all_cols:
            generate_all_cols.append(str(col) + "_" + str(rows))

    print(generate_all_cols)

    df_cols = [
        'last_account_opened_months_5', 'monthly_emi_for_active_accounts_5',
        'sanctioned_amt_for_active_accounts_5',
        'no_of_loans_opened_last_3_months_5',
        'value_of_loans_opened_last_12_months_5', 'total_number_of_accounts_5',
        'no_of_loans_paid_off_successfully_5',
        'value_of_loans_opened_last_3_months_5', 'number_of_active_accounts_5',
        'total_value_of_accounts_5', 'no_of_loans_opened_last_12_months_5',
        'latest_disbursed_date_5', 'value_of_loans_paid_off_successfully_5',
        'current_bal_for_active_accounts_5',
        'amt_written_off_total_liabilities_ratio_5',
        'no_acs_written_off_total_liabilities_ratio_5', 'amt_bl_paid_off_5',
        'last_loan_drawn_in_months_5', 'no_acs_overdue_total_accounts_ratio_5',
        'no_of_bl_paid_off_5', 'credit_card_usage_total_limits_ratio_5',
        'no_of_running_bl_pl_5', 'no_of_enquiries_last_3_months_5',
        'no_of_enquiries_last_12_months_5', 'last_account_opened_months_51',
        'monthly_emi_for_active_accounts_51',
        'sanctioned_amt_for_active_accounts_51',
        'no_of_loans_opened_last_3_months_51',
        'value_of_loans_opened_last_12_months_51',
        'total_number_of_accounts_51', 'no_of_loans_paid_off_successfully_51',
        'value_of_loans_opened_last_3_months_51',
        'number_of_active_accounts_51', 'total_value_of_accounts_51',
        'no_of_loans_opened_last_12_months_51', 'latest_disbursed_date_51',
        'value_of_loans_paid_off_successfully_51',
        'current_bal_for_active_accounts_51',
        'amt_written_off_total_liabilities_ratio_51',
        'no_acs_written_off_total_liabilities_ratio_51', 'amt_bl_paid_off_51',
        'last_loan_drawn_in_months_51',
        'no_acs_overdue_total_accounts_ratio_51', 'no_of_bl_paid_off_51',
        'credit_card_usage_total_limits_ratio_51', 'no_of_running_bl_pl_51',
        'no_of_enquiries_last_3_months_51',
        'no_of_enquiries_last_12_months_51', 'last_account_opened_months_10',
        'monthly_emi_for_active_accounts_10',
        'sanctioned_amt_for_active_accounts_10',
        'no_of_loans_opened_last_3_months_10',
        'value_of_loans_opened_last_12_months_10',
        'total_number_of_accounts_10', 'no_of_loans_paid_off_successfully_10',
        'value_of_loans_opened_last_3_months_10',
        'number_of_active_accounts_10', 'total_value_of_accounts_10',
        'no_of_loans_opened_last_12_months_10', 'latest_disbursed_date_10',
        'value_of_loans_paid_off_successfully_10',
        'current_bal_for_active_accounts_10',
        'amt_written_off_total_liabilities_ratio_10',
        'no_acs_written_off_total_liabilities_ratio_10', 'amt_bl_paid_off_10',
        'last_loan_drawn_in_months_10',
        'no_acs_overdue_total_accounts_ratio_10', 'no_of_bl_paid_off_10',
        'credit_card_usage_total_limits_ratio_10', 'no_of_running_bl_pl_10',
        'no_of_enquiries_last_3_months_10',
        'no_of_enquiries_last_12_months_10', 'last_account_opened_months_13',
        'monthly_emi_for_active_accounts_13',
        'sanctioned_amt_for_active_accounts_13',
        'no_of_loans_opened_last_3_months_13',
        'value_of_loans_opened_last_12_months_13',
        'total_number_of_accounts_13', 'no_of_loans_paid_off_successfully_13',
        'value_of_loans_opened_last_3_months_13',
        'number_of_active_accounts_13', 'total_value_of_accounts_13',
        'no_of_loans_opened_last_12_months_13', 'latest_disbursed_date_13',
        'value_of_loans_paid_off_successfully_13',
        'current_bal_for_active_accounts_13',
        'amt_written_off_total_liabilities_ratio_13',
        'no_acs_written_off_total_liabilities_ratio_13', 'amt_bl_paid_off_13',
        'last_loan_drawn_in_months_13',
        'no_acs_overdue_total_accounts_ratio_13', 'no_of_bl_paid_off_13',
        'credit_card_usage_total_limits_ratio_13', 'no_of_running_bl_pl_13',
        'no_of_enquiries_last_3_months_13',
        'no_of_enquiries_last_12_months_13', 'last_account_opened_months_2',
        'monthly_emi_for_active_accounts_2',
        'sanctioned_amt_for_active_accounts_2',
        'no_of_loans_opened_last_3_months_2',
        'value_of_loans_opened_last_12_months_2', 'total_number_of_accounts_2',
        'no_of_loans_paid_off_successfully_2',
        'value_of_loans_opened_last_3_months_2', 'number_of_active_accounts_2',
        'total_value_of_accounts_2', 'no_of_loans_opened_last_12_months_2',
        'latest_disbursed_date_2', 'value_of_loans_paid_off_successfully_2',
        'current_bal_for_active_accounts_2',
        'amt_written_off_total_liabilities_ratio_2',
        'no_acs_written_off_total_liabilities_ratio_2', 'amt_bl_paid_off_2',
        'last_loan_drawn_in_months_2', 'no_acs_overdue_total_accounts_ratio_2',
        'no_of_bl_paid_off_2', 'credit_card_usage_total_limits_ratio_2',
        'no_of_running_bl_pl_2', 'no_of_enquiries_last_3_months_2',
        'no_of_enquiries_last_12_months_2', 'last_account_opened_months_0',
        'monthly_emi_for_active_accounts_0',
        'sanctioned_amt_for_active_accounts_0',
        'no_of_loans_opened_last_3_months_0',
        'value_of_loans_opened_last_12_months_0', 'total_number_of_accounts_0',
        'no_of_loans_paid_off_successfully_0',
        'value_of_loans_opened_last_3_months_0', 'number_of_active_accounts_0',
        'total_value_of_accounts_0', 'no_of_loans_opened_last_12_months_0',
        'latest_disbursed_date_0', 'value_of_loans_paid_off_successfully_0',
        'current_bal_for_active_accounts_0',
        'amt_written_off_total_liabilities_ratio_0',
        'no_acs_written_off_total_liabilities_ratio_0', 'amt_bl_paid_off_0',
        'last_loan_drawn_in_months_0', 'no_acs_overdue_total_accounts_ratio_0',
        'no_of_bl_paid_off_0', 'credit_card_usage_total_limits_ratio_0',
        'no_of_running_bl_pl_0', 'no_of_enquiries_last_3_months_0',
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        'no_acs_written_off_total_liabilities_ratio_40', 'amt_bl_paid_off_40',
        'last_loan_drawn_in_months_40',
        'no_acs_overdue_total_accounts_ratio_40', 'no_of_bl_paid_off_40',
        'credit_card_usage_total_limits_ratio_40', 'no_of_running_bl_pl_40',
        'no_of_enquiries_last_3_months_40', 'no_of_enquiries_last_12_months_40',
        'last_account_opened_months_55', 'monthly_emi_for_active_accounts_55',
        'sanctioned_amt_for_active_accounts_55',
        'no_of_loans_opened_last_3_months_55',
        'value_of_loans_opened_last_12_months_55',
        'total_number_of_accounts_55', 'no_of_loans_paid_off_successfully_55',
        'value_of_loans_opened_last_3_months_55',
        'number_of_active_accounts_55', 'total_value_of_accounts_55',
        'no_of_loans_opened_last_12_months_55', 'latest_disbursed_date_55',
        'value_of_loans_paid_off_successfully_55',
        'current_bal_for_active_accounts_55',
        'amt_written_off_total_liabilities_ratio_55',
        'no_acs_written_off_total_liabilities_ratio_55', 'amt_bl_paid_off_55',
        'last_loan_drawn_in_months_55',
        'no_acs_overdue_total_accounts_ratio_55', 'no_of_bl_paid_off_55',
        'credit_card_usage_total_limits_ratio_55', 'no_of_running_bl_pl_55',
        'no_of_enquiries_last_3_months_55', 'no_of_enquiries_last_12_months_55',
        'last_account_opened_months_36', 'monthly_emi_for_active_accounts_36',
        'sanctioned_amt_for_active_accounts_36',
        'no_of_loans_opened_last_3_months_36',
        'value_of_loans_opened_last_12_months_36',
        'total_number_of_accounts_36', 'no_of_loans_paid_off_successfully_36',
        'value_of_loans_opened_last_3_months_36',
        'number_of_active_accounts_36', 'total_value_of_accounts_36',
        'no_of_loans_opened_last_12_months_36', 'latest_disbursed_date_36',
        'value_of_loans_paid_off_successfully_36',
        'current_bal_for_active_accounts_36',
        'amt_written_off_total_liabilities_ratio_36',
        'no_acs_written_off_total_liabilities_ratio_36', 'amt_bl_paid_off_36',
        'last_loan_drawn_in_months_36',
        'no_acs_overdue_total_accounts_ratio_36', 'no_of_bl_paid_off_36',
        'credit_card_usage_total_limits_ratio_36', 'no_of_running_bl_pl_36',
        'no_of_enquiries_last_3_months_36', 'no_of_enquiries_last_12_months_36',
        'last_account_opened_months_14', 'monthly_emi_for_active_accounts_14',
        'sanctioned_amt_for_active_accounts_14',
        'no_of_loans_opened_last_3_months_14',
        'value_of_loans_opened_last_12_months_14',
        'total_number_of_accounts_14', 'no_of_loans_paid_off_successfully_14',
        'value_of_loans_opened_last_3_months_14',
        'number_of_active_accounts_14', 'total_value_of_accounts_14',
        'no_of_loans_opened_last_12_months_14', 'latest_disbursed_date_14',
        'value_of_loans_paid_off_successfully_14',
        'current_bal_for_active_accounts_14',
        'amt_written_off_total_liabilities_ratio_14',
        'no_acs_written_off_total_liabilities_ratio_14', 'amt_bl_paid_off_14',
        'last_loan_drawn_in_months_14',
        'no_acs_overdue_total_accounts_ratio_14', 'no_of_bl_paid_off_14',
        'credit_card_usage_total_limits_ratio_14', 'no_of_running_bl_pl_14',
        'no_of_enquiries_last_3_months_14', 'no_of_enquiries_last_12_months_14',
        'last_account_opened_months_50', 'monthly_emi_for_active_accounts_50',
        'sanctioned_amt_for_active_accounts_50',
        'no_of_loans_opened_last_3_months_50',
        'value_of_loans_opened_last_12_months_50',
        'total_number_of_accounts_50', 'no_of_loans_paid_off_successfully_50',
        'value_of_loans_opened_last_3_months_50',
        'number_of_active_accounts_50', 'total_value_of_accounts_50',
        'no_of_loans_opened_last_12_months_50', 'latest_disbursed_date_50',
        'value_of_loans_paid_off_successfully_50',
        'current_bal_for_active_accounts_50',
        'amt_written_off_total_liabilities_ratio_50',
        'no_acs_written_off_total_liabilities_ratio_50', 'amt_bl_paid_off_50',
        'last_loan_drawn_in_months_50',
        'no_acs_overdue_total_accounts_ratio_50', 'no_of_bl_paid_off_50',
        'credit_card_usage_total_limits_ratio_50', 'no_of_running_bl_pl_50',
        'no_of_enquiries_last_3_months_50', 'no_of_enquiries_last_12_months_50',
        'last_account_opened_months_43', 'monthly_emi_for_active_accounts_43',
        'sanctioned_amt_for_active_accounts_43',
        'no_of_loans_opened_last_3_months_43',
        'value_of_loans_opened_last_12_months_43',
        'total_number_of_accounts_43', 'no_of_loans_paid_off_successfully_43',
        'value_of_loans_opened_last_3_months_43',
        'number_of_active_accounts_43', 'total_value_of_accounts_43',
        'no_of_loans_opened_last_12_months_43', 'latest_disbursed_date_43',
        'value_of_loans_paid_off_successfully_43',
        'current_bal_for_active_accounts_43',
        'amt_written_off_total_liabilities_ratio_43',
        'no_acs_written_off_total_liabilities_ratio_43', 'amt_bl_paid_off_43',
        'last_loan_drawn_in_months_43',
        'no_acs_overdue_total_accounts_ratio_43', 'no_of_bl_paid_off_43',
        'credit_card_usage_total_limits_ratio_43', 'no_of_running_bl_pl_43',
        'no_of_enquiries_last_3_months_43',
        'no_of_enquiries_last_12_months_43', 'last_account_opened_months_None',
        'monthly_emi_for_active_accounts_None',
        'sanctioned_amt_for_active_accounts_None',
        'no_of_loans_opened_last_3_months_None',
        'value_of_loans_opened_last_12_months_None',
        'total_number_of_accounts_None',
        'no_of_loans_paid_off_successfully_None',
        'value_of_loans_opened_last_3_months_None',
        'number_of_active_accounts_None', 'total_value_of_accounts_None',
        'no_of_loans_opened_last_12_months_None', 'latest_disbursed_date_None',
        'value_of_loans_paid_off_successfully_None',
        'current_bal_for_active_accounts_None',
        'amt_written_off_total_liabilities_ratio_None',
        'no_acs_written_off_total_liabilities_ratio_None',
        'amt_bl_paid_off_None', 'last_loan_drawn_in_months_None',
        'no_acs_overdue_total_accounts_ratio_None', 'no_of_bl_paid_off_None',
        'credit_card_usage_total_limits_ratio_None',
        'no_of_running_bl_pl_None', 'no_of_enquiries_last_3_months_None',
        'no_of_enquiries_last_12_months_None',
        'last_account_opened_months_blank',
        'monthly_emi_for_active_accounts_blank',
        'sanctioned_amt_for_active_accounts_blank',
        'no_of_loans_opened_last_3_months_blank',
        'value_of_loans_opened_last_12_months_blank',
        'total_number_of_accounts_blank',
        'no_of_loans_paid_off_successfully_blank',
        'value_of_loans_opened_last_3_months_blank',
        'number_of_active_accounts_blank', 'total_value_of_accounts_blank',
        'no_of_loans_opened_last_12_months_blank',
        'latest_disbursed_date_blank',
        'value_of_loans_paid_off_successfully_blank',
        'current_bal_for_active_accounts_blank',
        'amt_written_off_total_liabilities_ratio_blank',
        'no_acs_written_off_total_liabilities_ratio_blank',
        'amt_bl_paid_off_blank', 'last_loan_drawn_in_months_blank',
        'no_acs_overdue_total_accounts_ratio_blank', 'no_of_bl_paid_off_blank',
        'credit_card_usage_total_limits_ratio_blank',
        'no_of_running_bl_pl_blank', 'no_of_enquiries_last_3_months_blank',
        'no_of_enquiries_last_12_months_blank',
        'last_account_opened_months_41', 'monthly_emi_for_active_accounts_41',
        'sanctioned_amt_for_active_accounts_41',
        'no_of_loans_opened_last_3_months_41',
        'value_of_loans_opened_last_12_months_41',
        'total_number_of_accounts_41', 'no_of_loans_paid_off_successfully_41',
        'value_of_loans_opened_last_3_months_41',
        'number_of_active_accounts_41', 'total_value_of_accounts_41',
        'no_of_loans_opened_last_12_months_41', 'latest_disbursed_date_41',
        'value_of_loans_paid_off_successfully_41',
        'current_bal_for_active_accounts_41',
        'amt_written_off_total_liabilities_ratio_41',
        'no_acs_written_off_total_liabilities_ratio_41', 'amt_bl_paid_off_41',
        'last_loan_drawn_in_months_41',
        'no_acs_overdue_total_accounts_ratio_41', 'no_of_bl_paid_off_41',
        'credit_card_usage_total_limits_ratio_41', 'no_of_running_bl_pl_41',
        'no_of_enquiries_last_3_months_41', 'no_of_enquiries_last_12_months_41'
    ]

    df_cols.append('business_id')
    df_buckets = pd.DataFrame(columns=df_cols)

    i = 0

    def add_data(j):
        account_type = str(row['account_type'])

        for col in all_cols:
            # print(account_type)
            full_col = col + "_" + account_type
            # print(full_col + " : " + str(row[col]))

            df_buckets.loc[j, full_col] = row[col]

    for index, row in df_mongo_buckets.iterrows():
        business_id = row['business_id']

        all_business_id = df_buckets['business_id'].unique()
        if business_id in all_business_id:
            add_data(i)
        else:
            print(str(i))
            i += 1
            df_buckets.loc[i, 'business_id'] = business_id
            add_data(i)

    # df_buckets.to_csv('api_all_data_account_type21.csv', index=False)
    # data_df.to_csv('op2.csv')
    for index, row in df_buckets.iterrows():
        for col in cibil_cols_required:
            # print(col)
            if col in row:
                if str(row[col]) == "nan":
                    data_df.loc[0, col] = "0"
                else:
                    data_df.loc[0, col] = str(row[col])

            else:
                data_df.loc[0, col] = "0"

            # data_df = data_df.replace("nan", "0")
    # data_df.to_csv('op.csv')

    #     get model
    import pickle
    filename = 'service_api_drawdowns/log_decission_tree_model.sav'
    loaded_model = pickle.load(open(filename, 'rb'))

    result = loaded_model.predict(data_df)
    print(result)
    # data_df['output_predicted'] = result

    # data_df.to_csv('output_decision_tree.csv')
    return str(result[0])
Exemplo n.º 4
0
# -*- coding:utf-8 -*-
from flask import Flask
from flask_cors import CORS
from flask_restful import Resource, Api, reqparse
from model.product import Product
from model.order import Order
from model.orderhasproduct import OrderHasProduct
from model.db_init import db_init, db

from config import config

app = Flask(__name__, static_url_path='/static')
CORS(app)
app.config.from_object(config['default'])
app.config.update(RESTFUL_JSON=dict(ensure_ascii=False))
db_init(app)
api = Api(app)


class ProductEndpoint(Resource):
    def get(self):

        parser = reqparse.RequestParser()
        parser.add_argument('pid', type=int, help='product id')

        args = parser.parse_args()

        pid = args['pid']

        if not pid:
            products = Product.query.all()